Enhancing siRNA-based cancer therapy using a new pH-responsive activatable cell-penetrating peptide-modified
Bai Xiang1, Xue-Li Jia1, Jin-Long Qi2
1Department of Pharmaceutics, School of Pharmaceutical Sciences.
Abstract:
As a potent therapeutic agent, small interfering RNA (siRNA) has been exploited to silence critical genes involved in tumor initiation and progression. However, development of a desirable delivery system is required to overcome the unfavorable properties of siRNA such as its high degradability, molecular size, and negative charge to help increase its accumulation in tumor tissues and promote efficient cellular uptake and endosomal/lysosomal escape of the nucleic acids. In this study, we developed a new activatable cell-penetrating peptide (ACPP) that is responsive to an acidic tumor microenvironment, which was then used to modify the surfaces of siRNA-loaded liposomes. The ACPP is composed of a cell-penetrating peptide (CPP), an acid-labile linker (hydrazone), and a polyanionic domain, including glutamic acid and histidine. In the systemic circulation (pH 7.4), the surface polycationic moieties of the CPP (polyarginine) are "shielded" by the intramolecular electrostatic interaction of the inhibitory domain. When exposed to a lower pH, a common property of solid tumors, the ACPP undergoes acid-catalyzed breakage at the hydrazone site, and the consequent protonation of histidine residues promotes detachment of the inhibitory peptide. Subsequently, the unshielded CPP would facilitate the cellular membrane penetration and efficient endosomal/lysosomal evasion of liposomal siRNA. A series of investigations demonstrated that once exposed to an acidic pH, the ACPP-modified liposomes showed elevated cellular uptake, downregulated expression of polo-like kinase 1, and augmented cell apoptosis. In addition, favorable siRNA avoidance of the endosome/lysosome was observed in both MCF-7 and A549 cells, followed by effective cytoplasmic release. In view of its acid sensitivity and therapeutic potency, this newly developed pH-responsive and ACPP-mediated liposome system represents a potential platform for siRNA-based cancer treatment.
Insights
This study introduces a novel pH-responsive liposome system using activatable cell-penetrating peptides (ACPPs) for enhanced small interfering RNA (siRNA) delivery in cancer treatment, improving tumor targeting and cellular uptake.
Area of Science:
- Biotechnology
- Nanomedicine
- Cancer Therapeutics
Background:
- Small interfering RNA (siRNA) shows promise for cancer gene silencing but faces delivery challenges due to degradation, size, and charge.
- Effective siRNA delivery requires systems that enhance tumor accumulation, cellular uptake, and endosomal escape.
Purpose of the Study:
- To develop and evaluate a novel pH-responsive liposome system for improved siRNA delivery in cancer therapy.
- To utilize an activatable cell-penetrating peptide (ACPP) that targets the acidic tumor microenvironment for enhanced siRNA delivery.
Main Methods:
- Development of an ACPP comprising a cell-penetrating peptide (CPP), an acid-labile hydrazone linker, and a polyanionic domain (glutamic acid, histidine).
- Modification of siRNA-loaded liposomes with the ACPP to create a pH-sensitive delivery system.
- Evaluation of ACPP-modified liposomes' cellular uptake, endosomal escape, gene silencing efficacy (polo-like kinase 1), and apoptosis induction in cancer cells.
Main Results:
- ACPP-modified liposomes demonstrated pH-triggered activation in acidic conditions, exposing the CPP for enhanced cellular interaction.
- Elevated cellular uptake, efficient endosomal/lysosomal escape, and subsequent cytoplasmic release of siRNA were observed in MCF-7 and A549 cells.
- Significant downregulation of polo-like kinase 1 expression and augmented cancer cell apoptosis were achieved with the ACPP-liposome system.
Conclusions:
- The developed pH-responsive, ACPP-mediated liposome system effectively overcomes siRNA delivery barriers in acidic tumor microenvironments.
- This platform shows significant potential for targeted siRNA delivery and enhanced therapeutic outcomes in cancer treatment.
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