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Recent Progress of RGD Modified Liposomes as Multistage Rocket Against Cancer
Afsana Sheikh1, Nabil A Alhakamy2,3, Shadab Md2,3
1Department of Pharmaceutics, School of Pharmaceutical Education and Research, Jamia Hamdard, New Delhi, India.
Abstract:
Cancer is a life-threatening disease, contributing approximately 9.4 million deaths worldwide. To address this challenge, scientific researchers have investigated molecules that could act as speed-breakers for cancer. As an abiotic drug delivery system, liposomes can hold both hydrophilic and lipophilic drugs, which promote a controlled release, accumulate in the tumor microenvironment, and achieve elongated half-life with an enhanced safety profile. To further improve the safety and impair the off-target effect, the surface of liposomes could be modified in a way that is easily identified by cancer cells, promotes uptake, and facilitates angiogenesis. Integrins are overexpressed on cancer cells, which upon activation promote downstream cell signaling and eventually activate specific pathways, promoting cell growth, proliferation, and migration. RGD peptides are easily recognized by integrin over expressed cells. Just like a multistage rocket, ligand anchored liposomes can be selectively recognized by target cells, accumulate at the specific site, and finally, release the drug in a specific and desired way. This review highlights the role of integrin in cancer development, so gain more insights into the phenomenon of tumor initiation and survival. Since RGD is recognized by the integrin family, the fate of RGD has been demonstrated after its binding with the acceptor's family. The role of RGD based liposomes in targeting various cancer cells is also highlighted in the paper.
Insights
Researchers are developing RGD-based liposomes to target cancer cells. These targeted liposomes improve drug delivery, enhance cancer cell uptake, and reduce side effects, offering a promising strategy against cancer.
Area of Science:
- Oncology
- Nanotechnology
- Biochemistry
Background:
- Cancer remains a leading cause of global mortality, necessitating innovative therapeutic strategies.
- Liposomes serve as advanced drug delivery systems, offering controlled release and improved safety profiles.
- Targeted drug delivery aims to enhance therapeutic efficacy while minimizing off-target effects in cancer treatment.
Purpose of the Study:
- To review the role of integrins in cancer development and survival.
- To explore the potential of RGD peptide-modified liposomes for targeted cancer therapy.
- To provide insights into the mechanism of RGD-integrin interaction for cancer cell targeting.
Main Methods:
- Literature review focusing on integrin function in cancer.
- Analysis of RGD peptide as a ligand for integrin-mediated targeting.
- Examination of RGD-liposome design and application in cancer models.
Main Results:
- Integrins are overexpressed on cancer cells, playing a crucial role in tumor growth and metastasis.
- RGD peptides selectively bind to integrins, facilitating targeted uptake by cancer cells.
- RGD-liposomes demonstrate potential for enhanced accumulation in tumor microenvironments and controlled drug release.
Conclusions:
- RGD-based liposomes represent a promising targeted drug delivery system for various cancers.
- Targeting integrins with RGD peptides offers a strategy to improve cancer therapy specificity.
- Further research into RGD-liposome applications could lead to more effective cancer treatments.

