Parth Chaturvedi Data-verified
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Postdoctoral
postdoc
Research Areas
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Biography and Research Information
OverviewAI-generated summary
Parth Chaturvedi's research primarily utilizes molecular dynamics simulations to investigate the behavior of biological and material systems at the nanoscale. His work explores how factors like temperature and molecular interactions influence structure and function. He has studied the modulation of membrane function by cholesterol and the denaturation of DNA under thermal gradients created by gold nanoparticles. Chaturvedi has also investigated computational models for antiviral nanoparticles and their interaction with viral capsid segments, and explored adaptive evolution strategies for peptide inhibitors against mutating viruses like SARS-CoV-2.
His publications span diverse areas, including computational biology, materials science, and machine learning applications. Chaturvedi has a notable publication record, with 27 publications and 159 citations, and an h-index of 6. He collaborates with researchers at the University of Arkansas at Fayetteville, including Ehsan Khodadadi and Ehsaneh Khodadadi.
Metrics
- h-index: 5
- Publications: 26
- Citations: 148
Selected Publications
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Characterizing the Conformational Dynamics of an Intrinsically Disordered Localization Sequence (2026)
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Molecular Dynamics Simulations of Liposomes: Structure, Dynamics, and Applications (2025)
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Comprehensive Insights into the Cholesterol-Mediated Modulation of Membrane Function Through Molecular Dynamics Simulations (2025)
Collaboration Network
Top Collaborators
- Mechanistic Understanding of DNA Denaturation in Nanoscale Thermal Gradients Created by Femtosecond Excitation of Gold Nanoparticles
- Computational Modeling of the Virucidal Inhibition Mechanism for Broad-Spectrum Antiviral Nanoparticles and HPV16 Capsid Segments
- Adaptive Evolution of Peptide Inhibitors for Mutating SARS-CoV-2
- Computational modeling of virucidal inhibition mechanism for broad-spectrum antiviral nanoparticles and HPV16 capsid segments
- Comprehensive Insights into the Cholesterol-Mediated Modulation of Membrane Function Through Molecular Dynamics Simulations
- Molecular Insights into Cholesterol Concentration Effects on Planar and Curved Lipid Bilayers for Liposomal Drug Delivery
- Characterizing the Conformational Dynamics of an Intrinsically Disordered Localization Sequence
- Computational Modeling of the Virucidal Inhibition Mechanism for Broad-Spectrum Antiviral Nanoparticles and HPV16 Capsid Segments
- Computational modeling of virucidal inhibition mechanism for broad-spectrum antiviral nanoparticles and HPV16 capsid segments
- Computational Modeling of the Virucidal Inhibition Mechanism for Broad-Spectrum Antiviral Nanoparticles and HPV16 Capsid Segments
- Computational modeling of virucidal inhibition mechanism for broad-spectrum antiviral nanoparticles and HPV16 capsid segments
- Comprehensive Insights into the Cholesterol-Mediated Modulation of Membrane Function Through Molecular Dynamics Simulations
- Molecular Insights into Cholesterol Concentration Effects on Planar and Curved Lipid Bilayers for Liposomal Drug Delivery
- Comprehensive Insights into the Cholesterol-Mediated Modulation of Membrane Function Through Molecular Dynamics Simulations
- Molecular Insights into Cholesterol Concentration Effects on Planar and Curved Lipid Bilayers for Liposomal Drug Delivery
- Adaptive Evolution of Peptide Inhibitors for Mutating SARS-CoV-2
- Adaptive Evolution of Peptide Inhibitors for Mutating SARS-CoV-2
- Machinability of SUPERNI-800 during PMEDM using the Taguchi method
- Machinability of SUPERNI-800 during PMEDM using the Taguchi method
- Machinability of SUPERNI-800 during PMEDM using the Taguchi method
- Machinability of SUPERNI-800 during PMEDM using the Taguchi method
- Machinability of SUPERNI-800 during PMEDM using the Taguchi method
- Mechanistic Understanding of DNA Denaturation in Nanoscale Thermal Gradients Created by Femtosecond Excitation of Gold Nanoparticles
- Mechanistic Understanding of DNA Denaturation in Nanoscale Thermal Gradients Created by Femtosecond Excitation of Gold Nanoparticles
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