Research Areas
Biomedical Subjects
Biography and Research Information
OverviewAI-generated summary
Piyasi Ghosh's research investigates the evolutionary conservation of biological mechanisms, particularly focusing on axon guidance. Her work has explored the Frazzled gene, a key component in midline axon guidance, examining its functional conservation between the insect species *Drosophila* (fruit fly) and *Tribolium* (red flour beetle). This research contributes to understanding fundamental principles of neural development and evolution across different animal groups.
Ghosh also studies the structure and stability of proteins, including archaeal heat-shock proteins. Her publications in this area compare natural and engineered variants, investigating factors such as pH and temperature dependency. These investigations utilize computational modeling to predict protein structure and function. Ghosh collaborates with researchers at the University of Arkansas at Fayetteville, including Ruben Michael Ceballos, Timothy A. Evans, Benjamin C. Wadsworth, and L. Cass Terry.
Metrics
- h-index: 1
- Publications: 9
- Citations: 1
Selected Publications
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Fever temperature alters metabolic and cytokine activities in activated macrophages in mice, chickens and fish 2266416 (2026)
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Effects of fever temperatures on metabolic changes and gene expression in activated monocytic cells from mouse, chicken and rainbow trout sources (2026)
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Evolutionary conservation of midline axon guidance activity between Drosophila and Tribolium Frazzled (2025)
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Evolutionary conservation of midline axon guidance activity between <i>Drosophila</i> and <i>Tribolium</i> Frazzled (2024)
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Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins (2021)
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Modeling Group II Chaperonin “Heat Shock” Protein Structure: pH and temperature dependency Piyasi Ghosh1,2 Vivek Govind Kumar1,3 Mahmoud Moradi3 Ruben Michael Ceballos1,2,4 University of Arkansas, Cell and Molecular Biology Program University of Arkansas, Department of Biological Sciences University of Arkansas, Department of Chemistry and Biochemistry Arkansas Center for Space and Planetary Sciences Program (2021)
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Stability Comparisons between Natural versus Engineered Archaeal Heat‐Shock Proteins (2021)
Collaboration Network
Top Collaborators
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat‐Shock Proteins
- Modeling Group II Chaperonin “Heat Shock” Protein Structure: pH and temperature dependency Piyasi Ghosh1,2 Vivek Govind Kumar1,3 Mahmoud Moradi3 Ruben Michael Ceballos1,2,4 University of Arkansas, Cell and Molecular Biology Program University of Arkansas, Department of Biological Sciences University of Arkansas, Department of Chemistry and Biochemistry Arkansas Center for Space and Planetary Sciences Program
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat‐Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat‐Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat‐Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat‐Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Stability Comparisons between Natural versus Engineered Archaeal Heat‐Shock Proteins
- Evolutionary conservation of midline axon guidance activity between <i>Drosophila</i> and <i>Tribolium</i> Frazzled
- Evolutionary conservation of midline axon guidance activity between Drosophila and Tribolium Frazzled
- Evolutionary conservation of midline axon guidance activity between <i>Drosophila</i> and <i>Tribolium</i> Frazzled
- Evolutionary conservation of midline axon guidance activity between Drosophila and Tribolium Frazzled
- Modeling Group II Chaperonin “Heat Shock” Protein Structure: pH and temperature dependency Piyasi Ghosh1,2 Vivek Govind Kumar1,3 Mahmoud Moradi3 Ruben Michael Ceballos1,2,4 University of Arkansas, Cell and Molecular Biology Program University of Arkansas, Department of Biological Sciences University of Arkansas, Department of Chemistry and Biochemistry Arkansas Center for Space and Planetary Sciences Program
- Modeling Group II Chaperonin “Heat Shock” Protein Structure: pH and temperature dependency Piyasi Ghosh1,2 Vivek Govind Kumar1,3 Mahmoud Moradi3 Ruben Michael Ceballos1,2,4 University of Arkansas, Cell and Molecular Biology Program University of Arkansas, Department of Biological Sciences University of Arkansas, Department of Chemistry and Biochemistry Arkansas Center for Space and Planetary Sciences Program
- Stability Comparisons between Natural versus Engineered Archaeal Heat-Shock Proteins
- Evolutionary conservation of midline axon guidance activity between <i>Drosophila</i> and <i>Tribolium</i> Frazzled
- Evolutionary conservation of midline axon guidance activity between Drosophila and Tribolium Frazzled
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