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CapitalBio Corporation sequenom massarray platform
Sequenom Massarray Platform, supplied by CapitalBio Corporation, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/massarray+methylation+platform/sequenom+massarray+platform/pm36907530-113-6-8
Average 90 stars, based on 1 article reviews
sequenom massarray platform - by Bioz Stars, 2026-09
90/100 stars

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Methylation:

Article Title: Gender dimorphism in hepatocarcinogenesis—DNA methylation modification regulated X‐chromosome inactivation escape molecule XIST
Article Snippet: .. Quantitative methylation analysis of the XIST first exon region of HCC patients and the XIST exon region of mice was performed by using Sequenom MassARRAY methylation spectroscopy (CapitalBio). ..

Article Title: Ultra-high field spinal cord MRI in multiple sclerosis: Where are we standing? A literature review.
Article Snippet: .. Quantitative methylation analysis of CpG sites in the Oct4, Sox2, Nanog and Amhr2 promoter region was performed using the Sequenom MassARRAY platform (CapitalBio, Beijing, China). ..

Article Title: Associations between the proliferation of palatal mesenchymal cells, Tgfβ2 promoter methylation, Meg3 expression, and Smad signaling in atRA-induced cleft palate.
Article Snippet: All-trans retinoic acid (atRA) is a teratogen that can induce cleft palate formation.. During palatal development, murine embryonic palate mesenchymal (MEPM) cell proliferation is required for the appropriate development of the palatal frame, with Meg3 serving as a key regulator of the proliferative activity of these cells and the associated epithelial-mesenchymal transition process.. DNA methylation and signaling via the TGFβ/Smad pathway are key in regulating embryonic development.

Article Title: Effect of epigenetic activating of Dlk1-Dio3 imprinted cluster on miR-370 expression due to folate deficiency during nerve development.
Article Snippet: .. Methylation measurement and analysis A Sequenom MassARRAY platform (CapitalBio, Beijing, China) was used to perform the quantitative methylation analysis of IG-DMR in the Dlk-Dio3 imprinted cluster (hg38: chr14q32:100810834–100811156 in human; mm39: chr12qF1:109493355–109494660 in mouse). ..

Article Title: TGF- β 1 Induces Interlukin-11 Expression and Pro-Fibrotic Effect by DNA Demethylation in Subconjunctival Fibroblasts.
Article Snippet: Following the instructions, 1 μg of bisulfitetreated genomic DNA from each sample was implemented through the EZ DNA methylation kit (Zymo Research, CA, USA). .. SequenomMassARRAY platform (CapitalBio, Beijing, China), combined with RNA base-specific cleavage and composed of matrix-assisted laser desorption/ionization time-of-flight (MALDI-TOF) mass spectrometry, was utilized for the quantitative analysis of IL11 methylation (Gen-Bank Accession Number: NM_000641). .. Methprimer (https://www. urogene.org/methprimer/) was included for PCR primer design.

Article Title: C-myc promotes miR-92a-2-5p transcription in rat ovarian granulosa cells after cadmium exposure.
Article Snippet: Cadmium (Cd) can induce ovarian injury by microRNAs (miRNAs), however, the molecular mechanism of miRNAs after Cd exposure have not known.. In this study, 56-day-old adult female Sprague-Dawley (SD) rats were injection with PMSG, after 48 h, ovarian granulosa cells (GCs) were extracted and cultured for 24 h, then treated with 0, 2.5, 5, 10 and 20 μM Cd for 24 h. The results showed that expression levels of miR-92a-2-5p (upregulated) and Bcl2 (downregulated) changed significantly after Cd exposure.. The messenger RNA (mRNA) and protein expression levels of DNMT1, DNMT3A, and DNMT3B had changed, but no obvious differences were found in miR-92a-2-5p single site methylation.

Article Title: An effective restoration of one-carbon metabolism in folate-deficient mice with a high-folate corn inbred line
Article Snippet: .. The Sequenom MassARRAY platform (CapitalBio, Beijing, China) was used to perform quantitative methylation analysis of longinterspersed nucleotide element-1 (LINE-1; Gen-Bank accession number D84391). ..

Spectroscopy:

Article Title: Gender dimorphism in hepatocarcinogenesis—DNA methylation modification regulated X‐chromosome inactivation escape molecule XIST
Article Snippet: .. Quantitative methylation analysis of the XIST first exon region of HCC patients and the XIST exon region of mice was performed by using Sequenom MassARRAY methylation spectroscopy (CapitalBio). ..

Mass Spectrometry:

Article Title: Associations between the proliferation of palatal mesenchymal cells, Tgfβ2 promoter methylation, Meg3 expression, and Smad signaling in atRA-induced cleft palate.
Article Snippet: All-trans retinoic acid (atRA) is a teratogen that can induce cleft palate formation.. During palatal development, murine embryonic palate mesenchymal (MEPM) cell proliferation is required for the appropriate development of the palatal frame, with Meg3 serving as a key regulator of the proliferative activity of these cells and the associated epithelial-mesenchymal transition process.. DNA methylation and signaling via the TGFβ/Smad pathway are key in regulating embryonic development.

Article Title: TGF- β 1 Induces Interlukin-11 Expression and Pro-Fibrotic Effect by DNA Demethylation in Subconjunctival Fibroblasts.
Article Snippet: Following the instructions, 1 μg of bisulfitetreated genomic DNA from each sample was implemented through the EZ DNA methylation kit (Zymo Research, CA, USA). .. SequenomMassARRAY platform (CapitalBio, Beijing, China), combined with RNA base-specific cleavage and composed of matrix-assisted laser desorption/ionization time-of-flight (MALDI-TOF) mass spectrometry, was utilized for the quantitative analysis of IL11 methylation (Gen-Bank Accession Number: NM_000641). .. Methprimer (https://www. urogene.org/methprimer/) was included for PCR primer design.



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MiR‐9‐1 is downregulated by promoter methylation in nasopharyngeal carcinoma (NPC). A, CpG islands in miR‐9‐1. The transcription start site (TSS) is indicated by a curved arrow. The regions analyzed by methylation‐specific PCR (MSP) and <t>MassARRAY</t> are shown. B, Relative miR‐9‐1 expression in normal nasopharyngeal NP69 cells and NPC cell lines. Glyceraldehyde‐3‐phosphate dehydrogenase ( GAPDH ) was used as the endogenous control. C, Relative miR‐9‐1 expression in 11 normal nasopharyngeal tissues (N) and 16 NPC tissues (T). U6 was used as the endogenous control. * P < .05. D, Quantitative MassARRAY methylation analysis of miR‐9‐1 in normal tissues (NT), NPC tissue (P), NP69 cell lines, NPC cell lines. E, F, MSP analysis of miR‐9‐1 promoter methylation in NPC cell lines and tissue specimens. M, methylated; U, unmethylated; L, marker; 1‐14, NPC tissue specimen numbers. G, Demethylation treatment with 5‐Aza‐2’‐deoxycytidine (DAC) restored the expression of miR‐9‐1 in NPC cell lines
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MiR‐9‐1 is downregulated by promoter methylation in nasopharyngeal carcinoma (NPC). A, CpG islands in miR‐9‐1. The transcription start site (TSS) is indicated by a curved arrow. The regions analyzed by methylation‐specific PCR (MSP) and <t>MassARRAY</t> are shown. B, Relative miR‐9‐1 expression in normal nasopharyngeal NP69 cells and NPC cell lines. Glyceraldehyde‐3‐phosphate dehydrogenase ( GAPDH ) was used as the endogenous control. C, Relative miR‐9‐1 expression in 11 normal nasopharyngeal tissues (N) and 16 NPC tissues (T). U6 was used as the endogenous control. * P < .05. D, Quantitative MassARRAY methylation analysis of miR‐9‐1 in normal tissues (NT), NPC tissue (P), NP69 cell lines, NPC cell lines. E, F, MSP analysis of miR‐9‐1 promoter methylation in NPC cell lines and tissue specimens. M, methylated; U, unmethylated; L, marker; 1‐14, NPC tissue specimen numbers. G, Demethylation treatment with 5‐Aza‐2’‐deoxycytidine (DAC) restored the expression of miR‐9‐1 in NPC cell lines
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During transforming growth factor β1 (TGFβ1)-induced epithelial-to-mesenchymal transition (EMT), stomatin was downregulated through <t>methylation-dependent</t> transcription mechanism. (A) Real-time polymerase chain reaction (PCR) was performed to validate the transcriptional change of stomatin identified in the microarray. **, P<0.001; (B) Two CpG islands spanning from −768 to −223 bp and from −143 to +122 bp upstream of STOM gene were identified by EMBOSS cpgplot program (upper). Schematic representation of −768/−223 and −143/+122 (marked with the grey square) CpG islands in the upstream of stomatin gene (lower). Red box marked the exon. The translation start site was position +1; (C) Measuring stomatin promoter methylation levels by Sequenom <t>MassARRAY</t> assay; (D) Sequenom MassARRAY analysis of methylation percentages of CpG sites at the stomatin promoter. The top panel showed the methylation percentages of 30 sites in human bronchial epithelial (HBE) and A549 cells. Dots with different color depths represent different methylation status. Dark dots represent high degrees of methylation. Light dots represent low degrees of methylation. The methylation percentages of 30 CpG sites were compared by two-tailed paired Student’s t test. In line graph, each dot represents an individual CpG dinucleotide. Green dots represent CpG dinucleotides in HBE cells. Red dots represent CpG sites in A549 cells. The corresponding detection sites were connected in a straight line. Real-time PCR was performed to evaluate the expression of stomatin in HBE and A549 cells (P<0.01); (E) The same sequenom MassArray and statistical analyses were also implemented to assess the methylation status of the indicated promoter region of stomatin in A549 and A549-5Aza cells (P<0.01); (F) A549 cells were exposed to TGFβ1 (5 ng/mL) for 2 d or 5 d with or without 5-Aza. Expression of DNMT3A and stomatin was analyzed by western blotting. β-actin was used as a loading control; (G) Sequenom MassArray analysis was implemented to assess the stomatin promoter methylation levels in A549, A549-TGFβ1, and A549-TGFβ1/5-Aza cells (P=0.005, P=0.004, respectively).
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During transforming growth factor β1 (TGFβ1)-induced epithelial-to-mesenchymal transition (EMT), stomatin was downregulated through <t>methylation-dependent</t> transcription mechanism. (A) Real-time polymerase chain reaction (PCR) was performed to validate the transcriptional change of stomatin identified in the microarray. **, P<0.001; (B) Two CpG islands spanning from −768 to −223 bp and from −143 to +122 bp upstream of STOM gene were identified by EMBOSS cpgplot program (upper). Schematic representation of −768/−223 and −143/+122 (marked with the grey square) CpG islands in the upstream of stomatin gene (lower). Red box marked the exon. The translation start site was position +1; (C) Measuring stomatin promoter methylation levels by Sequenom <t>MassARRAY</t> assay; (D) Sequenom MassARRAY analysis of methylation percentages of CpG sites at the stomatin promoter. The top panel showed the methylation percentages of 30 sites in human bronchial epithelial (HBE) and A549 cells. Dots with different color depths represent different methylation status. Dark dots represent high degrees of methylation. Light dots represent low degrees of methylation. The methylation percentages of 30 CpG sites were compared by two-tailed paired Student’s t test. In line graph, each dot represents an individual CpG dinucleotide. Green dots represent CpG dinucleotides in HBE cells. Red dots represent CpG sites in A549 cells. The corresponding detection sites were connected in a straight line. Real-time PCR was performed to evaluate the expression of stomatin in HBE and A549 cells (P<0.01); (E) The same sequenom MassArray and statistical analyses were also implemented to assess the methylation status of the indicated promoter region of stomatin in A549 and A549-5Aza cells (P<0.01); (F) A549 cells were exposed to TGFβ1 (5 ng/mL) for 2 d or 5 d with or without 5-Aza. Expression of DNMT3A and stomatin was analyzed by western blotting. β-actin was used as a loading control; (G) Sequenom MassArray analysis was implemented to assess the stomatin promoter methylation levels in A549, A549-TGFβ1, and A549-TGFβ1/5-Aza cells (P=0.005, P=0.004, respectively).
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Image Search Results


MiR‐9‐1 is downregulated by promoter methylation in nasopharyngeal carcinoma (NPC). A, CpG islands in miR‐9‐1. The transcription start site (TSS) is indicated by a curved arrow. The regions analyzed by methylation‐specific PCR (MSP) and MassARRAY are shown. B, Relative miR‐9‐1 expression in normal nasopharyngeal NP69 cells and NPC cell lines. Glyceraldehyde‐3‐phosphate dehydrogenase ( GAPDH ) was used as the endogenous control. C, Relative miR‐9‐1 expression in 11 normal nasopharyngeal tissues (N) and 16 NPC tissues (T). U6 was used as the endogenous control. * P < .05. D, Quantitative MassARRAY methylation analysis of miR‐9‐1 in normal tissues (NT), NPC tissue (P), NP69 cell lines, NPC cell lines. E, F, MSP analysis of miR‐9‐1 promoter methylation in NPC cell lines and tissue specimens. M, methylated; U, unmethylated; L, marker; 1‐14, NPC tissue specimen numbers. G, Demethylation treatment with 5‐Aza‐2’‐deoxycytidine (DAC) restored the expression of miR‐9‐1 in NPC cell lines

Journal: Cancer Science

Article Title: Methylation‐associated silencing of miR‐9‐1 promotes nasopharyngeal carcinoma progression and glycolysis via HK2

doi: 10.1111/cas.15103

Figure Lengend Snippet: MiR‐9‐1 is downregulated by promoter methylation in nasopharyngeal carcinoma (NPC). A, CpG islands in miR‐9‐1. The transcription start site (TSS) is indicated by a curved arrow. The regions analyzed by methylation‐specific PCR (MSP) and MassARRAY are shown. B, Relative miR‐9‐1 expression in normal nasopharyngeal NP69 cells and NPC cell lines. Glyceraldehyde‐3‐phosphate dehydrogenase ( GAPDH ) was used as the endogenous control. C, Relative miR‐9‐1 expression in 11 normal nasopharyngeal tissues (N) and 16 NPC tissues (T). U6 was used as the endogenous control. * P < .05. D, Quantitative MassARRAY methylation analysis of miR‐9‐1 in normal tissues (NT), NPC tissue (P), NP69 cell lines, NPC cell lines. E, F, MSP analysis of miR‐9‐1 promoter methylation in NPC cell lines and tissue specimens. M, methylated; U, unmethylated; L, marker; 1‐14, NPC tissue specimen numbers. G, Demethylation treatment with 5‐Aza‐2’‐deoxycytidine (DAC) restored the expression of miR‐9‐1 in NPC cell lines

Article Snippet: The Sequenom MassARRAY platform (Agena Bioscience) was applied to examine the promoter methylation level of miR‐9‐1 quantitatively.

Techniques: Methylation, Expressing, Marker

During transforming growth factor β1 (TGFβ1)-induced epithelial-to-mesenchymal transition (EMT), stomatin was downregulated through methylation-dependent transcription mechanism. (A) Real-time polymerase chain reaction (PCR) was performed to validate the transcriptional change of stomatin identified in the microarray. **, P<0.001; (B) Two CpG islands spanning from −768 to −223 bp and from −143 to +122 bp upstream of STOM gene were identified by EMBOSS cpgplot program (upper). Schematic representation of −768/−223 and −143/+122 (marked with the grey square) CpG islands in the upstream of stomatin gene (lower). Red box marked the exon. The translation start site was position +1; (C) Measuring stomatin promoter methylation levels by Sequenom MassARRAY assay; (D) Sequenom MassARRAY analysis of methylation percentages of CpG sites at the stomatin promoter. The top panel showed the methylation percentages of 30 sites in human bronchial epithelial (HBE) and A549 cells. Dots with different color depths represent different methylation status. Dark dots represent high degrees of methylation. Light dots represent low degrees of methylation. The methylation percentages of 30 CpG sites were compared by two-tailed paired Student’s t test. In line graph, each dot represents an individual CpG dinucleotide. Green dots represent CpG dinucleotides in HBE cells. Red dots represent CpG sites in A549 cells. The corresponding detection sites were connected in a straight line. Real-time PCR was performed to evaluate the expression of stomatin in HBE and A549 cells (P<0.01); (E) The same sequenom MassArray and statistical analyses were also implemented to assess the methylation status of the indicated promoter region of stomatin in A549 and A549-5Aza cells (P<0.01); (F) A549 cells were exposed to TGFβ1 (5 ng/mL) for 2 d or 5 d with or without 5-Aza. Expression of DNMT3A and stomatin was analyzed by western blotting. β-actin was used as a loading control; (G) Sequenom MassArray analysis was implemented to assess the stomatin promoter methylation levels in A549, A549-TGFβ1, and A549-TGFβ1/5-Aza cells (P=0.005, P=0.004, respectively).

Journal: Chinese Journal of Cancer Research

Article Title: Stomatin plays a suppressor role in non-small cell lung cancer metastasis

doi: 10.21147/j.issn.1000-9604.2019.06.09

Figure Lengend Snippet: During transforming growth factor β1 (TGFβ1)-induced epithelial-to-mesenchymal transition (EMT), stomatin was downregulated through methylation-dependent transcription mechanism. (A) Real-time polymerase chain reaction (PCR) was performed to validate the transcriptional change of stomatin identified in the microarray. **, P<0.001; (B) Two CpG islands spanning from −768 to −223 bp and from −143 to +122 bp upstream of STOM gene were identified by EMBOSS cpgplot program (upper). Schematic representation of −768/−223 and −143/+122 (marked with the grey square) CpG islands in the upstream of stomatin gene (lower). Red box marked the exon. The translation start site was position +1; (C) Measuring stomatin promoter methylation levels by Sequenom MassARRAY assay; (D) Sequenom MassARRAY analysis of methylation percentages of CpG sites at the stomatin promoter. The top panel showed the methylation percentages of 30 sites in human bronchial epithelial (HBE) and A549 cells. Dots with different color depths represent different methylation status. Dark dots represent high degrees of methylation. Light dots represent low degrees of methylation. The methylation percentages of 30 CpG sites were compared by two-tailed paired Student’s t test. In line graph, each dot represents an individual CpG dinucleotide. Green dots represent CpG dinucleotides in HBE cells. Red dots represent CpG sites in A549 cells. The corresponding detection sites were connected in a straight line. Real-time PCR was performed to evaluate the expression of stomatin in HBE and A549 cells (P<0.01); (E) The same sequenom MassArray and statistical analyses were also implemented to assess the methylation status of the indicated promoter region of stomatin in A549 and A549-5Aza cells (P<0.01); (F) A549 cells were exposed to TGFβ1 (5 ng/mL) for 2 d or 5 d with or without 5-Aza. Expression of DNMT3A and stomatin was analyzed by western blotting. β-actin was used as a loading control; (G) Sequenom MassArray analysis was implemented to assess the stomatin promoter methylation levels in A549, A549-TGFβ1, and A549-TGFβ1/5-Aza cells (P=0.005, P=0.004, respectively).

Article Snippet: The methylation status of Stomatin promoter was detected using Sequenom MassARRAY quantitative methylation analysis platform (BGI tech, Shenzhen, China).

Techniques: Methylation, Real-time Polymerase Chain Reaction, Microarray, Sequenom Massarray Assay, Two Tailed Test, Expressing, Western Blot, Control