Carson Stacy
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Graduate Student
Also affiliated: Crouse Hospital (2015)
Graduate Student Researcher
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Carson Stacy's research investigates the influence of diet on host tolerance and its connection to global gene expression in avian host-pathogen systems. This work explores natural variations in yeast, examining how these variations can lead to increased stress resistance. Stacy also contributes to the development of analytical frameworks, including the MIC* framework for interpreting ordinal viability data. Their scholarly work includes studies on the stability of archaeal heat-shock proteins and the regulatory plasticity of conserved pathways in yeast strains. Stacy has co-authored publications with researchers at the University of Arkansas at Fayetteville, including Jeffrey A. Lewis, Erin L. Sauer, Sarah E. DuRant, and Weston Perrine.
Metrics
- h-index: 3
- Publications: 13
- Citations: 22
Selected Publications
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Reproducibility Bundle for "MIC*: A Framework for Interpretable Analysis of Ordinal Viability Data" (2026)
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Reproducibility Bundle for "MIC*: A Framework for Interpretable Analysis of Ordinal Viability Data" (2026)
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The Genetic and Environmental Determinants of Stress Resilience Across Model Systems (2025)Journal of the Arkansas Academy of Science OpenAlex
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Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains (2025)
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Surprising regulatory plasticity for the conserved HOG pathway in diverse <i>Saccharomyces cerevisiae</i> strains (2025)
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Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains (2025)
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Bicycle-Related Trauma Trends in a Region of Expanding Cycling Infrastructure (2025)
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MIC*: A Framework for Interpretable Analysis of Ordinal Viability Data (2025)
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Diet Driven Differences in Host Tolerance Are Linked to Shifts in Global Gene Expression in a Common Avian Host‐Pathogen System (2025)
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Structural Stability Comparisons Between Natural and Engineered Group II Chaperonins: Are Crenarchaeal “Heat Shock” Proteins Also “pH Shock” Resistant? (2024)
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Diet driven differences in host tolerance are linked to shifts in global gene expression in a common avian host-pathogen system (2024)
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Natural variation in yeast reveals multiple paths for acquiring higher stress resistance (2024)
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Natural variation in yeast reveals multiple paths for acquiring higher stress resistance (2023)
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Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins (2021)
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Quantifying relative virulence: when μ max fails and AUC alone just is not enough (2020)
Collaboration Network
Top Collaborators
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Diet driven differences in host tolerance are linked to shifts in global gene expression in a common avian host-pathogen system
- Diet Driven Differences in Host Tolerance Are Linked to Shifts in Global Gene Expression in a Common Avian Host‐Pathogen System
- MIC*: A Framework for Interpretable Analysis of Ordinal Viability Data
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
Showing 5 of 8 shared publications
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse <i>Saccharomyces cerevisiae</i> strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse <i>Saccharomyces cerevisiae</i> strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- MIC*: A Framework for Interpretable Analysis of Ordinal Viability Data
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Surprising regulatory plasticity for the conserved HOG pathway in diverse <i>Saccharomyces cerevisiae</i> strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse <i>Saccharomyces cerevisiae</i> strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse <i>Saccharomyces cerevisiae</i> strains
- Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Structural Stability Comparisons Between Natural and Engineered Group II Chaperonins: Are Crenarchaeal “Heat Shock” Proteins Also “pH Shock” Resistant?
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Structural Stability Comparisons Between Natural and Engineered Group II Chaperonins: Are Crenarchaeal “Heat Shock” Proteins Also “pH Shock” Resistant?
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Structural Stability Comparisons Between Natural and Engineered Group II Chaperonins: Are Crenarchaeal “Heat Shock” Proteins Also “pH Shock” Resistant?
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Structural Stability Comparisons Between Natural and Engineered Group II Chaperonins: Are Crenarchaeal “Heat Shock” Proteins Also “pH Shock” Resistant?
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Structural Stability Comparisons Between Natural and Engineered Group II Chaperonins: Are Crenarchaeal “Heat Shock” Proteins Also “pH Shock” Resistant?
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Structural Stability Comparisons Between Natural and Engineered Group II Chaperonins: Are Crenarchaeal “Heat Shock” Proteins Also “pH Shock” Resistant?
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Diet driven differences in host tolerance are linked to shifts in global gene expression in a common avian host-pathogen system
- Diet Driven Differences in Host Tolerance Are Linked to Shifts in Global Gene Expression in a Common Avian Host‐Pathogen System
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