Divya M. Gollapalli
PhD Student, Tufts University
Also affiliated: Tufts University (2026)
Formerly Arkansas PhD Student, University of Arkansas through 2025; now PhD Student, Tufts University.
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Divya M. Gollapalli investigates skin wound healing dynamics and metabolism. Her research utilizes AI-powered analysis of label-free multiphoton imaging to understand these processes. Gollapalli's work also focuses on quantifying the interaction between age and diabetes on skin wound metabolism through in vivo multiphoton microscopy. She has co-authored two publications with collaborators Marcos R. Rodriguez and Malavika Nidhi, and one publication with Jake D. Jones, all from the University of Arkansas at Fayetteville.
Metrics
- Publications: 3
Positions
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PhD Student 2025–presentTufts University Biomedical Engineering ORCID
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PhD Student 2023–2025University of Arkansas at Fayetteville Biomedical Engineering ORCID
Selected Publications
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Force-responsive biomaterials drive tissue repair by harnessing endogenous growth factors (2026)
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Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging (2025)
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Quantifying the Interaction between Age and Diabetes on Skin Wound Metabolism Using In Vivo Multiphoton Microscopy (2024)
Collaboration Network
Top Collaborators
- Quantifying the Interaction between Age and Diabetes on Skin Wound Metabolism Using In Vivo Multiphoton Microscopy
- Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging
- Force-responsive biomaterials drive tissue repair by harnessing endogenous growth factors
- Quantifying the Interaction between Age and Diabetes on Skin Wound Metabolism Using In Vivo Multiphoton Microscopy
- Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging
- Force-responsive biomaterials drive tissue repair by harnessing endogenous growth factors
- Quantifying the Interaction between Age and Diabetes on Skin Wound Metabolism Using In Vivo Multiphoton Microscopy
- Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging
- Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging
- Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging
- Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging
- Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging
- Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging
- Understanding Skin Wound Healing Dynamics Through AI-Powered Analysis of Label-free Multiphoton Imaging
- Force-responsive biomaterials drive tissue repair by harnessing endogenous growth factors
- Force-responsive biomaterials drive tissue repair by harnessing endogenous growth factors
- Force-responsive biomaterials drive tissue repair by harnessing endogenous growth factors
- Force-responsive biomaterials drive tissue repair by harnessing endogenous growth factors
- Force-responsive biomaterials drive tissue repair by harnessing endogenous growth factors
- Force-responsive biomaterials drive tissue repair by harnessing endogenous growth factors
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