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The Development of Antibody-Functionalized Liposomes via Click Chemistry for Precision Targeting of PD-L1-Positive
Bama Prasanna Chatterjee1, Malabika Ghosh2, Uddipan Dasgupta2
1Amity Institute of Biotechnology, Amity University Chhattisgarh, Raipur, Chhattisgarh 493225, India.
Abstract:
Cancer treatment faces significant difficulties with chemotherapy, often leading to severe side effects. This encourages the need for research on innovative, selective therapies for targeted drug delivery, particularly using nanotechnology-based liposomes as carriers. Liposomes, spherical nanocarriers, can encapsulate drugs and be functionalized for targeted delivery, boosting drug accumulation in cancer cells while minimizing harm to healthy tissues. However, to introduce the targeting ability, the attachment of biomarkers with liposomes always faces several challenges such as insufficient and unstable binding, improper functionalization, poor stability, and a tedious attachment process. This study developed an antibody-functionalized liposomal system, covalently conjugated with Atezolizumab, a monoclonal antibody against programmed death-ligand 1 (PD-L1) to form antibody-lipid-doxorubicin (Ab-Lip-Dox), a targeted nanocarrier system. Unlike conventional attachment methods, this study employs a covalent conjugation strategy based on click chemistry between a modified antibody and functionalized liposomes, representing the innovation of the work. It selectively delivered higher doxorubicin (Dox) to ovarian cancerous SKOV-3 cells overexpressing PD-L1. The nanocarrier, with an optimized size (100-200 nm) and a doxorubicin concentration (1 μg/mL), effectively reduces systemic toxicity and enhances drug accumulation in tumor cells through site-specific delivery. The success of this approach lays the groundwork for the development of next-generation targeted therapies for ovarian and other PD-L1-expressing cancers.
Insights
This study developed a novel antibody-functionalized liposomal system (Ab-Lip-Dox) for targeted cancer therapy. This innovative nanocarrier selectively delivers doxorubicin to ovarian cancer cells, reducing side effects and improving drug accumulation.
Area of Science:
- Nanotechnology
- Oncology
- Drug Delivery Systems
Background:
- Chemotherapy for cancer causes severe side effects, necessitating research into targeted therapies.
- Liposomes are promising nanocarriers for drug delivery but face challenges in targeted functionalization.
- Current methods for attaching biomarkers to liposomes often result in unstable binding and complex processes.
Purpose of the Study:
- To develop an innovative antibody-functionalized liposomal system for targeted cancer therapy.
- To overcome limitations of conventional biomarker attachment to liposomes.
- To create a nanocarrier for selective delivery of doxorubicin to PD-L1-expressing ovarian cancer cells.
Main Methods:
- Developed an antibody-lipid-doxorubicin (Ab-Lip-Dox) nanocarrier system.
- Utilized click chemistry for covalent conjugation of Atezolizumab (anti-PD-L1 antibody) to liposomes.
- Optimized nanocarrier size (100-200 nm) and doxorubicin concentration (1 μg/mL).
Main Results:
- Achieved selective delivery of higher doxorubicin concentrations to ovarian cancer cells (SKOV-3) overexpressing PD-L1.
- Demonstrated reduced systemic toxicity compared to conventional methods.
- Enhanced drug accumulation in tumor cells via site-specific delivery.
Conclusions:
- The developed Ab-Lip-Dox system offers a novel and effective approach for targeted cancer therapy.
- Covalent conjugation using click chemistry improves stability and functionalization of liposomal nanocarriers.
- This strategy holds potential for next-generation targeted therapies for ovarian and other PD-L1-expressing cancers.
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