Tara N. Stuecker
This is a likely match — the affiliation was inferred from OpenAlex, ORCID, and web sources but has not been fully confirmed. Treat with appropriate caution.
Research Staff
Also affiliated: California Institute of Technology (2006–2013); University of Wisconsin System (2012); Jet Propulsion Laboratory (2005–2013); University of Wisconsin–Madison (2012–2015)
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Tara N. Stuecker's research investigates microbial diversity and stress resistance in various environments. Her work has explored the microbial communities present in rock varnish, examining their enumeration, isolation, and characterization, particularly focusing on ultraviolet (UV-C) resistant bacteria. Stuecker has also studied the molecular bacterial diversity and bioburden within commercial airliner cabin air and the air system of a Regenerative Enclosed Life Support Module Simulator. Her research extends to yeast genetics, investigating natural variation to understand the mechanisms of stress resistance acquisition and the genetic basis of cross protection. She has published 47 papers, with 352 citations, and has an h-index of 11. Stuecker has collaborated with researchers at the University of Arkansas at Fayetteville, including Jeffrey A. Lewis and Stephanie E. Hood, and with Wayne P. Wahls at the University of Arkansas for Medical Sciences.
Metrics
- h-index: 11
- Publications: 47
- Citations: 353
Positions
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Research Staff publications 2015–2026University of Arkansas at Fayetteville Institution web page
Selected Publications
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Additional file 2 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Additional file 2 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Additional file 5 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Additional file 5 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Dynamic global acetylation remodeling during the yeast heat shock response (2026)
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Surprising regulatory plasticity for the conserved HOG pathway in diverse Saccharomyces cerevisiae strains (2025)
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MIC*: A Framework for Interpretable Analysis of Ordinal Viability Data (2025)
Collaboration Network
Top Collaborators
- Linkage mapping of yeast cross protection connects gene expression variation to a higher-order organismal trait
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Independent Mechanisms for Acquired Salt Tolerance versus Growth Resumption Induced by Mild Ethanol Pretreatment in Saccharomyces cerevisiae
- Do biofilm communities respond to the chemical signatures of fracking? A test involving streams in North-central Arkansas
- Linkage mapping of yeast cross protection connects gene expression variation to a higher-order organismal trait
Showing 5 of 25 shared publications
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Dynamic global acetylation remodeling during the yeast heat shock response
- Improved vectors for retron-mediated CRISPR-Cas9 genome editing in Saccharomyces cerevisiae
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Improved vectors for retron-mediated CRISPR-Cas9 genome editing in Saccharomyces cerevisiae
Showing 5 of 18 shared publications
- Dynamic global acetylation remodeling during the yeast heat shock response
- Dynamic global acetylation remodeling during the yeast heat shock response
- Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 13 shared publications
- Dynamic global acetylation remodeling during the yeast heat shock response
- Dynamic global acetylation remodeling during the yeast heat shock response
- Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 13 shared publications
- Dynamic global acetylation remodeling during the yeast heat shock response
- Dynamic global acetylation remodeling during the yeast heat shock response
- Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 13 shared publications
- Dynamic global acetylation remodeling during the yeast heat shock response
- Dynamic global acetylation remodeling during the yeast heat shock response
- Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 13 shared publications
- Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 11 shared publications
- Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 11 shared publications
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 10 shared publications
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 10 shared publications
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 10 shared publications
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response
- Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response
Showing 5 of 10 shared publications
- Linkage mapping of yeast cross protection connects gene expression variation to a higher-order organismal trait
- Natural variation in yeast reveals multiple paths for acquiring higher stress resistance
- Linkage mapping of yeast cross protection connects gene expression variation to a higher-order organismal trait
- 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
- 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
- Improved vectors for retron-mediated CRISPR-Cas9 genome editing in Saccharomyces cerevisiae
- MIC*: A Framework for Interpretable Analysis of Ordinal Viability Data
- Improved vectors for retron-mediated CRISPR-Cas9 genome editing in Saccharomyces cerevisiae
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