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micro ct  (Revvity)


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    Structured Review

    Revvity micro ct
    Micro Ct, supplied by Revvity, used in various techniques. Bioz Stars score: 97/100, based on 2088 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/micro+ct/Quantum+GX3+microCT/pmc12963995-441-6-7
    Average 97 stars, based on 2088 article reviews
    micro ct - by Bioz Stars, 2026-09
    97/100 stars

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    Related Articles

    other:

    Article Title: CKIP-1 mediates P. gingivalis -suppressed osteogenic/cementogenic differentiation of periodontal ligament cells partially via p38 signaling pathway
    Article Snippet: Micro-CT (Quantum GX2, PerkinElmer) was used to verify the successful construction of the AP model with the following parameters: 70 kV, 100 μA, 0.5 Al filter, 5 mm field of view, 20 μm pixel size.

    Article Title: An intelligent controlled release hydrogel with photothermal effect for the treatment of bone defects
    Article Snippet: To solve the difficulty of natural healing in patients with severe bone defects, and the challenges of insufficient autologous bone graft material and large incisions in conventional surgery, we were designed an intelligent coregulated hydrogel system with NIR response.. The goal is to be able to prevent inflammation and bacterial adhesion, thereby promoting repair and development of the bone defect area.. The hydrogel system consisted of hyaluronic acid, carboxymethyl chitosan and Pht-loaded PDA-encapsulated ZIF-8 NPs (Pht@ZIF-8@PDA) by Schiff base reaction.

    Article Title: Vision degrading myodesopsia assessed with optos ultra-widefield scanning laser ophthalmoscope.
    Article Snippet: At 21 days after tumor cell inoculation, liver metastases were detected by micro-CT (IVIS Lumina II; PerkinElmer, Massachusetts, US).

    Article Title: PLGA/BGP/Nef porous composite restrains osteoclasts by inhibiting the NF-κB pathway, enhances IGF-1-mediated osteogenic differentiation and promotes bone regeneration
    Article Snippet: Micro-CT (Perkin Elmer, QuantumGX2-2-E) was performed every two weeks to observe the repair effect during the process.

    Article Title: A multimodal ROS logic-gated therapeutic platform disrupts the vicious cycle of senescence to promote aged bone defect repair
    Article Snippet: Bone regeneration was evaluated using a micro-CT (PerkinElmer Quantum GX2, Japan).

    Article Title: Osteogenic differentiation of 3D-printed porous tantalum with nano-topographic modification for repairing craniofacial bone defects
    Article Snippet: The bone tissue samples were fixed in 4% paraformaldehyde for 24–48 h, and it was scanned by micro-CT (Quantum GX2 micro-CT, PerkinElmer, United States), and images and statistics were obtained using its accompanying automated bone analysis software (VAccuCTTM, PerkinElmer, United States).

    Micro-CT:

    Article Title: MSC–microvesicles protect cartilage from degradation in early rheumatoid arthritis via immunoregulation
    Article Snippet: .. Micro-CT was performed via a Quantum GX micro-CT Imaging System (PerkinElmer, USA) to assess the extent of bone destruction and osteoporosis. ..

    Article Title: MSC-microvesicles protect cartilage from degradation in early rheumatoid arthritis via immunoregulation.
    Article Snippet: .. Micro-CT was performed via a Quantum GX micro-CT Imaging System (PerkinElmer, USA) to assess the extent of bone destruction and osteoporosis. ..

    Imaging:

    Article Title: MSC–microvesicles protect cartilage from degradation in early rheumatoid arthritis via immunoregulation
    Article Snippet: .. Micro-CT was performed via a Quantum GX micro-CT Imaging System (PerkinElmer, USA) to assess the extent of bone destruction and osteoporosis. ..

    Article Title: MSC-microvesicles protect cartilage from degradation in early rheumatoid arthritis via immunoregulation.
    Article Snippet: .. Micro-CT was performed via a Quantum GX micro-CT Imaging System (PerkinElmer, USA) to assess the extent of bone destruction and osteoporosis. ..



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    Preparation and characterization of Mg 2+ -releasing piezoelectric scaffolds. A) Schematic illustration showing the preparation process for PWH Gel. B) XRD patterns and C) FTIR spectra of WH NP and PWH NP. D) Representative SEM image and elemental mapping of PWH NP, demonstrating uniform distribution of the characteristic Ca, P, O and Mg element. E) 1 H NMR spectra of gelatin and GelMA. F) Representative SEM images and elemental mapping of PWH Gel, showing highly interconnected porous architecture and homogeneous element dispersion. <t>G)</t> <t>Micro-CT</t> reconstruction illustrating the three-dimensional interconnected porous structure of PWH Gel. H-I) Voltage and current outputs of the WH Gel and PWH Gel under pressure. J-K) COMSOL finite element analysis simulation showing the stress and electric field distribution under external compression. L) Photograph showing the piezoelectric response effect demonstrated by lighting a bulb. M) In vivo piezoelectric testing in a rat radial defect under cyclical compression at 10 N.
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    Preparation and characterization of Mg 2+ -releasing piezoelectric scaffolds. A) Schematic illustration showing the preparation process for PWH Gel. B) XRD patterns and C) FTIR spectra of WH NP and PWH NP. D) Representative SEM image and elemental mapping of PWH NP, demonstrating uniform distribution of the characteristic Ca, P, O and Mg element. E) 1 H NMR spectra of gelatin and GelMA. F) Representative SEM images and elemental mapping of PWH Gel, showing highly interconnected porous architecture and homogeneous element dispersion. <t>G)</t> <t>Micro-CT</t> reconstruction illustrating the three-dimensional interconnected porous structure of PWH Gel. H-I) Voltage and current outputs of the WH Gel and PWH Gel under pressure. J-K) COMSOL finite element analysis simulation showing the stress and electric field distribution under external compression. L) Photograph showing the piezoelectric response effect demonstrated by lighting a bulb. M) In vivo piezoelectric testing in a rat radial defect under cyclical compression at 10 N.
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    Image Search Results


    Preparation and characterization of Mg 2+ -releasing piezoelectric scaffolds. A) Schematic illustration showing the preparation process for PWH Gel. B) XRD patterns and C) FTIR spectra of WH NP and PWH NP. D) Representative SEM image and elemental mapping of PWH NP, demonstrating uniform distribution of the characteristic Ca, P, O and Mg element. E) 1 H NMR spectra of gelatin and GelMA. F) Representative SEM images and elemental mapping of PWH Gel, showing highly interconnected porous architecture and homogeneous element dispersion. G) Micro-CT reconstruction illustrating the three-dimensional interconnected porous structure of PWH Gel. H-I) Voltage and current outputs of the WH Gel and PWH Gel under pressure. J-K) COMSOL finite element analysis simulation showing the stress and electric field distribution under external compression. L) Photograph showing the piezoelectric response effect demonstrated by lighting a bulb. M) In vivo piezoelectric testing in a rat radial defect under cyclical compression at 10 N.

    Journal: Bioactive Materials

    Article Title: Biodegradable Mg 2+ -releasing piezoelectric scaffold for segmental bone defect repair

    doi: 10.1016/j.bioactmat.2026.02.017

    Figure Lengend Snippet: Preparation and characterization of Mg 2+ -releasing piezoelectric scaffolds. A) Schematic illustration showing the preparation process for PWH Gel. B) XRD patterns and C) FTIR spectra of WH NP and PWH NP. D) Representative SEM image and elemental mapping of PWH NP, demonstrating uniform distribution of the characteristic Ca, P, O and Mg element. E) 1 H NMR spectra of gelatin and GelMA. F) Representative SEM images and elemental mapping of PWH Gel, showing highly interconnected porous architecture and homogeneous element dispersion. G) Micro-CT reconstruction illustrating the three-dimensional interconnected porous structure of PWH Gel. H-I) Voltage and current outputs of the WH Gel and PWH Gel under pressure. J-K) COMSOL finite element analysis simulation showing the stress and electric field distribution under external compression. L) Photograph showing the piezoelectric response effect demonstrated by lighting a bulb. M) In vivo piezoelectric testing in a rat radial defect under cyclical compression at 10 N.

    Article Snippet: The collected radius samples were scanned and imaged using a micro-CT scanner (SkyScan1276, Bruker, China) and a digital X-ray machine (Parameter 3D, Kubtec, USA).

    Techniques: Dispersion, Micro-CT, In Vivo

    In vivo assessments of large segmental bone defect regeneration using Mg 2+ -releasing piezoelectric scaffold. A-B) Schematic showing the surgical procedure for scaffold implantation in rat radial defects (Scale bar = 1 cm). C) Macroscopic images of the defect site at 6- and 12- weeks post-implantation. D) RUS scores for radial repair. E) 3D micro-CT images of the defects at 6- and 12- weeks post-implantation (Scale bar = 3 mm). F-G) Quantitative micro-CT analysis of BV/TV and trabecular number (Tb.N) in cryogel-treated regions at 6- and 12- weeks post-implantation. H) Representative H&E and Masson's trichrome staining images of defect tissues at 6- and 12-weeks post-implantation (Scale bar: 1 mm). I) Immunohistochemical staining for COL-I (Scale bar: 1 mm). J) Representative immunofluorescence staining of CD31 (Scale bar: 1 mm). Data are expressed as mean ± S.D. (n = 3 independent replicates). Statistical significance was determined as ∗P < 0.05; ∗∗P < 0.01; ∗∗∗P < 0.001; ∗∗∗∗P < 0.0001; NS, not significant.

    Journal: Bioactive Materials

    Article Title: Biodegradable Mg 2+ -releasing piezoelectric scaffold for segmental bone defect repair

    doi: 10.1016/j.bioactmat.2026.02.017

    Figure Lengend Snippet: In vivo assessments of large segmental bone defect regeneration using Mg 2+ -releasing piezoelectric scaffold. A-B) Schematic showing the surgical procedure for scaffold implantation in rat radial defects (Scale bar = 1 cm). C) Macroscopic images of the defect site at 6- and 12- weeks post-implantation. D) RUS scores for radial repair. E) 3D micro-CT images of the defects at 6- and 12- weeks post-implantation (Scale bar = 3 mm). F-G) Quantitative micro-CT analysis of BV/TV and trabecular number (Tb.N) in cryogel-treated regions at 6- and 12- weeks post-implantation. H) Representative H&E and Masson's trichrome staining images of defect tissues at 6- and 12-weeks post-implantation (Scale bar: 1 mm). I) Immunohistochemical staining for COL-I (Scale bar: 1 mm). J) Representative immunofluorescence staining of CD31 (Scale bar: 1 mm). Data are expressed as mean ± S.D. (n = 3 independent replicates). Statistical significance was determined as ∗P < 0.05; ∗∗P < 0.01; ∗∗∗P < 0.001; ∗∗∗∗P < 0.0001; NS, not significant.

    Article Snippet: The collected radius samples were scanned and imaged using a micro-CT scanner (SkyScan1276, Bruker, China) and a digital X-ray machine (Parameter 3D, Kubtec, USA).

    Techniques: In Vivo, Micro-CT, Staining, Immunohistochemical staining, Immunofluorescence