Young Scientist Award
| Manjula M Venkatappa | |
|---|---|
| Affiliation | Saint Louis University |
| Country | India |
| Google Scholar ID | UHqSN-oAAAAJ |
| Documents | 27 |
| Citations | 408 |
| h-index | 11 |
| Subject Area | Nanotechnology |
| Event | International Top Pharmaceutical Awards |
| Scopus | 57443895000 |
Manjula M Venkatappa – Saint Louis University
Manjula M Venkatappa is a researcher whose reported scholarly work is associated with nanotechnology, biochemistry, oxidative-stress biology, natural products, and biologically synthesized nanoparticles. Her publication record includes studies investigating metal and metal-oxide nanoparticles and their potential biological activities. Several publications have examined antioxidant, anti-inflammatory, antithrombotic, and related pharmacological effects in experimental models. These research themes provide a relevant scientific basis for consideration within a pharmaceutical research recognition framework.
Abstract
Manjula M Venkatappa’s research profile reflects interdisciplinary activity connecting nanotechnology with biomedical and pharmaceutical science. Her publications include investigations of green-synthesized magnesium oxide, titanium dioxide, cobalt ferrite, copper ferrite, and zinc ferrite nanoparticles. These studies have considered nanoparticle characterization together with biological outcomes such as oxidative stress modulation, inflammation, thrombosis, and cancer-cell responses. Such work illustrates the potential role of nanotechnology-enabled approaches in pharmaceutical and biomedical research.
Keywords
Nanotechnology; Nanoparticles; Green Synthesis; Nanomedicine; Oxidative Stress; Antioxidant Activity; Anti-inflammatory Activity; Antithrombotic Research; Cancer Biology; Biochemistry; Natural Products; Pharmaceutical Research; Biomedical Nanotechnology.
Introduction
Nanotechnology has become an important research area in pharmaceutical and biomedical sciences because nanoscale materials can provide distinctive physicochemical and biological properties. Green synthesis approaches are particularly relevant where researchers seek to use biological materials as reducing, stabilizing, or capping agents. Venkatappa’s published studies have explored this research direction through plant-mediated synthesis and evaluation of several nanoparticle systems. Her work therefore contributes to a broader scientific discussion concerning nanomaterials and their possible biomedical applications [1].
Research Profile
The reported profile combines nanotechnology with experimental biochemistry and biological evaluation. A notable component of the publication record involves green-fabricated nanoparticles produced using botanical extracts and subsequently evaluated using biochemical or cellular models. Research has included magnesium oxide, titanium dioxide, cobalt ferrite, copper ferrite, and zinc ferrite nanoparticle systems. The studies indicate an interest in linking material synthesis and characterization with measurable biological effects [2].
Research Contributions
One contribution concerns the investigation of biofunctional magnesium oxide nanoparticles produced through green synthesis. The study evaluated oxidative-stress-induced tissue damage and thrombosis, providing a biological framework for examining the activity of nanoscale materials [1]. Another publication investigated green-synthesized titanium dioxide nanoparticles and their relationships with oxidative stress, inflammation, and human breast cancer proliferation [2]. Together, these studies demonstrate a consistent interest in biologically relevant nanoparticle systems.
Publications
Selected publications associated with Manjula M Venkatappa demonstrate a progression from nanoparticle synthesis and characterization toward biological and pharmacological evaluation. The publication record includes peer-reviewed articles addressing metal-oxide and ferrite nanoparticles, oxidative stress, inflammation, thrombosis, and cancer-related biological responses. DOI identifiers provide persistent links to the corresponding scholarly records. These publications form an appropriate evidence base for evaluating the researcher’s contribution to nanotechnology-oriented pharmaceutical research.
Research Impact
The reported scholarly indicators of 408 citations and an h-index of 11 suggest measurable academic visibility for the supplied research profile. Citation counts and h-index values can change over time and should therefore be interpreted as dynamic bibliometric indicators rather than permanent measures of research quality. The publications themselves provide additional evidence of interdisciplinary engagement across nanotechnology, biochemistry, and biomedical investigation. This combination is relevant to pharmaceutical research areas concerned with nanoscale materials and biological activity.
Award Suitability
The research profile is potentially suitable for consideration for the Young Scientist Award under the International Top Pharmaceutical Awards because its documented publication themes intersect with pharmaceutical nanotechnology and biomedical applications. The evidence includes peer-reviewed studies on green-synthesized nanoparticles and their experimentally evaluated biological activities. In particular, research involving oxidative stress, inflammation, thrombosis, and cancer-related responses provides clear connections to pharmaceutical and therapeutic research. Final award decisions should be based on the organizers’ eligibility requirements, verified bibliometric records, originality, scientific quality, and the complete submitted research portfolio.
Conclusion
Manjula M Venkatappa’s reported research portfolio demonstrates an interdisciplinary focus on nanotechnology and biological applications. Her publications cover multiple nanoparticle platforms and investigate experimentally relevant outcomes involving oxidative stress, inflammation, thrombosis, and cancer biology. The combination of nanomaterial development and biological evaluation is closely aligned with emerging pharmaceutical nanotechnology research. On the supplied evidence, the profile represents a relevant candidate for scholarly recognition within a pharmaceutical research award framework.
External Links
References
- Google Scholar. (n.d.). Manjula M Venkatappa: Google Scholar profile.
https://scholar.google.com/citations?user=UHqSN-oAAAAJ&hl=en
- Venkatappa, M. M., Udagani, C., Hanume Gowda, S. M., Venkataramaiah, S., et al. (2023). Green synthesised TiO2 nanoparticles-mediated Terenna asiatica: Evaluation of their role in reducing oxidative stress, inflammation and human breast cancer proliferation. Molecules, 28(13), 5126.
https://doi.org/10.3390/molecules28135126
- Venkatappa, M. M., Udagani, C., Hanumegowda, S. M., Pramod, S. N., et al. (2022). Effect of biofunctional green synthesized MgO-nanoparticles on oxidative-stress-induced tissue damage and thrombosis. Molecules, 27(16), 5162.
https://doi.org/10.3390/molecules27165162
- Venkataramaiah, S., Venkatappa, M. M., Udagani, C., & Sannaningaiah, D. (2024). Green-synthesized cobalt ferrite nanoparticle alleviated sodium nitrite-induced oxidative stress through its anti-oxidant property and displayed anti-inflammatory, anti-diabetic and anti-platelet activities. Journal of Superconductivity and Novel Magnetism, 37(11), 1839–1857.
https://doi.org/10.1007/s10948-024-06813-7
- Venkataramaiah, S., Venkatappa, M. M., Rangappa, R., Udagani, C., et al. (2025). Green fabricated bimetallic zinc ferrite nanoparticles mitigate oxidative stress-induced pathogenesis. Analytical Biochemistry, 700, 115767.
https://doi.org/10.1016/j.ab.2025.115767