Ketan Ruparelia | Cancer Research | Research Excellence Award

Research Excellence Award

Ketan Ruparelia — De Montfort University, United Kingdom

Ketan Ruparelia
Affiliation De Montfort University
Country United Kingdom
Scopus ID 6506888701
Documents 39
Citations 1,939
h-index 20
Subject Area Cancer Research
Event International Top Pharmaceutical Awards
ORCID 0000-0002-4091-2878

Ketan Ruparelia is a researcher affiliated with De Montfort University in Leicester, United Kingdom. His documented research works include studies spanning pharmaceutical and cancer-related research, including drug-delivery systems, anticancer compounds, phytochemical analysis, and medicinal chemistry. The available research record provides evidence of publications involving chemotherapy-related nanocarriers, synthetic resveratrol analogues, plant secondary metabolism, and flavone-based enzyme inhibition. These works provide a scholarly basis for considering his profile within pharmaceutical research and cancer-focused scientific activity. [1]

Abstract

Ketan Ruparelia’s documented research profile is associated with pharmaceutical and biomedical research, with particular relevance to cancer research, drug delivery, phytochemical investigation, and anticancer compound development. The available ORCID record lists five research works and identifies De Montfort University as his employment affiliation. [1]

Keywords

Ketan Ruparelia, pharmaceutical research, cancer research, drug delivery, nanomedicine, siRNA delivery, multidrug-resistant cancer, chemotherapy, mesoporous silica nanoparticles, anticancer compounds, resveratrol analogues, medicinal chemistry, phytochemical analysis, plant secondary metabolism, flavones, tyrosinase inhibitors, pharmaceutical biotechnology, International Top Pharmaceutical Awards.

Introduction

Pharmaceutical research increasingly combines medicinal chemistry, drug-delivery engineering, molecular biology, and natural-product investigation to address complex therapeutic challenges. Ruparelia’s documented works intersect several of these areas, particularly through research involving anticancer compounds and pharmaceutical delivery technologies. [1][3]

Research Profile

The ORCID record identifies Ketan Ruparelia and associates the profile with De Montfort University in Leicester, Leicestershire, United Kingdom. The employment entry specifies the position of Senior Technician in Health & Life Sciences, while the record also lists five works with Crossref-linked publication information. The supplied bibliometric profile reports 39 documents, 1,939 citations, and an h-index of 20, with Cancer Research identified as the principal subject area. [1]

Research Contributions

A central contribution documented in the available record concerns pharmaceutical nanotechnology and targeted nucleic-acid delivery. The 2025 European Journal of Pharmaceutics and Biopharmaceutics article examines electrosprayed core-shell polyethyleneimine and phospholipid-coated mesoporous silica nanoparticles for co-delivery of KAZ3 and MDR-1 siRNA. [1]

Publications

Ketan Ruparelia’s publications span pharmaceutical nanotechnology, cancer research, medicinal chemistry, and phytochemical analysis. His 2025 article on electrosprayed core-shell nanoparticles investigated KAZ3 and MDR-1 siRNA co-delivery for chemotherapy in multidrug-resistant colon cancer. [1] His other works examine synthetic resveratrol analogues, indanone-based chalcone analogues, plant secondary metabolism, and flavone tyrosinase inhibition. [2]

Research Impact

The reported bibliometric profile indicates 39 documents, 1,939 citations, and an h-index of 20. These figures provide quantitative indicators of scholarly visibility within the supplied profile, while the underlying publication record demonstrates activity across pharmaceutical delivery, cancer research, medicinal chemistry, and phytochemical investigation. In particular, nanoparticle-mediated siRNA delivery connects pharmaceutical formulation with cancer biology, whereas resveratrol analogue research links synthetic chemistry with anticancer investigation. [1][3]

Award Suitability

The documented research profile is relevant to a Research Excellence Award within a pharmaceutical research context because it encompasses multiple areas directly connected with drug development and cancer-oriented pharmaceutical science. The evidence includes peer-reviewed journal articles, DOI-indexed works, and research involving drug-delivery systems and anticancer compounds. [1][3]

Conclusion

Ketan Ruparelia’s documented research profile reflects interdisciplinary activity relevant to pharmaceutical and cancer research. His recorded works encompass nanocarrier-based siRNA delivery, anticancer resveratrol analogues, synthetic chemistry, phytochemical analysis, and enzyme-inhibitor research. The combination of these research areas provides a substantive scholarly basis for recognition under a pharmaceutical research excellence category.[1][3]

References

  1. Sayed, E., Ruparelia, K., Zafar, S., Faheem, A., Fatouros, D., Arshad, M. S., Singh, N., & Ahmad, Z. (2025). Novel electrosprayed core-shell polyethyleneimine and phospholipid coated MSNs for Co-delivery of KAZ3 and MDR-1 siRNA for efficient chemotherapy in multidrug-resistant colon cancer. European Journal of Pharmaceutics and Biopharmaceutics. https://doi.org/10.1016/j.ejpb.2025.114838
  2. Pal, P., Ruparelia, K. C., Arroo, R. R. J., & Brucoli, F. C. (2025). A Green Chemistry Approach for the Synthesis of Indanones as Fixed Ring Chalcone Analogues. Preprints. https://www.preprints.org/manuscript/202504.1089
  3. Ruparelia, K. C., Zeka, K., Beresford, K. J. M., Wilsher, N. E., Potter, G. A., Androutsopoulos, V. P., Brucoli, F., & Arroo, R. R. J. (2024). CYP1-Activation and Anticancer Properties of Synthetic Methoxylated Resveratrol Analogues. Molecules, 29(2). https://doi.org/10.3390/molecules29020423
  4. Arroo, R. R. J., Bhambra, A. S., Hano, C., Renda, G., Ruparelia, K. C., & Wang, M. F. (2021). Analysis of plant secondary metabolism using stable isotope-labelled precursors. Phytochemical Analysis. https://doi.org/10.1002/pca.2955
  5. Arroo, R. R. J., Sari, S., Barut, B., Özel, A., Ruparelia, K. C., & Şöhretoğlu, D. (2020). Flavones as tyrosinase inhibitors: kinetic studies in vitro and in silico. Phytochemical Analysis. https://doi.org/10.1002/pca.2897

Dr.Long Pang |Oncology Pharmaceuticals| Best Researcher Award-1332

Dr.Long Pang|Oncology Pharmaceuticals |Best Researcher Award|

Dr.Long Pang at Xi’an Medical University, China

PROFILE  

scopus

Early Academic Pursuits 📚

Long Pang was born in Gansu, China, where he developed an early passion for science and innovation. His academic journey began with a focus on veterinary science, where he pursued a Master of Science (M.S.) degree at Northwest Agricultural and Forestry University in Yangling, Shaanxi, China. Completing his M.S. in July 2012, Pang demonstrated an exceptional commitment to his studies and research in veterinary science, laying the groundwork for his future endeavors in animal biotechnology. In August 2012, he advanced his academic career by enrolling in a Ph.D. program at the same university. During his Ph.D. studies, he specialized in Animal Biotechnology, a field that encompasses the use of biotechnological tools for the improvement of animal health and productivity. He completed his Ph.D. in July 2016, marking the beginning of a promising career in biomedical research.

Professional Endeavors 🏢

After earning his Ph.D., Long Pang joined Xi’an Medical University as an Associate Professor in the School of Basic Medical Science. His professional career is distinguished by his innovative research in the areas of microfluidics and single-cell analysis. At Xi’an Medical University, Pang quickly established himself as a leading researcher, focusing on the development of microfluidic chips and their applications in single-cell analysis and organ-on-a-chip technology. His work has been instrumental in advancing the understanding of cellular mechanics and tumor microenvironments, contributing significantly to the fields of biomedical engineering and cancer research.

Contributions and Research Focus 🔬

Long Pang’s research primarily revolves around microfluidics-based single-cell analysis and organ-on-a-chip technologies. His work has led to the development of innovative microfluidic devices that allow for the manipulation and analysis of single cells in a highly controlled environment. These devices have broad applications in cancer research, particularly in studying tumor microenvironments and the behavior of cancer stem cells. One of his significant contributions includes the development of a microfluidic chip for glioma stem cell sorting and single-cell-derived tumor sphere assays. This research has provided valuable insights into the formation of tumor spheres and the role of the tumor microenvironment in cancer progression.

Pang has also been involved in projects aimed at integrating microfluidic platforms with other technologies to enhance the precision and efficiency of single-cell analysis. His research has been supported by several prestigious grants, including those from the National Science Foundation of China and the Fundamental Research Foundation of Xi’an Medical University. Notably, he has led projects such as the study of heterotypic single-cell-derived tumor-sphere formation using an integrated microfluidics platform, which has garnered significant attention and funding.

Accolades and Recognition 🏆

Long Pang’s contributions to the field of biomedical research have been widely recognized. His work has resulted in over 21 publications in high-impact journals, including TRAC-Trends in Analytical Chemistry, Analytical Chemistry, and Sensors & Actuators B: Chemical. He has also authored a chapter in the Handbook of Single-Cell Technologies, published by Springer, highlighting his expertise in digital microfluidics for single-cell manipulation and analysis. In addition to his publications, Pang has been granted two Chinese patents related to his innovations in microfluidic technology, further establishing his reputation as a leading researcher in his field.

Pang’s achievements have also been acknowledged through various editorial appointments. He has served as a Youth Editorial Board Member of Glioma and the E-Journal of Translational Medicine, where he has contributed to the advancement of research dissemination and knowledge sharing in the scientific community. His contributions to the academic community extend beyond research, as he is an active member of several professional organizations, including the Shaanxi Pharmacology Association, the Chinese Society of Micro-Nano Technology (CSMNT), and the Chinese Chemistry Society (CCS).

Impact and Influence 🌍

The impact of Long Pang’s research extends beyond academia. His work on microfluidic devices has the potential to revolutionize the way single-cell analysis is conducted, offering new tools for researchers and clinicians in the diagnosis and treatment of diseases, particularly cancer. His contributions to the development of organ-on-a-chip technology are also significant, providing a platform for more accurate and efficient drug testing, which could lead to more effective treatments for various diseases.

Pang’s research has influenced a new generation of scientists and engineers, inspiring them to explore the possibilities of microfluidics and its applications in biomedical research. His collaborations with other leading researchers and institutions, both in China and internationally, have further expanded the reach of his work, fostering innovation and knowledge exchange in the global scientific community.

Legacy and Future Contributions 🚀

Long Pang’s legacy in the field of biomedical research is characterized by his innovative approach to solving complex problems in cell biology and medicine. His contributions to the development of microfluidic technology and single-cell analysis tools have set new standards in the field, paving the way for future research and innovation. As he continues his work at Xi’an Medical University, Pang remains committed to advancing the frontiers of biomedical engineering, with a focus on developing new technologies that can improve human health and well-being.

Looking to the future, Long Pang’s ongoing research projects, such as the construction of a 3D microenvironment for single-cell level tumor cells, promise to yield further breakthroughs in our understanding of cancer and other diseases. His work is likely to continue to influence the field for years to come, as he mentors the next generation of researchers and contributes to the global effort to improve healthcare through technological innovation.

🎓Publication 

Tumor microenvironment-derived exosomes-assisted single-cell-derived tumor-sphere formation and drug-resistance by a microfluidic system

Construction of multiple concentration gradients for single-cell level drug screening

Droplets microfluidics platform—A tool for single cell research

Microfluidics-Based Single-Cell Research for Intercellular Interaction

Digital Microfluidics for Single Cell Manipulation and Analysis

  • Authors   :Pang, L., Ding, J., Fan, S.-K.
  • Journal    :Handbook of Single-Cell Technologies
  • Year         :2021