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Metabolon Inc metabolomic profiling
Metabolomic Profiling, supplied by Metabolon 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/metabolomic+profiling/metabolomic+profiling/pmc13199196-127-3-8
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metabolomic profiling - by Bioz Stars, 2026-09
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Metabolomic:

Article Title: Associations of coffee, alcohol, medication and supplement use with the metabolome and lipidome: an observational study of premenopausal women
Article Snippet: .. Untargeted lipidomic and metabolomic profiling was performed by Metabolon (Durham, NC, USA) (Metabolon ), quantifying 982 lipid species and 1074 metabolites and full details have been provided in our prior studies (Getz et al. , Matthew et al. ). ..

Article Title: Liver Metabolomic Profiling Reveals Distinct Signatures Between Steatosis and Metabolic Dysfunction-Associated Steatohepatitis.
Article Snippet: .. Non- targeted metabolomic profiling of plasma and fresh frozen liver samples was performed by Metabolon Inc. (Durham, NC, USA). ..

Article Title: Metabolomic Profiling Reveals Brain Lipid Alterations in PEX7-Deficient Models of Rhizomelic Chondrodysplasia Punctata
Article Snippet: .. This study was conducted under a McGill University (Montreal, QC, Canada) animal-care-committeeapproved protocol (#5538). https://doi.org/10.3390/biom16010006 Metabolomic profiling for Pex7-deficient mouse samples was performed using the Metabolon, Inc. platform. .. Briefly, samples were prepared using an automated MicroLab STAR system.

Article Title: Characterizing species-specific metabolic signatures in vaginal microbiota across planktonic and biofilm states
Article Snippet: .. Non-targeted metabolomics: The comprehensive metabolomic profiling was conducted externally by Metabolon, Inc. .. Briefly, the sample preparation process utilized the automated MicroLab STAR® system from Hamilton Company.

Article Title: Metabolite Genome-Wide Association in Hispanics with Obesity Reveals Genetic Risk and Interactions with Dietary Factors for Type 2 Diabetes
Article Snippet: .. Plasma samples of 806 participants were obtained for metabolomic profiling by Metabolon Inc. (Morrisville, NC, USA). ..

Article Title: Liver Metabolomic Profiling Reveals Distinct Signatures Between Steatosis and Metabolic Dysfunction‐Associated Steatohepatitis
Article Snippet: .. Non‐targeted metabolomic profiling of plasma and fresh frozen liver samples was performed by Metabolon Inc. (Durham, NC, USA). ..

Article Title: Metabolites and MRI-derived markers of dementia risk in a Puerto Rican cohort.
Article Snippet: 1 Department of Public Health, University of Massachusetts Lowell, Lowell, MA, USA 2 Department of Mathematical Sciences, University of Massachusetts Lowell, Lowell, MA, USA 3 Friedman School of Nutrition Science and Policy, Tufts University, Boston, MA, USA 4 Department of Nutrition, Harvard School of Public Health, Boston, MA, USA 5 Channing Division of Network Medicine, Brigham and Women’s Hospital, Harvard Medical School, Boston, MA, USA 6 Nutrition and Genomics Laboratory, Jean Mayer USDA Human Nutrition Research Center on Aging, Tufts University, Boston, MA, USA 7 Nutritional Genomics and Epigenomics Group, Precision Nutrition and Obesity Program, IMDEA Food, CEI UAM + CSIC, Madrid, Spain 8 Centro de Investigación Biomédica en Red Fisiopatología de la Obesidad y la Nutrición (CIBEROBN), Institute of Health Carlos III, Madrid, Spain 9 Department of Radiology, Harvard Medical School, Boston, MA, USA 10 Department of Neurology, Boston University Chobanian and Avedisian School of Medicine, Boston, USA 11 Department of Agriculture, Nutrition and Food Systems, University of New Hampshire, Durham, USA 12 Department of Biomedical and Nutritional Sciences, University of Massachusetts Lowell, Lowell, MA, USA 13 Geriatric Research Education Clinical Center, Edith Nourse Rogers Memorial Veterans Hospital, Bedford, MA, USA Abstract Objective Metabolomic risk factors for dementia are under studied, especially in Latinos.. We examined the relationship between plasma metabolomic profiles and a Magnetic-Resonance Imaging (MRI)-based markers of brain aging in a cohort of older adult Puerto Ricans residing in the greater Boston area.. Methods We used multiple linear regression, adjusted for covariates, to examine the association between metabolite concentration and MRI-derived brain age deviation.

Clinical Proteomics:

Article Title: Liver Metabolomic Profiling Reveals Distinct Signatures Between Steatosis and Metabolic Dysfunction-Associated Steatohepatitis.
Article Snippet: .. Non- targeted metabolomic profiling of plasma and fresh frozen liver samples was performed by Metabolon Inc. (Durham, NC, USA). ..

Article Title: Metabolite Genome-Wide Association in Hispanics with Obesity Reveals Genetic Risk and Interactions with Dietary Factors for Type 2 Diabetes
Article Snippet: .. Plasma samples of 806 participants were obtained for metabolomic profiling by Metabolon Inc. (Morrisville, NC, USA). ..

Article Title: Liver Metabolomic Profiling Reveals Distinct Signatures Between Steatosis and Metabolic Dysfunction‐Associated Steatohepatitis
Article Snippet: .. Non‐targeted metabolomic profiling of plasma and fresh frozen liver samples was performed by Metabolon Inc. (Durham, NC, USA). ..

other:

Article Title: Metabolomic Signatures of Dietary Patterns and Incident Radiographic Knee Osteoarthritis: A Case-Cohort Study from Osteoarthritis Initiative
Article Snippet: Consistent to our study, metabolomic profiling was also conducted by Metabolon, Inc. using the same platform.



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Bioprofile Testing metabolomic profiling
Analysis of RNA changes and metabolite alterations in 3D-printed scaffolds. (a) Schematic representation depicting the process of transcriptomics analysis and <t>metabolomic</t> analysis in rBMSCs cultured with the 3D-printed scaffolds. (b) Heatmap of differentially expressed genes (DEGs) in PLLA/tZC + NIR groups vs NIR groups (n = 3). (c) Volcano diagram of the gene characteristics of rBMSCs. (d, e) GO enrichment analysis of the (d) up-regulated terms and (e) down-regulated terms among DEGs. (f, g) KEGG enrichment analysis of the (f) up-regulated and (g) down-regulated pathways among DEGs. (h) PCA analysis of untargeted metabolomics of rBMSCs in PLLA/tZC + NIR groups vs NIR groups (n = 5). (i) Volcano diagram of the metabolite characteristics of rBMSCs. (j) The heatmap of differentially expressed metabolites (DEMs). (k) Sankey diagram of pathways for DEMs.
Metabolomic Profiling, supplied by Bioprofile Testing, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Analysis of RNA changes and metabolite alterations in 3D-printed scaffolds. (a) Schematic representation depicting the process of transcriptomics analysis and <t>metabolomic</t> analysis in rBMSCs cultured with the 3D-printed scaffolds. (b) Heatmap of differentially expressed genes (DEGs) in PLLA/tZC + NIR groups vs NIR groups (n = 3). (c) Volcano diagram of the gene characteristics of rBMSCs. (d, e) GO enrichment analysis of the (d) up-regulated terms and (e) down-regulated terms among DEGs. (f, g) KEGG enrichment analysis of the (f) up-regulated and (g) down-regulated pathways among DEGs. (h) PCA analysis of untargeted metabolomics of rBMSCs in PLLA/tZC + NIR groups vs NIR groups (n = 5). (i) Volcano diagram of the metabolite characteristics of rBMSCs. (j) The heatmap of differentially expressed metabolites (DEMs). (k) Sankey diagram of pathways for DEMs.
Metabolomic Profiling, supplied by Metabolon 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/metabolomic+profiling/metabolomic+profiling/pmc13199196-127-3-8
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Analysis of RNA changes and metabolite alterations in 3D-printed scaffolds. (a) Schematic representation depicting the process of transcriptomics analysis and <t>metabolomic</t> analysis in rBMSCs cultured with the 3D-printed scaffolds. (b) Heatmap of differentially expressed genes (DEGs) in PLLA/tZC + NIR groups vs NIR groups (n = 3). (c) Volcano diagram of the gene characteristics of rBMSCs. (d, e) GO enrichment analysis of the (d) up-regulated terms and (e) down-regulated terms among DEGs. (f, g) KEGG enrichment analysis of the (f) up-regulated and (g) down-regulated pathways among DEGs. (h) PCA analysis of untargeted metabolomics of rBMSCs in PLLA/tZC + NIR groups vs NIR groups (n = 5). (i) Volcano diagram of the metabolite characteristics of rBMSCs. (j) The heatmap of differentially expressed metabolites (DEMs). (k) Sankey diagram of pathways for DEMs.
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Analysis of RNA changes and metabolite alterations in 3D-printed scaffolds. (a) Schematic representation depicting the process of transcriptomics analysis and <t>metabolomic</t> analysis in rBMSCs cultured with the 3D-printed scaffolds. (b) Heatmap of differentially expressed genes (DEGs) in PLLA/tZC + NIR groups vs NIR groups (n = 3). (c) Volcano diagram of the gene characteristics of rBMSCs. (d, e) GO enrichment analysis of the (d) up-regulated terms and (e) down-regulated terms among DEGs. (f, g) KEGG enrichment analysis of the (f) up-regulated and (g) down-regulated pathways among DEGs. (h) PCA analysis of untargeted metabolomics of rBMSCs in PLLA/tZC + NIR groups vs NIR groups (n = 5). (i) Volcano diagram of the metabolite characteristics of rBMSCs. (j) The heatmap of differentially expressed metabolites (DEMs). (k) Sankey diagram of pathways for DEMs.
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Metabolon Inc metabolomics profile
( A ) The fitted regression line and cross-validated model performance (R 2 = 0.66) show the link between observed DXA-derived VAT z-scores and PLS-predicted VAT z-scores based on the <t>metabolomics</t> data. ( B ) The PLS model’s variable importance in projection (VIP) scores were used to rank the top 30 metabolites; higher VIP values indicate a larger contribution to the metabolomic signature linked to VAT. Metabolites are colored by VIP score intensity (purple—low to yellow—high). * and ** indicates a compound that has not been officially confirmed based on a standard, but that Metabolon is confident in its identity.
Metabolomics Profile, supplied by Metabolon Inc, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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( A ) The fitted regression line and cross-validated model performance (R 2 = 0.66) show the link between observed DXA-derived VAT z-scores and PLS-predicted VAT z-scores based on the <t>metabolomics</t> data. ( B ) The PLS model’s variable importance in projection (VIP) scores were used to rank the top 30 metabolites; higher VIP values indicate a larger contribution to the metabolomic signature linked to VAT. Metabolites are colored by VIP score intensity (purple—low to yellow—high). * and ** indicates a compound that has not been officially confirmed based on a standard, but that Metabolon is confident in its identity.
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( A ) The fitted regression line and cross-validated model performance (R 2 = 0.66) show the link between observed DXA-derived VAT z-scores and PLS-predicted VAT z-scores based on the <t>metabolomics</t> data. ( B ) The PLS model’s variable importance in projection (VIP) scores were used to rank the top 30 metabolites; higher VIP values indicate a larger contribution to the metabolomic signature linked to VAT. Metabolites are colored by VIP score intensity (purple—low to yellow—high). * and ** indicates a compound that has not been officially confirmed based on a standard, but that Metabolon is confident in its identity.
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( A ) The fitted regression line and cross-validated model performance (R 2 = 0.66) show the link between observed DXA-derived VAT z-scores and PLS-predicted VAT z-scores based on the <t>metabolomics</t> data. ( B ) The PLS model’s variable importance in projection (VIP) scores were used to rank the top 30 metabolites; higher VIP values indicate a larger contribution to the metabolomic signature linked to VAT. Metabolites are colored by VIP score intensity (purple—low to yellow—high). * and ** indicates a compound that has not been officially confirmed based on a standard, but that Metabolon is confident in its identity.
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Novogene metabolomic profiling
( A ) The fitted regression line and cross-validated model performance (R 2 = 0.66) show the link between observed DXA-derived VAT z-scores and PLS-predicted VAT z-scores based on the <t>metabolomics</t> data. ( B ) The PLS model’s variable importance in projection (VIP) scores were used to rank the top 30 metabolites; higher VIP values indicate a larger contribution to the metabolomic signature linked to VAT. Metabolites are colored by VIP score intensity (purple—low to yellow—high). * and ** indicates a compound that has not been officially confirmed based on a standard, but that Metabolon is confident in its identity.
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Fisher Scientific metabolomic profiling
Principal component analysis diagram between the two groups. ( a ) Three-dimensional PCA score plot. PC1, PC2, and PC3 represent the first three principal components, explaining 28.6%, 23.9%, and 14.8% of the total variance, respectively. Each sphere represents an individual muscle sample; red spheres = GS group ( n = 8), blue spheres = CT group ( n = 4). The spatial separation between groups indicates distinct metabolic profiles; ( b ) Orthogonal partial least squares-discriminant analysis (OPLS-DA) score plot of muscle <t>metabolomics</t> data between GS group and CT group. The horizontal axis (t ) represents the predictive principal component (explaining 17.7% of variance), capturing the maximum separation between groups. The vertical axis (to ) represents the orthogonal principal component (explaining 21.7% of variance), capturing within-group variation. GS samples (red) cluster at approximately (0.8, –0.2), and CT samples (blue) cluster at approximately (–0.8, 0.2). Model quality parameters: R 2 Y = 0.963, Q 2 = 0.706.; ( c ) The OPLS-DA model, validation plot displays the horizontal axis representing model accuracy and the vertical axis showing the frequency of classification outcomes. Specifically, this model conducted 200 randomized permutation experiments on datasets. When Q2’s p -value reaches 0.01, it indicates that 4 randomized grouping models outperformed the OPLS-DA model in this permutation test. If R2Y’s p -value equals 0.545, it suggests that 109 randomized grouping models demonstrated higher explanatory power for the Y matrix compared to the OPLS-DA model. Generally, models with p -values below 0.05 are considered optimal.
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Image Search Results


Analysis of RNA changes and metabolite alterations in 3D-printed scaffolds. (a) Schematic representation depicting the process of transcriptomics analysis and metabolomic analysis in rBMSCs cultured with the 3D-printed scaffolds. (b) Heatmap of differentially expressed genes (DEGs) in PLLA/tZC + NIR groups vs NIR groups (n = 3). (c) Volcano diagram of the gene characteristics of rBMSCs. (d, e) GO enrichment analysis of the (d) up-regulated terms and (e) down-regulated terms among DEGs. (f, g) KEGG enrichment analysis of the (f) up-regulated and (g) down-regulated pathways among DEGs. (h) PCA analysis of untargeted metabolomics of rBMSCs in PLLA/tZC + NIR groups vs NIR groups (n = 5). (i) Volcano diagram of the metabolite characteristics of rBMSCs. (j) The heatmap of differentially expressed metabolites (DEMs). (k) Sankey diagram of pathways for DEMs.

Journal: Bioactive Materials

Article Title: Oxygen-vacancy-engineered t-ZnO-CeO 2 Schottky junction enhanced infectious bone regeneration via photoelectric-photocatalytic effects-induced mitochondrial quality control

doi: 10.1016/j.bioactmat.2026.04.042

Figure Lengend Snippet: Analysis of RNA changes and metabolite alterations in 3D-printed scaffolds. (a) Schematic representation depicting the process of transcriptomics analysis and metabolomic analysis in rBMSCs cultured with the 3D-printed scaffolds. (b) Heatmap of differentially expressed genes (DEGs) in PLLA/tZC + NIR groups vs NIR groups (n = 3). (c) Volcano diagram of the gene characteristics of rBMSCs. (d, e) GO enrichment analysis of the (d) up-regulated terms and (e) down-regulated terms among DEGs. (f, g) KEGG enrichment analysis of the (f) up-regulated and (g) down-regulated pathways among DEGs. (h) PCA analysis of untargeted metabolomics of rBMSCs in PLLA/tZC + NIR groups vs NIR groups (n = 5). (i) Volcano diagram of the metabolite characteristics of rBMSCs. (j) The heatmap of differentially expressed metabolites (DEMs). (k) Sankey diagram of pathways for DEMs.

Article Snippet: For metabolomic profiling, the samples were sent to Bioprofile Co., Ltd. (Shanghai, China) for analysis.

Techniques: Transcriptomics, Metabolomic, Cell Culture

( A ) The fitted regression line and cross-validated model performance (R 2 = 0.66) show the link between observed DXA-derived VAT z-scores and PLS-predicted VAT z-scores based on the metabolomics data. ( B ) The PLS model’s variable importance in projection (VIP) scores were used to rank the top 30 metabolites; higher VIP values indicate a larger contribution to the metabolomic signature linked to VAT. Metabolites are colored by VIP score intensity (purple—low to yellow—high). * and ** indicates a compound that has not been officially confirmed based on a standard, but that Metabolon is confident in its identity.

Journal: Metabolites

Article Title: Metabolomic Signature of Visceral Adiposity: Insights from a Population-Based Cohort

doi: 10.3390/metabo16050343

Figure Lengend Snippet: ( A ) The fitted regression line and cross-validated model performance (R 2 = 0.66) show the link between observed DXA-derived VAT z-scores and PLS-predicted VAT z-scores based on the metabolomics data. ( B ) The PLS model’s variable importance in projection (VIP) scores were used to rank the top 30 metabolites; higher VIP values indicate a larger contribution to the metabolomic signature linked to VAT. Metabolites are colored by VIP score intensity (purple—low to yellow—high). * and ** indicates a compound that has not been officially confirmed based on a standard, but that Metabolon is confident in its identity.

Article Snippet: Additionally, the dataset included information on medication usage [ ], medical history, and a metabolomics profile covering more than 1000 metabolites using the Metabolon platform [ ].

Techniques: Derivative Assay, Metabolomic

Principal component analysis diagram between the two groups. ( a ) Three-dimensional PCA score plot. PC1, PC2, and PC3 represent the first three principal components, explaining 28.6%, 23.9%, and 14.8% of the total variance, respectively. Each sphere represents an individual muscle sample; red spheres = GS group ( n = 8), blue spheres = CT group ( n = 4). The spatial separation between groups indicates distinct metabolic profiles; ( b ) Orthogonal partial least squares-discriminant analysis (OPLS-DA) score plot of muscle metabolomics data between GS group and CT group. The horizontal axis (t ) represents the predictive principal component (explaining 17.7% of variance), capturing the maximum separation between groups. The vertical axis (to ) represents the orthogonal principal component (explaining 21.7% of variance), capturing within-group variation. GS samples (red) cluster at approximately (0.8, –0.2), and CT samples (blue) cluster at approximately (–0.8, 0.2). Model quality parameters: R 2 Y = 0.963, Q 2 = 0.706.; ( c ) The OPLS-DA model, validation plot displays the horizontal axis representing model accuracy and the vertical axis showing the frequency of classification outcomes. Specifically, this model conducted 200 randomized permutation experiments on datasets. When Q2’s p -value reaches 0.01, it indicates that 4 randomized grouping models outperformed the OPLS-DA model in this permutation test. If R2Y’s p -value equals 0.545, it suggests that 109 randomized grouping models demonstrated higher explanatory power for the Y matrix compared to the OPLS-DA model. Generally, models with p -values below 0.05 are considered optimal.

Journal: Animals : an Open Access Journal from MDPI

Article Title: Effects of Feeding High-Moisture Corn on Meat Performance, Meat Quality, Muscle Metabolism, and Gut Microbiota in Kazakh Rams

doi: 10.3390/ani16091387

Figure Lengend Snippet: Principal component analysis diagram between the two groups. ( a ) Three-dimensional PCA score plot. PC1, PC2, and PC3 represent the first three principal components, explaining 28.6%, 23.9%, and 14.8% of the total variance, respectively. Each sphere represents an individual muscle sample; red spheres = GS group ( n = 8), blue spheres = CT group ( n = 4). The spatial separation between groups indicates distinct metabolic profiles; ( b ) Orthogonal partial least squares-discriminant analysis (OPLS-DA) score plot of muscle metabolomics data between GS group and CT group. The horizontal axis (t ) represents the predictive principal component (explaining 17.7% of variance), capturing the maximum separation between groups. The vertical axis (to ) represents the orthogonal principal component (explaining 21.7% of variance), capturing within-group variation. GS samples (red) cluster at approximately (0.8, –0.2), and CT samples (blue) cluster at approximately (–0.8, 0.2). Model quality parameters: R 2 Y = 0.963, Q 2 = 0.706.; ( c ) The OPLS-DA model, validation plot displays the horizontal axis representing model accuracy and the vertical axis showing the frequency of classification outcomes. Specifically, this model conducted 200 randomized permutation experiments on datasets. When Q2’s p -value reaches 0.01, it indicates that 4 randomized grouping models outperformed the OPLS-DA model in this permutation test. If R2Y’s p -value equals 0.545, it suggests that 109 randomized grouping models demonstrated higher explanatory power for the Y matrix compared to the OPLS-DA model. Generally, models with p -values below 0.05 are considered optimal.

Article Snippet: For metabolomic profiling, 100 mg of longissimus muscle tissue was combined with 400 μL of methanol (A452-4, Fisher Chemical, Thermo Fisher Scientific, Waltham, MA, USA), vortex-mixed for 1 min, and subjected to five cycles of ultrasonication in an ice-water bath (1 min each, with 1 min intervals).

Techniques: Biomarker Discovery