Ryan Holdiness
Researcher
Also affiliated: Lyon College (2026); University of Arkansas Community College at Batesville (2026)
Unknown Researcher
Research Areas
Biomedical Subjects
Biography and Research Information
OverviewAI-generated summary
Ryan Holdiness researches the biological mechanisms underlying cardiometabolic diseases, focusing on fibroblast responses within three-dimensional microenvironments. His work investigates the interplay between biomechanics and epigenomics in atypical fibroblast behavior, particularly under nutritional stress simulating cardiometabolic conditions. Holdiness also explores the global transcriptional profiling of adipose tissue to uncover sex-dependent mechanisms in acute obesity and their implications for heart-adipose interorgan crosstalk. Additionally, his research includes a proteomics approach to identify mechanisms of anthracycline-induced cardiotoxicity in human cardiac fibroblasts. Holdiness has published work on late-stage functionalization of the rifamycin core via click chemistry, exploring new antibacterial derivatives.
Metrics
- h-index: 1
- Publications: 6
- Citations: 1
Selected Publications
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Sex-Specific Adipose Transcriptomic Reprogramming Drives Early Inter-Organ Remodeling in Heart and Liver Under Nutrient Excess (2026)
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3-D biomechanics and epigenomics reveal atypical fibroblast responses in cardiometabolic disease (2025)
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Simulating Cardiometabolic Disease in a 3D-Microenvironment: Human Cardiac Fibroblast Response to Nutritional Stress (2025)
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Global Transcriptional Profiling of Adipose Tissue Uncovers Unique Sex-Dependent Mechanisms in Acute Obesity: Implications for Adipose-Heart Interorgan Crosstalk (2025)
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Proteomics Approach to Identify Anthracycline-induced Cardiotoxicity Mechanisms in Human Cardiac Fibroblasts (2024)
Collaboration Network
Top Collaborators
- 3-D biomechanics and epigenomics reveal atypical fibroblast responses in cardiometabolic disease
- Proteomics Approach to Identify Anthracycline-induced Cardiotoxicity Mechanisms in Human Cardiac Fibroblasts
- Global Transcriptional Profiling of Adipose Tissue Uncovers Unique Sex-Dependent Mechanisms in Acute Obesity: Implications for Adipose-Heart Interorgan Crosstalk
- Simulating Cardiometabolic Disease in a 3D-Microenvironment: Human Cardiac Fibroblast Response to Nutritional Stress
- 3-D biomechanics and epigenomics reveal atypical fibroblast responses in cardiometabolic disease
- Global Transcriptional Profiling of Adipose Tissue Uncovers Unique Sex-Dependent Mechanisms in Acute Obesity: Implications for Adipose-Heart Interorgan Crosstalk
- Simulating Cardiometabolic Disease in a 3D-Microenvironment: Human Cardiac Fibroblast Response to Nutritional Stress
- Global Transcriptional Profiling of Adipose Tissue Uncovers Unique Sex-Dependent Mechanisms in Acute Obesity: Implications for Adipose-Heart Interorgan Crosstalk
- Simulating Cardiometabolic Disease in a 3D-Microenvironment: Human Cardiac Fibroblast Response to Nutritional Stress
- 3-D biomechanics and epigenomics reveal atypical fibroblast responses in cardiometabolic disease
- Simulating Cardiometabolic Disease in a 3D-Microenvironment: Human Cardiac Fibroblast Response to Nutritional Stress
- Proteomics Approach to Identify Anthracycline-induced Cardiotoxicity Mechanisms in Human Cardiac Fibroblasts
- Proteomics Approach to Identify Anthracycline-induced Cardiotoxicity Mechanisms in Human Cardiac Fibroblasts
- Proteomics Approach to Identify Anthracycline-induced Cardiotoxicity Mechanisms in Human Cardiac Fibroblasts
- Global Transcriptional Profiling of Adipose Tissue Uncovers Unique Sex-Dependent Mechanisms in Acute Obesity: Implications for Adipose-Heart Interorgan Crosstalk
- Global Transcriptional Profiling of Adipose Tissue Uncovers Unique Sex-Dependent Mechanisms in Acute Obesity: Implications for Adipose-Heart Interorgan Crosstalk
- Global Transcriptional Profiling of Adipose Tissue Uncovers Unique Sex-Dependent Mechanisms in Acute Obesity: Implications for Adipose-Heart Interorgan Crosstalk
- Global Transcriptional Profiling of Adipose Tissue Uncovers Unique Sex-Dependent Mechanisms in Acute Obesity: Implications for Adipose-Heart Interorgan Crosstalk
- 3-D biomechanics and epigenomics reveal atypical fibroblast responses in cardiometabolic disease
- 3-D biomechanics and epigenomics reveal atypical fibroblast responses in cardiometabolic disease
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