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trap1  (Cell Signaling Technology Inc)


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    Structured Review

    Cell Signaling Technology Inc trap1
    Trap1, supplied by Cell Signaling Technology Inc, used in various techniques. Bioz Stars score: 94/100, based on 19 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/trap1/TRAP1%2FHSP75+Rabbit+mAb/pm41921367-192-14-15
    Average 94 stars, based on 19 article reviews
    trap1 - by Bioz Stars, 2026-09
    94/100 stars

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    Related Articles

    Ubiquitin Proteomics:

    Article Title: TRAP1 inhibits MARCH5-mediated MIC60 degradation to alleviate mitochondrial dysfunction and apoptosis of cardiomyocytes under diabetic conditions.
    Article Snippet: Mitochondrial dysfunction and cell death play important roles in diabetic cardiomyopathy, but the underlying mechanisms remain unclear.. Here, we report that mitochondrial dysfunction and cell apoptosis are prominent features of primary cardiomyocytes after exposure to high glucose/palmitate conditions.. The protein level of MIC60, a core component of mitochondrial cristae, is decreased via ubiquitination and degradation under these conditions.

    Article Title: TRAP1 inhibits KANSL3 acetylation to alleviate mitochondrial dysfunction by promoting mitophagy in cardiomyocytes under diabetic conditions.
    Article Snippet: Band intensity was semiquantified using ImageJ (V2.1.4.8; National Institutes of Health). .. The antibodies specific for the following proteins and tags were obtained from the indicated sources: TRAP1 (92345, CST), TRAP1 (sc-13557, Santa Cruz), LC3B (ab192890, Abcam), p62 (ab207305, Abcam), TOM20 (ab283317, Abcam), GAPDH (60004–1-Ig, Proteintech), beta-tubulin (66240–1-Ig, Proteintech), Lamin A/C (10298–1-AP, Proteintech), UQCRC2 (14742–1-AP, Proteintech), PARP (9542,CST), ubiquitin (3936,CST), TRAP1 (NBP2-47597, Novus), HA (66006–2-Ig, Proteintech), Flag (66008–4-Ig, Proteintech), KANSL3 (HPA035018, Sigma), KANSL3 (NBP1-83875, Novus), KANSL3 (25533–1-AP, Proteintech), VDAC1 (ab14734, Abcam), BAX (50599–1-Ig, Proteintech), BCL2 (12789–1-AP, Proteintech), Cleaved Caspase 3 (25128–1-AP, Proteintech), Caspase 3 (19677– 1-AP, Proteintech), Parkin (R381626, Zenbio), Parkin (phospho S65) (ab315376, Abcam), PINK1 (ab216144, Abcam), ubiquitin (P4D1)(3936, CST), Acetylated-Lysine (9441S, CST), COXIV (11242–1-AP), FIS1 (ab71498, Abcam), DRP1(5391S, CST), phospho-Drp1 (Ser616) (4494S, CST), OPA1(80471, CST), and MFN1(ab104274, Abcam). .. HRP-goat anti-rabbit IgG (CW0103S,Cwbio), HRP-goat anti-mouse IgG (CW0102S, Cwbio), Alexa Fluro® 488 (ab150113, Abcam), Alexa Fluro® 555 (ab150078, Abcam).

    Article Title: TRAP1 inhibits KANSL3 acetylation to alleviate mitochondrial dysfunction by promoting mitophagy in cardiomyocytes under diabetic conditions
    Article Snippet: Band intensity was semiquantified using ImageJ (V2.1.4.8; National Institutes of Health). .. The antibodies specific for the following proteins and tags were obtained from the indicated sources: TRAP1 (92345, CST), TRAP1 (sc-13557, Santa Cruz), LC3B (ab192890, Abcam), p62 (ab207305, Abcam), TOM20 (ab283317, Abcam), GAPDH (60004–1-Ig, Proteintech), beta-tubulin (66240–1-Ig, Proteintech), Lamin A/C (10298–1-AP, Proteintech), UQCRC2 (14742–1-AP, Proteintech), PARP (9542,CST), ubiquitin (3936,CST), TRAP1 (NBP2-47597, Novus), HA (66006–2-Ig, Proteintech), Flag (66008–4-Ig, Proteintech), KANSL3 (HPA035018, Sigma), KANSL3 (NBP1-83875, Novus), KANSL3 (25533–1-AP, Proteintech), VDAC1 (ab14734, Abcam), BAX (50599–1-Ig, Proteintech), BCL2 (12789–1-AP, Proteintech), Cleaved Caspase 3 (25128–1-AP, Proteintech), Caspase 3 (19677–1-AP, Proteintech), Parkin (R381626, Zenbio), Parkin (phospho S65) (ab315376, Abcam), PINK1 (ab216144, Abcam), ubiquitin (P4D1)(3936, CST), Acetylated-Lysine (9441S, CST), COXIV (11242–1-AP), FIS1 (ab71498, Abcam), DRP1(5391S, CST), phospho-Drp1 (Ser616) (4494S, CST), OPA1(80471, CST), and MFN1(ab104274, Abcam). .. HRP-goat anti-rabbit IgG (CW0103S,Cwbio), HRP-goat anti-mouse IgG (CW0102S, Cwbio), Alexa Fluro® 488 (ab150113, Abcam), Alexa Fluro® 555 (ab150078, Abcam).

    Knock-Out:

    Article Title: DELE1 tracks perturbed protein import and processing in human mitochondria
    Article Snippet: Materials & experimental systems n/a Involved in the study Antibodies Eukaryotic cell lines Palaeontology and archaeology Animals and other organisms Human research participants Clinical data Dual use research of concern Methods n/a Involved in the study ChIP-seq Flow cytometry MRI-based neuroimaging Antibodies Antibodies used Antibodies used in this study are listed in Supplementary Table S2. antigen | clone number | cat. number | lot number | vendor | application | dilution FluoTag®-X2 anti-ALFA Atto488 | 1G5 | N1502-At488-500μL | 15190101 | NanoTag | FACS | 1:500 FluoTag®-X2 anti-ALFA for Western Blotting | 1G5 | N1502-HRP | 15200103 | NanoTag | WB | 1:500 3 nature portfolio | reporting sum m ary M arch 2021 Chop | L63F7 | 2895T | 12 | CST | WB | 1:1000 FLAG | - | F7425 | 086M4803V | Sigma-Aldrich | WB | 1:1000 HA | 16B12 | 901514 | n/a | BioLegend | WB, IF | 1:1000, 1:500 PITRM1 | - | 10101-2-AP | ProteinTech | WB | 1:1000 CLUH / eIF3X | NB100-93306 | - | Novus Biologicals | WB | 1:2000 PMPCB | - | 16064-1-A | - | ProteinTech | WB | 1:1000 OMA1 | D4J7K | 95473S | 1 | CST | WB| 1:1000 EIF2AK1 | - | 20499-1-AP | 00013826 | ProteinTech | WB, IP | 1:1000, 1:1000 alpha Tubulin | 1E4C11 | 66031-1-Ig | - | ProteinTech | WB | 1:10000 Smac/Diablo | D5S3R | 15108 | 1 | CST | WB | 1:1000 HSPD1 | D6F1 | 12165 | 3 | CST | WB | 1:1000 mNEON | 32F6 | 32f6-10 | 70117021AB | Chromotek | FACS | 1:2500 TRAP1 | D3D7N | 92345 | 1 | CST | WB, IF | 1:1000, 1:200 TIM23 | H-8 | sc-514463 | B0717 | SantaCruz | WB | 1:1000 TOMM40 | - | 18409-1-AP | - | ProteinTech | WB | 1:2000 TOM20 | F-10| sc-17764 | J1218 | SantaCruz | WB | 1:500 ß-actin-HRP (ACTB) | C4 | sc-47778 | K1418 | SantaCruz | WB | 1:3000 GAPDH | 1E6D9 | 60004-1-Ig | - | ProteinTech | WB | 1:50000 mCherry | - | 26765-1-AP | - | ProteinTech | IP | 1:1150 Goat-anti-Mouse IgG-HRP | - | 170-6516 | n/a | BioRad | WB | 1:3000 Goat-anti-Rabbit IgG-HRP | - | 170-6515 | n/a| BioRad | WB | 1:3000 Alexa Fluor 488-labeled Goat anti-mouse | - | A11001 | 1834337 | Thermo Fisher Scientific | FACS, IF | 1:500 Alexa Fluor 568-labeled Goat anti-rabbit | - | A11036 | 1832035 | Thermo Fisher Scientific | IF | 1:500 Validation For immunoblot analysis, the correct size of the protein of interest was assessed by protein marker and for microscopy, the localization of the stained protein was assessed. .. The specificity of the following antibodies was tested using knockout/knockdown cell lines: OMA1 (CST 95473S) TRAP1 (CST 92345) PITRM1 (ProteinTech 10101-2-AP) CLUH / eIF3X (Novus Biologicals NB100-93306) PMPCB (ProteinTech 16064-1-A) TIM23 (SantaCruz sc-514463) TOM40 (ProteinTech 18409-1-AP) The anti EIF2AK1 antibody (ProteinTech 20499-1-AP) was used for immunoprecipitation of endogenous HRI protein; the identity of the precipitated proteins was assessed by mass-spectrometry, identifying EIF2AK1 among the most abundant proteins. .. For validation by the manufacturer please see the following websites: ALFA https://nano-tag.com/products/fluotag-x2-anti-alfa Chop https://en.cellsignal.de/products/primary-antibodies/chop-l63f7-mouse-mab/2895?site-searchtype= Products&N=4294956287&Ntt=2895t&fromPage=plp&_requestid=2307582 Flag https://www.sigmaaldrich.com/DE/de/product/sigma/f7425 HA https://www.biolegend.com/en-us/products/purified-anti-ha-11-epitope-tag-antibody-11374 PITRM1 https://www.ptglab.com/products/PITRM1-Antibody-10101-2-AP.htm CLUH / eIF3X https://www.novusbio.com/products/eif3x-antibody_nb100-93306 PMPCB https://www.ptglab.com/products/PMPCB-Antibody-16064-1-AP.htm OMA1 https://en.cellsignal.de/products/primary-antibodies/oma1-d4j7k-rabbit-mab/95473?site-searchtype= Products&N=4294956287&Ntt=95473s&fromPage=plp&_requestid=2310100 EIF2AK1 https://www.ptglab.com/products/EIF2AK1-Antibody-20499-1-AP.htm alpha Tubulin https://www.ptglab.com/products/tubulin-Alpha-Antibody-66031-1-Ig.htm Smac/Diablo https://en.cellsignal.de/products/primary-antibodies/smac-diablo-d5s3r-rabbit-mab/15108 HSPD1 https://en.cellsignal.de/products/primary-antibodies/hsp60-d6f1-xp-rabbit-mab/12165 mNEON https://www.chromotek.com/products/detail/product-detail/mneongreen-antibody-32f6/ TRAP1 https://en.cellsignal.de/products/primary-antibodies/trap1-hsp75-d3d7n-rabbit-mab/92345 TIM23 https://www.scbt.com/p/tim23-antibody-h-8 TOM40 https://www.ptglab.com/products/TOMM40-Antibody-18409-1-AP.htm TOM20 https://www.scbt.com/de/p/tom20-antibody-f-10?requestFrom=search ß-actin-HRP (ACTB) https://www.scbt.com/p/beta-actin-antibody-c4?requestFrom=search GAPDH https://www.ptglab.com/products/GAPDH-Antibody-60004-1-Ig.htm mCherry https://www.ptglab.com/products/mCherry-Antibody-26765-1-AP.htm Eukaryotic cell lines Policy information about cell lines Cell line source(s) Cells lines obtained from authenticated stocks were a kind gift from the Brummelkamp laboratory (HEK293T, HeLa; obtained from ATCC).

    Immunoprecipitation:

    Article Title: DELE1 tracks perturbed protein import and processing in human mitochondria
    Article Snippet: Materials & experimental systems n/a Involved in the study Antibodies Eukaryotic cell lines Palaeontology and archaeology Animals and other organisms Human research participants Clinical data Dual use research of concern Methods n/a Involved in the study ChIP-seq Flow cytometry MRI-based neuroimaging Antibodies Antibodies used Antibodies used in this study are listed in Supplementary Table S2. antigen | clone number | cat. number | lot number | vendor | application | dilution FluoTag®-X2 anti-ALFA Atto488 | 1G5 | N1502-At488-500μL | 15190101 | NanoTag | FACS | 1:500 FluoTag®-X2 anti-ALFA for Western Blotting | 1G5 | N1502-HRP | 15200103 | NanoTag | WB | 1:500 3 nature portfolio | reporting sum m ary M arch 2021 Chop | L63F7 | 2895T | 12 | CST | WB | 1:1000 FLAG | - | F7425 | 086M4803V | Sigma-Aldrich | WB | 1:1000 HA | 16B12 | 901514 | n/a | BioLegend | WB, IF | 1:1000, 1:500 PITRM1 | - | 10101-2-AP | ProteinTech | WB | 1:1000 CLUH / eIF3X | NB100-93306 | - | Novus Biologicals | WB | 1:2000 PMPCB | - | 16064-1-A | - | ProteinTech | WB | 1:1000 OMA1 | D4J7K | 95473S | 1 | CST | WB| 1:1000 EIF2AK1 | - | 20499-1-AP | 00013826 | ProteinTech | WB, IP | 1:1000, 1:1000 alpha Tubulin | 1E4C11 | 66031-1-Ig | - | ProteinTech | WB | 1:10000 Smac/Diablo | D5S3R | 15108 | 1 | CST | WB | 1:1000 HSPD1 | D6F1 | 12165 | 3 | CST | WB | 1:1000 mNEON | 32F6 | 32f6-10 | 70117021AB | Chromotek | FACS | 1:2500 TRAP1 | D3D7N | 92345 | 1 | CST | WB, IF | 1:1000, 1:200 TIM23 | H-8 | sc-514463 | B0717 | SantaCruz | WB | 1:1000 TOMM40 | - | 18409-1-AP | - | ProteinTech | WB | 1:2000 TOM20 | F-10| sc-17764 | J1218 | SantaCruz | WB | 1:500 ß-actin-HRP (ACTB) | C4 | sc-47778 | K1418 | SantaCruz | WB | 1:3000 GAPDH | 1E6D9 | 60004-1-Ig | - | ProteinTech | WB | 1:50000 mCherry | - | 26765-1-AP | - | ProteinTech | IP | 1:1150 Goat-anti-Mouse IgG-HRP | - | 170-6516 | n/a | BioRad | WB | 1:3000 Goat-anti-Rabbit IgG-HRP | - | 170-6515 | n/a| BioRad | WB | 1:3000 Alexa Fluor 488-labeled Goat anti-mouse | - | A11001 | 1834337 | Thermo Fisher Scientific | FACS, IF | 1:500 Alexa Fluor 568-labeled Goat anti-rabbit | - | A11036 | 1832035 | Thermo Fisher Scientific | IF | 1:500 Validation For immunoblot analysis, the correct size of the protein of interest was assessed by protein marker and for microscopy, the localization of the stained protein was assessed. .. The specificity of the following antibodies was tested using knockout/knockdown cell lines: OMA1 (CST 95473S) TRAP1 (CST 92345) PITRM1 (ProteinTech 10101-2-AP) CLUH / eIF3X (Novus Biologicals NB100-93306) PMPCB (ProteinTech 16064-1-A) TIM23 (SantaCruz sc-514463) TOM40 (ProteinTech 18409-1-AP) The anti EIF2AK1 antibody (ProteinTech 20499-1-AP) was used for immunoprecipitation of endogenous HRI protein; the identity of the precipitated proteins was assessed by mass-spectrometry, identifying EIF2AK1 among the most abundant proteins. .. For validation by the manufacturer please see the following websites: ALFA https://nano-tag.com/products/fluotag-x2-anti-alfa Chop https://en.cellsignal.de/products/primary-antibodies/chop-l63f7-mouse-mab/2895?site-searchtype= Products&N=4294956287&Ntt=2895t&fromPage=plp&_requestid=2307582 Flag https://www.sigmaaldrich.com/DE/de/product/sigma/f7425 HA https://www.biolegend.com/en-us/products/purified-anti-ha-11-epitope-tag-antibody-11374 PITRM1 https://www.ptglab.com/products/PITRM1-Antibody-10101-2-AP.htm CLUH / eIF3X https://www.novusbio.com/products/eif3x-antibody_nb100-93306 PMPCB https://www.ptglab.com/products/PMPCB-Antibody-16064-1-AP.htm OMA1 https://en.cellsignal.de/products/primary-antibodies/oma1-d4j7k-rabbit-mab/95473?site-searchtype= Products&N=4294956287&Ntt=95473s&fromPage=plp&_requestid=2310100 EIF2AK1 https://www.ptglab.com/products/EIF2AK1-Antibody-20499-1-AP.htm alpha Tubulin https://www.ptglab.com/products/tubulin-Alpha-Antibody-66031-1-Ig.htm Smac/Diablo https://en.cellsignal.de/products/primary-antibodies/smac-diablo-d5s3r-rabbit-mab/15108 HSPD1 https://en.cellsignal.de/products/primary-antibodies/hsp60-d6f1-xp-rabbit-mab/12165 mNEON https://www.chromotek.com/products/detail/product-detail/mneongreen-antibody-32f6/ TRAP1 https://en.cellsignal.de/products/primary-antibodies/trap1-hsp75-d3d7n-rabbit-mab/92345 TIM23 https://www.scbt.com/p/tim23-antibody-h-8 TOM40 https://www.ptglab.com/products/TOMM40-Antibody-18409-1-AP.htm TOM20 https://www.scbt.com/de/p/tom20-antibody-f-10?requestFrom=search ß-actin-HRP (ACTB) https://www.scbt.com/p/beta-actin-antibody-c4?requestFrom=search GAPDH https://www.ptglab.com/products/GAPDH-Antibody-60004-1-Ig.htm mCherry https://www.ptglab.com/products/mCherry-Antibody-26765-1-AP.htm Eukaryotic cell lines Policy information about cell lines Cell line source(s) Cells lines obtained from authenticated stocks were a kind gift from the Brummelkamp laboratory (HEK293T, HeLa; obtained from ATCC).

    Western Blot:

    Article Title: LncRNA CRYBG3 Regulates Adaptive Radioresistance in Non-Small Cell Lung Cancer Cells through the p53/HSF1/TRAP1 Axis
    Article Snippet: The protein blot relative densitometry values were evaluated utilizing the ImageJ software (Media Cybernetics, 1.8.0). .. The following antibodies were utilized for western blot analysis: p53 (1∶1000, Abcam, ab32049, Cambridge, UK), HSF1 (1∶1000, Abcam, ab242138), and GAPDH (1∶2500, Abcam, ab9485); Bax (1∶1000, Cell Signaling Technology, 5023), β-actin (1∶1000, Cell Signaling Technology, 4970), Cleaved-Caspase-3 (1∶1000, Cell Signaling Technology, 9664), Bcl-2 (1∶1000, Cell Signaling Technology, 3498), PGC-1α (1∶1000, Cell Signaling Technology, 2178), Cytochrome c (1∶1000, Cell Signaling Technology, 11940), and TRAP1 (1∶1000, Cell Signaling Technology, 92345). ..

    Pyrolysis Gas Chromatography:

    Article Title: LncRNA CRYBG3 Regulates Adaptive Radioresistance in Non-Small Cell Lung Cancer Cells through the p53/HSF1/TRAP1 Axis
    Article Snippet: The protein blot relative densitometry values were evaluated utilizing the ImageJ software (Media Cybernetics, 1.8.0). .. The following antibodies were utilized for western blot analysis: p53 (1∶1000, Abcam, ab32049, Cambridge, UK), HSF1 (1∶1000, Abcam, ab242138), and GAPDH (1∶2500, Abcam, ab9485); Bax (1∶1000, Cell Signaling Technology, 5023), β-actin (1∶1000, Cell Signaling Technology, 4970), Cleaved-Caspase-3 (1∶1000, Cell Signaling Technology, 9664), Bcl-2 (1∶1000, Cell Signaling Technology, 3498), PGC-1α (1∶1000, Cell Signaling Technology, 2178), Cytochrome c (1∶1000, Cell Signaling Technology, 11940), and TRAP1 (1∶1000, Cell Signaling Technology, 92345). ..



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    Santa Cruz Biotechnology trap1 crispr cas9 plasmid
    <t>(A)TRAP1</t> expression levels in normal versus colon tumor tissues, according to the TCGA database, as displayed on the GEP2 website. (B) TRAP1 protein expression was not detectable in TRAP1 CRISPR/Cas9 CT26 cells using Western blot analysis. (C) TRAP1 mRNA levels were quantified by qPCR in WT and KO colon cancer cells. (D) Cell growth of WT and KO cells was measured at 24 h, 48 h, 72 h using CCK-8. (E) GSEA of proteomic data using Molecular Signatures Database (MSigDB) GO BP gene set is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots of cytoplasm translation, regulation of cell cycle G1-S, detoxification and cellular oxidant detoxification gene signatures that are associated with depletion of TRAP1. (G) Intracellular ROS levels in WT and KO cells were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of ROS. (I) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE for Western blot analysis to detect TRAP1 and Actin proteins. (J) Intracellular ROS levels in WT EV, KO2 EV and KO2 TOE were detected using an ROS assay kit and analyzed by flow cytometry. (K) Quantitation of ROS. P < 0.05 (*), P < 0.01 (**). (L) WT and individual KO cells were collected and stained with PI. The cell cycle was analyzed using flow cytometry and BD software. (M) Cells were seeded in 6-well plates and cultured for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (N).
    Trap1 Crispr Cas9 Plasmid, supplied by Santa Cruz Biotechnology, used in various techniques. Bioz Stars score: 93/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/trap1/TRAP-1+CRISPR%2FCas9+KO+Plasmid/pmc12582411-54-0-6
    Average 93 stars, based on 1 article reviews
    trap1 crispr cas9 plasmid - by Bioz Stars, 2026-09
    93/100 stars
      Buy from Supplier

    86
    Absolute Biotech Inc anti trap1
    <t>(A)TRAP1</t> expression levels in normal versus colon tumor tissues, according to the TCGA database, as displayed on the GEP2 website. (B) TRAP1 protein expression was not detectable in TRAP1 CRISPR/Cas9 CT26 cells using Western blot analysis. (C) TRAP1 mRNA levels were quantified by qPCR in WT and KO colon cancer cells. (D) Cell growth of WT and KO cells was measured at 24 h, 48 h, 72 h using CCK-8. (E) GSEA of proteomic data using Molecular Signatures Database (MSigDB) GO BP gene set is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots of cytoplasm translation, regulation of cell cycle G1-S, detoxification and cellular oxidant detoxification gene signatures that are associated with depletion of TRAP1. (G) Intracellular ROS levels in WT and KO cells were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of ROS. (I) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE for Western blot analysis to detect TRAP1 and Actin proteins. (J) Intracellular ROS levels in WT EV, KO2 EV and KO2 TOE were detected using an ROS assay kit and analyzed by flow cytometry. (K) Quantitation of ROS. P < 0.05 (*), P < 0.01 (**). (L) WT and individual KO cells were collected and stained with PI. The cell cycle was analyzed using flow cytometry and BD software. (M) Cells were seeded in 6-well plates and cultured for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (N).
    Anti Trap1, supplied by Absolute Biotech Inc, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/trap1/anti+trap1/pmc12582411-61-9-12
    Average 86 stars, based on 1 article reviews
    anti trap1 - by Bioz Stars, 2026-09
    86/100 stars
      Buy from Supplier

    Image Search Results


    A) WT, Hsp90α KO, and Hsp90β KO HEK293 cells were incubated with MitoTracker Green (50 nM, 20 m). Scale bar is 10 µm. B) Representative transmission electron microscopy images of WT, Hsp90α KO, and Hsp90β KO HEK293 cells. Scale bar is 1 µm (8000X) or 0.5 µm (20000X). C) Mitochondria Cristae Score calculated based on images collected in . D) Schematic representation of electron transport chain subunits whose mRNA levels are impacted by loss of Hsp90α or Hsp90β. Data presented as fold change KO/WT. Red subunits indicate decreased mRNA expression, while blue subunits represent increased mRNA expression. PDB IDs: CI: 5xtd; CII: 8gs8; CIII: 5xte; CIV: 5xth, CV: 8h9s. E) Cytosolic and nuclear fractions of WT, Hsp90α KO, and Hsp90β KO HEK293 cells were immunoblotted with the indicated antibodies. F) Cytosolic and mitochondrial fractions collected from WT, Hsp90α KO, and Hsp90β KO HEK293 cells were immunoblotted with the indicated antibodies.

    Journal: bioRxiv

    Article Title: Coordinated regulation of the metaboproteome by Hsp90 chaperones controls metabolic plasticity

    doi: 10.1101/2025.11.21.689798

    Figure Lengend Snippet: A) WT, Hsp90α KO, and Hsp90β KO HEK293 cells were incubated with MitoTracker Green (50 nM, 20 m). Scale bar is 10 µm. B) Representative transmission electron microscopy images of WT, Hsp90α KO, and Hsp90β KO HEK293 cells. Scale bar is 1 µm (8000X) or 0.5 µm (20000X). C) Mitochondria Cristae Score calculated based on images collected in . D) Schematic representation of electron transport chain subunits whose mRNA levels are impacted by loss of Hsp90α or Hsp90β. Data presented as fold change KO/WT. Red subunits indicate decreased mRNA expression, while blue subunits represent increased mRNA expression. PDB IDs: CI: 5xtd; CII: 8gs8; CIII: 5xte; CIV: 5xth, CV: 8h9s. E) Cytosolic and nuclear fractions of WT, Hsp90α KO, and Hsp90β KO HEK293 cells were immunoblotted with the indicated antibodies. F) Cytosolic and mitochondrial fractions collected from WT, Hsp90α KO, and Hsp90β KO HEK293 cells were immunoblotted with the indicated antibodies.

    Article Snippet: WT and TRAP1 KO HEK293 cells were treated with 1 μM Gamitrinib-TPP (G-TPP; MedchemExpress) for 18 h prior to subcellular fractionation or metabolite extraction.

    Techniques: Incubation, Transmission Assay, Electron Microscopy, Expressing

    A) Oxygen consumption rate (OCR) based on Mitochondrial Stress Test of WT, Hsp90α KO, and Hsp90β KO HEK293 cells grown in medium containing 4500 mg/L. Error bars represent SD. B) Mitochondria isolated from WT, Hsp90α KO, and Hsp90β KO HEK293 cells were assayed for Complex I or C) Complex II activity in vitro . D) Oxygen consumption rate (OCR) measure by Mitochondrial Stress Test of WT, Hsp90α KO, and Hsp90β KO HEK293 cells grown in medium containing 1000 mg/L glucose. Error bars represent SD. E) Fuel Flex assay of WT, Hsp90α KO, and Hsp90β KO HEK293 cells grown in medium containing 4500 mg/L glucose. Calculated glucose, F) glutamine, G) Or fatty acid oxidation dependency or flexibility is shown.

    Journal: bioRxiv

    Article Title: Coordinated regulation of the metaboproteome by Hsp90 chaperones controls metabolic plasticity

    doi: 10.1101/2025.11.21.689798

    Figure Lengend Snippet: A) Oxygen consumption rate (OCR) based on Mitochondrial Stress Test of WT, Hsp90α KO, and Hsp90β KO HEK293 cells grown in medium containing 4500 mg/L. Error bars represent SD. B) Mitochondria isolated from WT, Hsp90α KO, and Hsp90β KO HEK293 cells were assayed for Complex I or C) Complex II activity in vitro . D) Oxygen consumption rate (OCR) measure by Mitochondrial Stress Test of WT, Hsp90α KO, and Hsp90β KO HEK293 cells grown in medium containing 1000 mg/L glucose. Error bars represent SD. E) Fuel Flex assay of WT, Hsp90α KO, and Hsp90β KO HEK293 cells grown in medium containing 4500 mg/L glucose. Calculated glucose, F) glutamine, G) Or fatty acid oxidation dependency or flexibility is shown.

    Article Snippet: WT and TRAP1 KO HEK293 cells were treated with 1 μM Gamitrinib-TPP (G-TPP; MedchemExpress) for 18 h prior to subcellular fractionation or metabolite extraction.

    Techniques: Isolation, Activity Assay, In Vitro

    A) Principal Component Analysis of WT, Hsp90α KO, and Hsp90β KO HEK293 targeted metabolite composition. B) Heat map dendrogram of targeted metabolite abundance across each replicate of WT, Hsp90α KO, and Hsp90β KO HEK293 metabolite extract. C) Pathway impact analysis of targeted metabolites isolated from WT, Hsp90α KO, and Hsp90β KO HEK293 cells. D) NAD + /NADH ratio was calculated based on NAD + /NADH-Glo Assay performed in WT, Hsp90α KO, and Hsp90β KO HEK293 cells. E) Streptavidin pulldown of biotin-NAD + from WT, Hsp90α KO, and Hsp90β KO HEK293 cell lysate was immunoblotted with the indicated antibodies.

    Journal: bioRxiv

    Article Title: Coordinated regulation of the metaboproteome by Hsp90 chaperones controls metabolic plasticity

    doi: 10.1101/2025.11.21.689798

    Figure Lengend Snippet: A) Principal Component Analysis of WT, Hsp90α KO, and Hsp90β KO HEK293 targeted metabolite composition. B) Heat map dendrogram of targeted metabolite abundance across each replicate of WT, Hsp90α KO, and Hsp90β KO HEK293 metabolite extract. C) Pathway impact analysis of targeted metabolites isolated from WT, Hsp90α KO, and Hsp90β KO HEK293 cells. D) NAD + /NADH ratio was calculated based on NAD + /NADH-Glo Assay performed in WT, Hsp90α KO, and Hsp90β KO HEK293 cells. E) Streptavidin pulldown of biotin-NAD + from WT, Hsp90α KO, and Hsp90β KO HEK293 cell lysate was immunoblotted with the indicated antibodies.

    Article Snippet: WT and TRAP1 KO HEK293 cells were treated with 1 μM Gamitrinib-TPP (G-TPP; MedchemExpress) for 18 h prior to subcellular fractionation or metabolite extraction.

    Techniques: Isolation, Glo Assay, TNKS1 Histone Ribosylation Assay

    A) Alphafold , structure prediction of TRAP1, Hsp90α, and Hsp90β. Colored portions represent predicted discrete structural domains (N-domain: green, Hsp90 large and small middle domains: orange and gray, TRAP1 large and small middle domains: orange and purple, Hsp90 C-domain: purple, TRAP1 C-domain: pink). B) Interaction network of proteins whose interaction with Hsp90α only is upregulated in TRAP1 KO HEK293 cells. Increased color intensity corresponds to degree of interaction upregulation. C) KEGG enrichment analysis of proteins whose interaction with Hsp90α only is upregulated in TRAP1 KO HEK293 cells. D) Interaction network of proteins whose interaction with Hsp90β only is upregulated in TRAP1 KO HEK293 cells. Increased color intensity corresponds to degree of interaction upregulation. E) KEGG enrichment analysis of proteins whose interaction with Hsp90β only is upregulated in TRAP1 KO HEK293 cells.

    Journal: bioRxiv

    Article Title: Coordinated regulation of the metaboproteome by Hsp90 chaperones controls metabolic plasticity

    doi: 10.1101/2025.11.21.689798

    Figure Lengend Snippet: A) Alphafold , structure prediction of TRAP1, Hsp90α, and Hsp90β. Colored portions represent predicted discrete structural domains (N-domain: green, Hsp90 large and small middle domains: orange and gray, TRAP1 large and small middle domains: orange and purple, Hsp90 C-domain: purple, TRAP1 C-domain: pink). B) Interaction network of proteins whose interaction with Hsp90α only is upregulated in TRAP1 KO HEK293 cells. Increased color intensity corresponds to degree of interaction upregulation. C) KEGG enrichment analysis of proteins whose interaction with Hsp90α only is upregulated in TRAP1 KO HEK293 cells. D) Interaction network of proteins whose interaction with Hsp90β only is upregulated in TRAP1 KO HEK293 cells. Increased color intensity corresponds to degree of interaction upregulation. E) KEGG enrichment analysis of proteins whose interaction with Hsp90β only is upregulated in TRAP1 KO HEK293 cells.

    Article Snippet: WT and TRAP1 KO HEK293 cells were treated with 1 μM Gamitrinib-TPP (G-TPP; MedchemExpress) for 18 h prior to subcellular fractionation or metabolite extraction.

    Techniques:

    A) Principal Component Analysis of WT or TRAP1 KO HEK293 cell metabolite composition in the presence or absence of the mitochondrial Hsp90 inhibitor G-TPP B) Immunoblot of protein fractions of WT or TRAP1 KO HEK293 cell samples submitted for metabolomics analysis. C) Pathway impact analysis of metabolites isolated from WT or TRAP1 KO HEK293 cells in the presence or absence of G-TPP. D) NAD + abundance in metabolite extracts from WT or TRAP1 KO HEK293 cells in the presence or absence of G-TPP. E) Direct comparison of pathway impact of metabolites isolated from WT or TRAP1 KO HEK293 cells. F) Immunoblot of metabolic enzymes from cytosolic or mitochondrial fractions of WT or TRAP1 KO HEK293 cells in the presence or absence of G-TPP. SE - short exposure; LE - long exposure.

    Journal: bioRxiv

    Article Title: Coordinated regulation of the metaboproteome by Hsp90 chaperones controls metabolic plasticity

    doi: 10.1101/2025.11.21.689798

    Figure Lengend Snippet: A) Principal Component Analysis of WT or TRAP1 KO HEK293 cell metabolite composition in the presence or absence of the mitochondrial Hsp90 inhibitor G-TPP B) Immunoblot of protein fractions of WT or TRAP1 KO HEK293 cell samples submitted for metabolomics analysis. C) Pathway impact analysis of metabolites isolated from WT or TRAP1 KO HEK293 cells in the presence or absence of G-TPP. D) NAD + abundance in metabolite extracts from WT or TRAP1 KO HEK293 cells in the presence or absence of G-TPP. E) Direct comparison of pathway impact of metabolites isolated from WT or TRAP1 KO HEK293 cells. F) Immunoblot of metabolic enzymes from cytosolic or mitochondrial fractions of WT or TRAP1 KO HEK293 cells in the presence or absence of G-TPP. SE - short exposure; LE - long exposure.

    Article Snippet: WT and TRAP1 KO HEK293 cells were treated with 1 μM Gamitrinib-TPP (G-TPP; MedchemExpress) for 18 h prior to subcellular fractionation or metabolite extraction.

    Techniques: Western Blot, Isolation, Comparison

    (A)TRAP1 expression levels in normal versus colon tumor tissues, according to the TCGA database, as displayed on the GEP2 website. (B) TRAP1 protein expression was not detectable in TRAP1 CRISPR/Cas9 CT26 cells using Western blot analysis. (C) TRAP1 mRNA levels were quantified by qPCR in WT and KO colon cancer cells. (D) Cell growth of WT and KO cells was measured at 24 h, 48 h, 72 h using CCK-8. (E) GSEA of proteomic data using Molecular Signatures Database (MSigDB) GO BP gene set is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots of cytoplasm translation, regulation of cell cycle G1-S, detoxification and cellular oxidant detoxification gene signatures that are associated with depletion of TRAP1. (G) Intracellular ROS levels in WT and KO cells were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of ROS. (I) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE for Western blot analysis to detect TRAP1 and Actin proteins. (J) Intracellular ROS levels in WT EV, KO2 EV and KO2 TOE were detected using an ROS assay kit and analyzed by flow cytometry. (K) Quantitation of ROS. P < 0.05 (*), P < 0.01 (**). (L) WT and individual KO cells were collected and stained with PI. The cell cycle was analyzed using flow cytometry and BD software. (M) Cells were seeded in 6-well plates and cultured for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (N).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A)TRAP1 expression levels in normal versus colon tumor tissues, according to the TCGA database, as displayed on the GEP2 website. (B) TRAP1 protein expression was not detectable in TRAP1 CRISPR/Cas9 CT26 cells using Western blot analysis. (C) TRAP1 mRNA levels were quantified by qPCR in WT and KO colon cancer cells. (D) Cell growth of WT and KO cells was measured at 24 h, 48 h, 72 h using CCK-8. (E) GSEA of proteomic data using Molecular Signatures Database (MSigDB) GO BP gene set is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots of cytoplasm translation, regulation of cell cycle G1-S, detoxification and cellular oxidant detoxification gene signatures that are associated with depletion of TRAP1. (G) Intracellular ROS levels in WT and KO cells were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of ROS. (I) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE for Western blot analysis to detect TRAP1 and Actin proteins. (J) Intracellular ROS levels in WT EV, KO2 EV and KO2 TOE were detected using an ROS assay kit and analyzed by flow cytometry. (K) Quantitation of ROS. P < 0.05 (*), P < 0.01 (**). (L) WT and individual KO cells were collected and stained with PI. The cell cycle was analyzed using flow cytometry and BD software. (M) Cells were seeded in 6-well plates and cultured for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (N).

    Article Snippet: TRAP1 inhibitor (G-TPP) was purchased from MedChemExpress (Monmouth Junction, NJ 08852, USA).

    Techniques: Expressing, CRISPR, Western Blot, CCK-8 Assay, ROS Assay, Flow Cytometry, Quantitation Assay, Staining, Software, Cell Culture

    (A, B) The pH value of the culture medium was measured in WT and KO CT26 cells. (C, D) Enrichment analysis of proteomic data was performed using the GSEA MSigDB GO BP gene set. GSEA plots and heat maps for pH regulation genes in the TRAP1 metabolic gene signature. (E) GSEA of mass spectrometry was performed with MSigDB GO CC gene set and is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots for NADH dehydrogenase complex and cytosolic ribosome are presented within the TRAP1 metabolic gene signature. (G, H) The oxygen consumption rate (OCR) and extracellular acidification rate (ECAR) of WT and KO cells were measured using the Seahorse assay. The data were analyzed using Wave software. (I) The energy map generated from the Seahorse assay in WT and KO cells is shown. The empty and dotted squares represent duplicate experiments within each group. Blue indicates the WT group, red represents the KO6 group, and green represents the KO7 group. (J, K) Glucose consumption and lactate production were measured in WT and KO cells using Glucose-GLO and Lactate-GLO kits, respectively. (L) Illustration of TRAP1 depletion favors the glycolysis pathway than oxidative phosphorylation in colon cancer. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A, B) The pH value of the culture medium was measured in WT and KO CT26 cells. (C, D) Enrichment analysis of proteomic data was performed using the GSEA MSigDB GO BP gene set. GSEA plots and heat maps for pH regulation genes in the TRAP1 metabolic gene signature. (E) GSEA of mass spectrometry was performed with MSigDB GO CC gene set and is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots for NADH dehydrogenase complex and cytosolic ribosome are presented within the TRAP1 metabolic gene signature. (G, H) The oxygen consumption rate (OCR) and extracellular acidification rate (ECAR) of WT and KO cells were measured using the Seahorse assay. The data were analyzed using Wave software. (I) The energy map generated from the Seahorse assay in WT and KO cells is shown. The empty and dotted squares represent duplicate experiments within each group. Blue indicates the WT group, red represents the KO6 group, and green represents the KO7 group. (J, K) Glucose consumption and lactate production were measured in WT and KO cells using Glucose-GLO and Lactate-GLO kits, respectively. (L) Illustration of TRAP1 depletion favors the glycolysis pathway than oxidative phosphorylation in colon cancer. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 inhibitor (G-TPP) was purchased from MedChemExpress (Monmouth Junction, NJ 08852, USA).

    Techniques: Mass Spectrometry, Software, Generated, Phospho-proteomics

    (A) TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin protein levels were detected in WT and individual KO cells using Western blot analysis. (B) WT and individual KO cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C) WT and KO cells were treated with various concentrations of rotenone for 48 h. Cell viability was determined using the CCK-8 assay at OD450. (D) Cells were treated with either Ctrl or 200 nM rotenone for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. Quantitation of intracellular ROS levels is shown in (E). (F, G) Glucose consumption and lactate production were measured in cells treated with 10 nM or 50 nM rotenone using Glucose-GLO and Lactate-GLO kits, respectively. (H) WT and KO cells were treated with either Ctrl, 1.25 mM, or 2.5 mM 2DG for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (I). (J) WT and KO cells were treated with various concentrations of 2DG for 48 h. Cell viability was determined using the CCK-8 assay at OD450. (K) WT and KO cells were treated with Ctrl or 5 mM 2DG for 24 h. Cellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. Quantitation of cellular ROS levels is shown in (L). (M) WT and KO cells were treated with 0.625 mM, 1.25 mM, or 2.5 mM 2DG for 24 h. The culture medium was collected, and glucose consumption was analyzed using Promega Glucose-GLO kits. (N) WT and KO cells were treated with various concentrations of 2DG for 48 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, CHOP, PARP, and Actin protein levels. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin protein levels were detected in WT and individual KO cells using Western blot analysis. (B) WT and individual KO cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C) WT and KO cells were treated with various concentrations of rotenone for 48 h. Cell viability was determined using the CCK-8 assay at OD450. (D) Cells were treated with either Ctrl or 200 nM rotenone for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. Quantitation of intracellular ROS levels is shown in (E). (F, G) Glucose consumption and lactate production were measured in cells treated with 10 nM or 50 nM rotenone using Glucose-GLO and Lactate-GLO kits, respectively. (H) WT and KO cells were treated with either Ctrl, 1.25 mM, or 2.5 mM 2DG for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (I). (J) WT and KO cells were treated with various concentrations of 2DG for 48 h. Cell viability was determined using the CCK-8 assay at OD450. (K) WT and KO cells were treated with Ctrl or 5 mM 2DG for 24 h. Cellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. Quantitation of cellular ROS levels is shown in (L). (M) WT and KO cells were treated with 0.625 mM, 1.25 mM, or 2.5 mM 2DG for 24 h. The culture medium was collected, and glucose consumption was analyzed using Promega Glucose-GLO kits. (N) WT and KO cells were treated with various concentrations of 2DG for 48 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, CHOP, PARP, and Actin protein levels. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 inhibitor (G-TPP) was purchased from MedChemExpress (Monmouth Junction, NJ 08852, USA).

    Techniques: Western Blot, Staining, Microscopy, CCK-8 Assay, ROS Assay, Flow Cytometry, Quantitation Assay

    (A) GSEA of mass spectrometry was performed with MSigDB HALLMARK gene set and is summarized as the normalized enrichment score (NES) in WT and KO cells. (B, C) Enrichment analysis was carried out using the GSEA HALLMARK gene set. GSEA plots of hypoxia and glycolysis genes are presented within the TRAP1 metabolic gene signature. (D) Differential gene expressions were analyzed using DEseq2, with fold change >1.5 and FDR <0.1. Volcano plot shows relative fold change (log2) in protein abundance versus −log10(P values) from WT cells compared with KO cells. Proteins that demonstrate a significant change in expression are colored, with decreased expression in green color and increased expression in red color. (E, F) BP and KEGG pathway analysis of the differential gene expressions was conducted using ShinyGO website. The dot plot represents the top 10 significant pathways ranked according to − log enrichment P value. (G) Correlation analysis of TRAP1 with HIF1A and HIF1A with MCT1 expression in the TCGA database was performed using the ENCORI website. (H) Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed ushing a Nikon microscope. (I) Nuclear and cytoplasmic fractions of WT and KO cells were separated using a nuclear extraction kit (ThermoFisher). TRAP1, HIF1A, Lamin B1, and Tubulin proteins were detected using specific antibodies by Western blotting. (J) WT and KO cells stably expressing HRE-luciferase were subjected to a reporter assay using the Promega luciferase kit, One-GLO. Luminescence levels were measured using a Luminescence reader. (K) TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins were detected using Western blotting. (L) Illustration of TRAP1 depletion induces ROS generation to facilitate glycolysis pathway through ROS-HIF1A axis. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) GSEA of mass spectrometry was performed with MSigDB HALLMARK gene set and is summarized as the normalized enrichment score (NES) in WT and KO cells. (B, C) Enrichment analysis was carried out using the GSEA HALLMARK gene set. GSEA plots of hypoxia and glycolysis genes are presented within the TRAP1 metabolic gene signature. (D) Differential gene expressions were analyzed using DEseq2, with fold change >1.5 and FDR <0.1. Volcano plot shows relative fold change (log2) in protein abundance versus −log10(P values) from WT cells compared with KO cells. Proteins that demonstrate a significant change in expression are colored, with decreased expression in green color and increased expression in red color. (E, F) BP and KEGG pathway analysis of the differential gene expressions was conducted using ShinyGO website. The dot plot represents the top 10 significant pathways ranked according to − log enrichment P value. (G) Correlation analysis of TRAP1 with HIF1A and HIF1A with MCT1 expression in the TCGA database was performed using the ENCORI website. (H) Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed ushing a Nikon microscope. (I) Nuclear and cytoplasmic fractions of WT and KO cells were separated using a nuclear extraction kit (ThermoFisher). TRAP1, HIF1A, Lamin B1, and Tubulin proteins were detected using specific antibodies by Western blotting. (J) WT and KO cells stably expressing HRE-luciferase were subjected to a reporter assay using the Promega luciferase kit, One-GLO. Luminescence levels were measured using a Luminescence reader. (K) TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins were detected using Western blotting. (L) Illustration of TRAP1 depletion induces ROS generation to facilitate glycolysis pathway through ROS-HIF1A axis. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 inhibitor (G-TPP) was purchased from MedChemExpress (Monmouth Junction, NJ 08852, USA).

    Techniques: Mass Spectrometry, Quantitative Proteomics, Expressing, Staining, Microscopy, Extraction, Western Blot, Stable Transfection, Luciferase, Reporter Assay

    (A) Cell lysates were prepared from WT EV, KO2 EV, KO2 TOE, KO6 EV, and KO6 TOE cells. TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin proteins were detected using Western blot analysis. (B) Cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C) Cells were treated with different dosages of rotenone for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. (D) WT EV, KO2 EV and KO2 TOE cells were treated with Ctrl and 200 nM rotenone for 24 h. Intracellular ROS levels of were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (E) Quantitation of intracellular ROS levels. (F) Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed using a Nikon microscope. (G) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE cells. TRAP1, GLUT1, MCT1, and Actin protein levels were detected using western blot analysis. (H, I) The relative glucose consumption rate and lactate concentration of the culture medium at different time points in WT EV, KO2 EV and KO2 TOE cells were measured using Glucose-GLO and Lactate-GLO kits. (J) Cells were treated with 5 mM 2DG for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (K) Quantitation of intracellular ROS levels. (L) Cells were treated with different dosages of 2DG for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) Cell lysates were prepared from WT EV, KO2 EV, KO2 TOE, KO6 EV, and KO6 TOE cells. TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin proteins were detected using Western blot analysis. (B) Cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C) Cells were treated with different dosages of rotenone for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. (D) WT EV, KO2 EV and KO2 TOE cells were treated with Ctrl and 200 nM rotenone for 24 h. Intracellular ROS levels of were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (E) Quantitation of intracellular ROS levels. (F) Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed using a Nikon microscope. (G) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE cells. TRAP1, GLUT1, MCT1, and Actin protein levels were detected using western blot analysis. (H, I) The relative glucose consumption rate and lactate concentration of the culture medium at different time points in WT EV, KO2 EV and KO2 TOE cells were measured using Glucose-GLO and Lactate-GLO kits. (J) Cells were treated with 5 mM 2DG for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (K) Quantitation of intracellular ROS levels. (L) Cells were treated with different dosages of 2DG for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 inhibitor (G-TPP) was purchased from MedChemExpress (Monmouth Junction, NJ 08852, USA).

    Techniques: Western Blot, Staining, Microscopy, CCK-8 Assay, ROS Assay, Flow Cytometry, Quantitation Assay, Concentration Assay

    (A) WT and KO cells were treated with 2 mM Trolox for 2 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (B) Quantitation of intracellular ROS levels were performed. (C) Cells were treated with Ctrl and 1 mM Trolox for 24h. Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed using a Nikon microscope. (D) WT and KO cells stably expressing HRE-luciferase were treated with various concentrations of Trolox for 18 h. Reporter assays were performed using One-GLO. (E) Cells were treated with 0.3 mM or 1 mM Trolox for 24 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins. (F) Cells were treated with 0.3 mM or 1 mM Trolox for 48 h. The pH value of the culture medium was measured using a pH meter. (G, H) Cells were treated with Ctrl, 2 mM Trolox for 24 h. Glucose consumption and lactate production in Trolox-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (I) Cells were treated with Ctrl, 50 μM, or 100 μM PX478 for 24 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins. (J, K) Glucose consumption and lactate production in 100 μM PX-478-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (L) Cells were treated with 100 μM PX478 for 24 h. Cells were fixed with 4 % paraformaldehyde and stained with pPDH(S232) antibody. Staining was analyzed using a Nikon microscope. (M) Cells were treated with 100 μM PX478 for 48 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, PDK1, pPDH(S232), PDH, and Actin proteins. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) WT and KO cells were treated with 2 mM Trolox for 2 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (B) Quantitation of intracellular ROS levels were performed. (C) Cells were treated with Ctrl and 1 mM Trolox for 24h. Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed using a Nikon microscope. (D) WT and KO cells stably expressing HRE-luciferase were treated with various concentrations of Trolox for 18 h. Reporter assays were performed using One-GLO. (E) Cells were treated with 0.3 mM or 1 mM Trolox for 24 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins. (F) Cells were treated with 0.3 mM or 1 mM Trolox for 48 h. The pH value of the culture medium was measured using a pH meter. (G, H) Cells were treated with Ctrl, 2 mM Trolox for 24 h. Glucose consumption and lactate production in Trolox-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (I) Cells were treated with Ctrl, 50 μM, or 100 μM PX478 for 24 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins. (J, K) Glucose consumption and lactate production in 100 μM PX-478-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (L) Cells were treated with 100 μM PX478 for 24 h. Cells were fixed with 4 % paraformaldehyde and stained with pPDH(S232) antibody. Staining was analyzed using a Nikon microscope. (M) Cells were treated with 100 μM PX478 for 48 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, PDK1, pPDH(S232), PDH, and Actin proteins. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 inhibitor (G-TPP) was purchased from MedChemExpress (Monmouth Junction, NJ 08852, USA).

    Techniques: ROS Assay, Flow Cytometry, Quantitation Assay, Staining, Microscopy, Stable Transfection, Expressing, Luciferase, Western Blot

    (A) Cells were treated with 20 mM DCA for 48 h. TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin protein levels were detected using Western blot analysis. (B) Cells were treated with Ctrl and 20 mM DCA for 24 h. Cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C, D) The pH value of the culture medium was measured in cells treated with various concentrations of DCA. (E, F) The relative glucose consumption rate and lactic acid concentration of the culture medium in DCA-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (G) WT and KO cells were treated with Ctrl, 10 mM DCA, or 20 mM DCA for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of intracellular ROS levels. (I) Cells were treated with Ctrl, 10 mM, 20 mM, or 40 mM DCA for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. (J) Cells were treated with Ctrl, 10 mM, or 20 mM DCA for 7 days. Cells were stained with crystal violet. Colony numbers were quantified in (K). (L) Illustration of the DCA activated the PDH activity to suppress cell viability in KO cells. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) Cells were treated with 20 mM DCA for 48 h. TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin protein levels were detected using Western blot analysis. (B) Cells were treated with Ctrl and 20 mM DCA for 24 h. Cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C, D) The pH value of the culture medium was measured in cells treated with various concentrations of DCA. (E, F) The relative glucose consumption rate and lactic acid concentration of the culture medium in DCA-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (G) WT and KO cells were treated with Ctrl, 10 mM DCA, or 20 mM DCA for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of intracellular ROS levels. (I) Cells were treated with Ctrl, 10 mM, 20 mM, or 40 mM DCA for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. (J) Cells were treated with Ctrl, 10 mM, or 20 mM DCA for 7 days. Cells were stained with crystal violet. Colony numbers were quantified in (K). (L) Illustration of the DCA activated the PDH activity to suppress cell viability in KO cells. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 inhibitor (G-TPP) was purchased from MedChemExpress (Monmouth Junction, NJ 08852, USA).

    Techniques: Western Blot, Staining, Microscopy, Concentration Assay, ROS Assay, Flow Cytometry, Quantitation Assay, CCK-8 Assay, Activity Assay

    (A)TRAP1 expression levels in normal versus colon tumor tissues, according to the TCGA database, as displayed on the GEP2 website. (B) TRAP1 protein expression was not detectable in TRAP1 CRISPR/Cas9 CT26 cells using Western blot analysis. (C) TRAP1 mRNA levels were quantified by qPCR in WT and KO colon cancer cells. (D) Cell growth of WT and KO cells was measured at 24 h, 48 h, 72 h using CCK-8. (E) GSEA of proteomic data using Molecular Signatures Database (MSigDB) GO BP gene set is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots of cytoplasm translation, regulation of cell cycle G1-S, detoxification and cellular oxidant detoxification gene signatures that are associated with depletion of TRAP1. (G) Intracellular ROS levels in WT and KO cells were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of ROS. (I) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE for Western blot analysis to detect TRAP1 and Actin proteins. (J) Intracellular ROS levels in WT EV, KO2 EV and KO2 TOE were detected using an ROS assay kit and analyzed by flow cytometry. (K) Quantitation of ROS. P < 0.05 (*), P < 0.01 (**). (L) WT and individual KO cells were collected and stained with PI. The cell cycle was analyzed using flow cytometry and BD software. (M) Cells were seeded in 6-well plates and cultured for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (N).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A)TRAP1 expression levels in normal versus colon tumor tissues, according to the TCGA database, as displayed on the GEP2 website. (B) TRAP1 protein expression was not detectable in TRAP1 CRISPR/Cas9 CT26 cells using Western blot analysis. (C) TRAP1 mRNA levels were quantified by qPCR in WT and KO colon cancer cells. (D) Cell growth of WT and KO cells was measured at 24 h, 48 h, 72 h using CCK-8. (E) GSEA of proteomic data using Molecular Signatures Database (MSigDB) GO BP gene set is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots of cytoplasm translation, regulation of cell cycle G1-S, detoxification and cellular oxidant detoxification gene signatures that are associated with depletion of TRAP1. (G) Intracellular ROS levels in WT and KO cells were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of ROS. (I) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE for Western blot analysis to detect TRAP1 and Actin proteins. (J) Intracellular ROS levels in WT EV, KO2 EV and KO2 TOE were detected using an ROS assay kit and analyzed by flow cytometry. (K) Quantitation of ROS. P < 0.05 (*), P < 0.01 (**). (L) WT and individual KO cells were collected and stained with PI. The cell cycle was analyzed using flow cytometry and BD software. (M) Cells were seeded in 6-well plates and cultured for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (N).

    Article Snippet: TRAP1 CRISPR/Cas9 plasmid was obtained from Santa Cruz (Dallas, TX, USA). pCMV6 and pCMV6/TRAP1 plasmids were obtained from Origene (Rockville, MD, USA).

    Techniques: Expressing, CRISPR, Western Blot, CCK-8 Assay, ROS Assay, Flow Cytometry, Quantitation Assay, Staining, Software, Cell Culture

    (A, B) The pH value of the culture medium was measured in WT and KO CT26 cells. (C, D) Enrichment analysis of proteomic data was performed using the GSEA MSigDB GO BP gene set. GSEA plots and heat maps for pH regulation genes in the TRAP1 metabolic gene signature. (E) GSEA of mass spectrometry was performed with MSigDB GO CC gene set and is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots for NADH dehydrogenase complex and cytosolic ribosome are presented within the TRAP1 metabolic gene signature. (G, H) The oxygen consumption rate (OCR) and extracellular acidification rate (ECAR) of WT and KO cells were measured using the Seahorse assay. The data were analyzed using Wave software. (I) The energy map generated from the Seahorse assay in WT and KO cells is shown. The empty and dotted squares represent duplicate experiments within each group. Blue indicates the WT group, red represents the KO6 group, and green represents the KO7 group. (J, K) Glucose consumption and lactate production were measured in WT and KO cells using Glucose-GLO and Lactate-GLO kits, respectively. (L) Illustration of TRAP1 depletion favors the glycolysis pathway than oxidative phosphorylation in colon cancer. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A, B) The pH value of the culture medium was measured in WT and KO CT26 cells. (C, D) Enrichment analysis of proteomic data was performed using the GSEA MSigDB GO BP gene set. GSEA plots and heat maps for pH regulation genes in the TRAP1 metabolic gene signature. (E) GSEA of mass spectrometry was performed with MSigDB GO CC gene set and is summarized as the normalized enrichment score (NES) in WT and KO cells. (F) GSEA plots for NADH dehydrogenase complex and cytosolic ribosome are presented within the TRAP1 metabolic gene signature. (G, H) The oxygen consumption rate (OCR) and extracellular acidification rate (ECAR) of WT and KO cells were measured using the Seahorse assay. The data were analyzed using Wave software. (I) The energy map generated from the Seahorse assay in WT and KO cells is shown. The empty and dotted squares represent duplicate experiments within each group. Blue indicates the WT group, red represents the KO6 group, and green represents the KO7 group. (J, K) Glucose consumption and lactate production were measured in WT and KO cells using Glucose-GLO and Lactate-GLO kits, respectively. (L) Illustration of TRAP1 depletion favors the glycolysis pathway than oxidative phosphorylation in colon cancer. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 CRISPR/Cas9 plasmid was obtained from Santa Cruz (Dallas, TX, USA). pCMV6 and pCMV6/TRAP1 plasmids were obtained from Origene (Rockville, MD, USA).

    Techniques: Mass Spectrometry, Software, Generated, Phospho-proteomics

    (A) TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin protein levels were detected in WT and individual KO cells using Western blot analysis. (B) WT and individual KO cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C) WT and KO cells were treated with various concentrations of rotenone for 48 h. Cell viability was determined using the CCK-8 assay at OD450. (D) Cells were treated with either Ctrl or 200 nM rotenone for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. Quantitation of intracellular ROS levels is shown in (E). (F, G) Glucose consumption and lactate production were measured in cells treated with 10 nM or 50 nM rotenone using Glucose-GLO and Lactate-GLO kits, respectively. (H) WT and KO cells were treated with either Ctrl, 1.25 mM, or 2.5 mM 2DG for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (I). (J) WT and KO cells were treated with various concentrations of 2DG for 48 h. Cell viability was determined using the CCK-8 assay at OD450. (K) WT and KO cells were treated with Ctrl or 5 mM 2DG for 24 h. Cellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. Quantitation of cellular ROS levels is shown in (L). (M) WT and KO cells were treated with 0.625 mM, 1.25 mM, or 2.5 mM 2DG for 24 h. The culture medium was collected, and glucose consumption was analyzed using Promega Glucose-GLO kits. (N) WT and KO cells were treated with various concentrations of 2DG for 48 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, CHOP, PARP, and Actin protein levels. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin protein levels were detected in WT and individual KO cells using Western blot analysis. (B) WT and individual KO cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C) WT and KO cells were treated with various concentrations of rotenone for 48 h. Cell viability was determined using the CCK-8 assay at OD450. (D) Cells were treated with either Ctrl or 200 nM rotenone for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. Quantitation of intracellular ROS levels is shown in (E). (F, G) Glucose consumption and lactate production were measured in cells treated with 10 nM or 50 nM rotenone using Glucose-GLO and Lactate-GLO kits, respectively. (H) WT and KO cells were treated with either Ctrl, 1.25 mM, or 2.5 mM 2DG for 7 days. Cells were stained with crystal violet, and colony numbers were quantified in (I). (J) WT and KO cells were treated with various concentrations of 2DG for 48 h. Cell viability was determined using the CCK-8 assay at OD450. (K) WT and KO cells were treated with Ctrl or 5 mM 2DG for 24 h. Cellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. Quantitation of cellular ROS levels is shown in (L). (M) WT and KO cells were treated with 0.625 mM, 1.25 mM, or 2.5 mM 2DG for 24 h. The culture medium was collected, and glucose consumption was analyzed using Promega Glucose-GLO kits. (N) WT and KO cells were treated with various concentrations of 2DG for 48 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, CHOP, PARP, and Actin protein levels. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 CRISPR/Cas9 plasmid was obtained from Santa Cruz (Dallas, TX, USA). pCMV6 and pCMV6/TRAP1 plasmids were obtained from Origene (Rockville, MD, USA).

    Techniques: Western Blot, Staining, Microscopy, CCK-8 Assay, ROS Assay, Flow Cytometry, Quantitation Assay

    (A) GSEA of mass spectrometry was performed with MSigDB HALLMARK gene set and is summarized as the normalized enrichment score (NES) in WT and KO cells. (B, C) Enrichment analysis was carried out using the GSEA HALLMARK gene set. GSEA plots of hypoxia and glycolysis genes are presented within the TRAP1 metabolic gene signature. (D) Differential gene expressions were analyzed using DEseq2, with fold change >1.5 and FDR <0.1. Volcano plot shows relative fold change (log2) in protein abundance versus −log10(P values) from WT cells compared with KO cells. Proteins that demonstrate a significant change in expression are colored, with decreased expression in green color and increased expression in red color. (E, F) BP and KEGG pathway analysis of the differential gene expressions was conducted using ShinyGO website. The dot plot represents the top 10 significant pathways ranked according to − log enrichment P value. (G) Correlation analysis of TRAP1 with HIF1A and HIF1A with MCT1 expression in the TCGA database was performed using the ENCORI website. (H) Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed ushing a Nikon microscope. (I) Nuclear and cytoplasmic fractions of WT and KO cells were separated using a nuclear extraction kit (ThermoFisher). TRAP1, HIF1A, Lamin B1, and Tubulin proteins were detected using specific antibodies by Western blotting. (J) WT and KO cells stably expressing HRE-luciferase were subjected to a reporter assay using the Promega luciferase kit, One-GLO. Luminescence levels were measured using a Luminescence reader. (K) TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins were detected using Western blotting. (L) Illustration of TRAP1 depletion induces ROS generation to facilitate glycolysis pathway through ROS-HIF1A axis. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) GSEA of mass spectrometry was performed with MSigDB HALLMARK gene set and is summarized as the normalized enrichment score (NES) in WT and KO cells. (B, C) Enrichment analysis was carried out using the GSEA HALLMARK gene set. GSEA plots of hypoxia and glycolysis genes are presented within the TRAP1 metabolic gene signature. (D) Differential gene expressions were analyzed using DEseq2, with fold change >1.5 and FDR <0.1. Volcano plot shows relative fold change (log2) in protein abundance versus −log10(P values) from WT cells compared with KO cells. Proteins that demonstrate a significant change in expression are colored, with decreased expression in green color and increased expression in red color. (E, F) BP and KEGG pathway analysis of the differential gene expressions was conducted using ShinyGO website. The dot plot represents the top 10 significant pathways ranked according to − log enrichment P value. (G) Correlation analysis of TRAP1 with HIF1A and HIF1A with MCT1 expression in the TCGA database was performed using the ENCORI website. (H) Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed ushing a Nikon microscope. (I) Nuclear and cytoplasmic fractions of WT and KO cells were separated using a nuclear extraction kit (ThermoFisher). TRAP1, HIF1A, Lamin B1, and Tubulin proteins were detected using specific antibodies by Western blotting. (J) WT and KO cells stably expressing HRE-luciferase were subjected to a reporter assay using the Promega luciferase kit, One-GLO. Luminescence levels were measured using a Luminescence reader. (K) TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins were detected using Western blotting. (L) Illustration of TRAP1 depletion induces ROS generation to facilitate glycolysis pathway through ROS-HIF1A axis. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 CRISPR/Cas9 plasmid was obtained from Santa Cruz (Dallas, TX, USA). pCMV6 and pCMV6/TRAP1 plasmids were obtained from Origene (Rockville, MD, USA).

    Techniques: Mass Spectrometry, Quantitative Proteomics, Expressing, Staining, Microscopy, Extraction, Western Blot, Stable Transfection, Luciferase, Reporter Assay

    (A) Cell lysates were prepared from WT EV, KO2 EV, KO2 TOE, KO6 EV, and KO6 TOE cells. TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin proteins were detected using Western blot analysis. (B) Cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C) Cells were treated with different dosages of rotenone for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. (D) WT EV, KO2 EV and KO2 TOE cells were treated with Ctrl and 200 nM rotenone for 24 h. Intracellular ROS levels of were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (E) Quantitation of intracellular ROS levels. (F) Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed using a Nikon microscope. (G) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE cells. TRAP1, GLUT1, MCT1, and Actin protein levels were detected using western blot analysis. (H, I) The relative glucose consumption rate and lactate concentration of the culture medium at different time points in WT EV, KO2 EV and KO2 TOE cells were measured using Glucose-GLO and Lactate-GLO kits. (J) Cells were treated with 5 mM 2DG for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (K) Quantitation of intracellular ROS levels. (L) Cells were treated with different dosages of 2DG for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) Cell lysates were prepared from WT EV, KO2 EV, KO2 TOE, KO6 EV, and KO6 TOE cells. TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin proteins were detected using Western blot analysis. (B) Cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C) Cells were treated with different dosages of rotenone for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. (D) WT EV, KO2 EV and KO2 TOE cells were treated with Ctrl and 200 nM rotenone for 24 h. Intracellular ROS levels of were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (E) Quantitation of intracellular ROS levels. (F) Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed using a Nikon microscope. (G) Cell lysates were prepared from WT EV, KO2 EV and KO2 TOE cells. TRAP1, GLUT1, MCT1, and Actin protein levels were detected using western blot analysis. (H, I) The relative glucose consumption rate and lactate concentration of the culture medium at different time points in WT EV, KO2 EV and KO2 TOE cells were measured using Glucose-GLO and Lactate-GLO kits. (J) Cells were treated with 5 mM 2DG for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (K) Quantitation of intracellular ROS levels. (L) Cells were treated with different dosages of 2DG for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 CRISPR/Cas9 plasmid was obtained from Santa Cruz (Dallas, TX, USA). pCMV6 and pCMV6/TRAP1 plasmids were obtained from Origene (Rockville, MD, USA).

    Techniques: Western Blot, Staining, Microscopy, CCK-8 Assay, ROS Assay, Flow Cytometry, Quantitation Assay, Concentration Assay

    (A) WT and KO cells were treated with 2 mM Trolox for 2 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (B) Quantitation of intracellular ROS levels were performed. (C) Cells were treated with Ctrl and 1 mM Trolox for 24h. Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed using a Nikon microscope. (D) WT and KO cells stably expressing HRE-luciferase were treated with various concentrations of Trolox for 18 h. Reporter assays were performed using One-GLO. (E) Cells were treated with 0.3 mM or 1 mM Trolox for 24 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins. (F) Cells were treated with 0.3 mM or 1 mM Trolox for 48 h. The pH value of the culture medium was measured using a pH meter. (G, H) Cells were treated with Ctrl, 2 mM Trolox for 24 h. Glucose consumption and lactate production in Trolox-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (I) Cells were treated with Ctrl, 50 μM, or 100 μM PX478 for 24 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins. (J, K) Glucose consumption and lactate production in 100 μM PX-478-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (L) Cells were treated with 100 μM PX478 for 24 h. Cells were fixed with 4 % paraformaldehyde and stained with pPDH(S232) antibody. Staining was analyzed using a Nikon microscope. (M) Cells were treated with 100 μM PX478 for 48 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, PDK1, pPDH(S232), PDH, and Actin proteins. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) WT and KO cells were treated with 2 mM Trolox for 2 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (B) Quantitation of intracellular ROS levels were performed. (C) Cells were treated with Ctrl and 1 mM Trolox for 24h. Cells were fixed with 4 % paraformaldehyde and stained with HIF1A antibody. Staining was analyzed using a Nikon microscope. (D) WT and KO cells stably expressing HRE-luciferase were treated with various concentrations of Trolox for 18 h. Reporter assays were performed using One-GLO. (E) Cells were treated with 0.3 mM or 1 mM Trolox for 24 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins. (F) Cells were treated with 0.3 mM or 1 mM Trolox for 48 h. The pH value of the culture medium was measured using a pH meter. (G, H) Cells were treated with Ctrl, 2 mM Trolox for 24 h. Glucose consumption and lactate production in Trolox-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (I) Cells were treated with Ctrl, 50 μM, or 100 μM PX478 for 24 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, GLUT1, MCT1, and Actin proteins. (J, K) Glucose consumption and lactate production in 100 μM PX-478-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (L) Cells were treated with 100 μM PX478 for 24 h. Cells were fixed with 4 % paraformaldehyde and stained with pPDH(S232) antibody. Staining was analyzed using a Nikon microscope. (M) Cells were treated with 100 μM PX478 for 48 h. Cell lysates were prepared for Western blot analysis to detect TRAP1, HIF1A, PDK1, pPDH(S232), PDH, and Actin proteins. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 CRISPR/Cas9 plasmid was obtained from Santa Cruz (Dallas, TX, USA). pCMV6 and pCMV6/TRAP1 plasmids were obtained from Origene (Rockville, MD, USA).

    Techniques: ROS Assay, Flow Cytometry, Quantitation Assay, Staining, Microscopy, Stable Transfection, Expressing, Luciferase, Western Blot

    (A) Cells were treated with 20 mM DCA for 48 h. TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin protein levels were detected using Western blot analysis. (B) Cells were treated with Ctrl and 20 mM DCA for 24 h. Cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C, D) The pH value of the culture medium was measured in cells treated with various concentrations of DCA. (E, F) The relative glucose consumption rate and lactic acid concentration of the culture medium in DCA-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (G) WT and KO cells were treated with Ctrl, 10 mM DCA, or 20 mM DCA for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of intracellular ROS levels. (I) Cells were treated with Ctrl, 10 mM, 20 mM, or 40 mM DCA for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. (J) Cells were treated with Ctrl, 10 mM, or 20 mM DCA for 7 days. Cells were stained with crystal violet. Colony numbers were quantified in (K). (L) Illustration of the DCA activated the PDH activity to suppress cell viability in KO cells. P < 0.05 (*), P < 0.01 (**).

    Journal: Cancer letters

    Article Title: Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer

    doi: 10.1016/j.canlet.2025.217977

    Figure Lengend Snippet: (A) Cells were treated with 20 mM DCA for 48 h. TRAP1, PDK1, pPDH (S232), pPDH (S293), PDH, and Actin protein levels were detected using Western blot analysis. (B) Cells were treated with Ctrl and 20 mM DCA for 24 h. Cells were fixed with 4 % paraformaldehyde and stained with pPDH (S232) antibody. Staining was analyzed using a Nikon microscope. (C, D) The pH value of the culture medium was measured in cells treated with various concentrations of DCA. (E, F) The relative glucose consumption rate and lactic acid concentration of the culture medium in DCA-treated cells were measured using Glucose-GLO and Lactate-GLO kits. (G) WT and KO cells were treated with Ctrl, 10 mM DCA, or 20 mM DCA for 24 h. Intracellular ROS levels were detected using the abcam cellular ROS assay kit and analyzed by flow cytometry. (H) Quantitation of intracellular ROS levels. (I) Cells were treated with Ctrl, 10 mM, 20 mM, or 40 mM DCA for 48 h. Cell viability was analyzed using the CCK-8 assay at OD450. (J) Cells were treated with Ctrl, 10 mM, or 20 mM DCA for 7 days. Cells were stained with crystal violet. Colony numbers were quantified in (K). (L) Illustration of the DCA activated the PDH activity to suppress cell viability in KO cells. P < 0.05 (*), P < 0.01 (**).

    Article Snippet: TRAP1 CRISPR/Cas9 plasmid was obtained from Santa Cruz (Dallas, TX, USA). pCMV6 and pCMV6/TRAP1 plasmids were obtained from Origene (Rockville, MD, USA).

    Techniques: Western Blot, Staining, Microscopy, Concentration Assay, ROS Assay, Flow Cytometry, Quantitation Assay, CCK-8 Assay, Activity Assay