Venkata Rao Krishnamurthi
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.
Role not yet determined Is this you? Add your title
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Venkata Rao Krishnamurthi's research investigates the antimicrobial properties of nanomaterials, particularly silver nanoparticles and ions, and their effects on bacteria such as *Escherichia coli*. His work explores how factors like particle size, surface coatings (e.g., polydopamine), and electric currents influence antimicrobial efficacy. Krishnamurthi has published studies detailing methods for evaluating bacterial growth using microplate readers and has developed experiment-based models to quantify the antimicrobial activity of silver nanoparticles. His research also extends to understanding the nanoscale reorganizations of bacterial proteins, like histone-like nucleoid-structuring proteins, caused by silver nanoparticle exposure and the impact of silver ions on bacterial length oscillation. He has also investigated the dynamics of F-actin in the blast fungus *Magnaporthe oryzae*. Krishnamurthi's scholarship metrics include an h-index of 10, with 19 total publications and 540 total citations. He has collaborated with researchers Yong Wang and Ariel Rogers at the University of Arkansas at Fayetteville, and Samuel G. Mackintosh and Ricky D. Edmondson at the University of Arkansas for Medical Sciences.
Metrics
- h-index: 10
- Publications: 29
- Citations: 541
Selected Publications
-
Additional file 2 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Additional file 2 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Additional file 5 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Additional file 5 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Additional file 3 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Additional file 1 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Additional file 4 of Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Dynamic global acetylation remodeling during the yeast heat shock response (2026)
-
Silver Ions Inhibit Bacterial Movement and Stall Flagellar Motor (2023)
-
Learning the Lens Equation Using Water and Smartphones/Tablets (2022)
-
Interactions of E. coli with cylindrical micro-pillars of different geometric modifications (2021)
-
A new analysis method for evaluating bacterial growth with microplate readers (2021)
Collaboration Network
Top Collaborators
- Polydopamine Surface Coating Synergizes the Antimicrobial Activity of Silver Nanoparticles
- A new analysis method for evaluating bacterial growth with microplate readers
- An experiment-based model quantifying antimicrobial activity of silver nanoparticles on Escherichia coli
- Microampere Electric Current Causes Bacterial Membrane Damage and Two-Way Leakage in a Short Period of Time
- Silver Ions Caused Faster Diffusive Dynamics of Histone-Like Nucleoid-Structuring Proteins in Live Bacteria
Showing 5 of 16 shared publications
- Polydopamine Surface Coating Synergizes the Antimicrobial Activity of Silver Nanoparticles
- A new analysis method for evaluating bacterial growth with microplate readers
- An experiment-based model quantifying antimicrobial activity of silver nanoparticles on Escherichia coli
- Microampere Electric Current Causes Bacterial Membrane Damage and Two-Way Leakage in a Short Period of Time
- Silver Ions Caused Faster Diffusive Dynamics of Histone-Like Nucleoid-Structuring Proteins in Live Bacteria
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
- 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
- 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
- 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
- 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
- Polydopamine Surface Coating Synergizes the Antimicrobial Activity of Silver Nanoparticles
- A new analysis method for evaluating bacterial growth with microplate readers
- An experiment-based model quantifying antimicrobial activity of silver nanoparticles on Escherichia coli
- Microampere Electric Current Causes Bacterial Membrane Damage and Two-Way Leakage in a Short Period of Time
- Nanoscale reorganizations of histone-like nucleoid structuring proteins in Escherichia coli are caused by silver nanoparticles
Showing 5 of 7 shared publications
Similar Researchers
Based on overlapping research topics