Related Experiment Video
Updated: Mar 18, 2026

Preparation of Neutrally-charged, pH-responsive Polymeric Nanoparticles for Cytosolic siRNA Delivery
Published on: May 2, 2019
Systemic delivery of siRNA by aminated poly(α)glutamate for the treatment of solid tumors
Dina Polyak1, Adva Krivitsky1, Anna Scomparin1
1Department of Physiology and Pharmacology, Sackler Faculty of Medicine, Room 607, Tel Aviv University, Tel Aviv 69978, Israel.
Abstract:
Small interfering RNA (siRNA) can silence the expression of a targeted gene in a process known as RNA interference (RNAi). As a consequence, RNAi has immense potential as a novel therapeutic approach in cancer targeted therapy. However, successful application of siRNA for therapeutic purposes is challenging due to its rapid renal clearance, degradation by RNases in the bloodstream, poor cellular penetration, immunogenicity and aggregation in the blood. In addition, the few oligonucleotide-based nanomedicines that reached clinical trials either go to the liver following systemic administration or are applied topically. Treatment of solid tumors requires selective distribution of siRNA to the target tissue, hence there is an unmet medical need for an efficacious and safe nano-sized delivery system for their clinical use. To overcome these hurdles, we have designed, synthesized and physico-chemically characterized a novel nanocarrier based on aminated poly(α)glutamate (PGAamine). This cathepsin B-biodegradable polymer interacts electrostatically with the siRNA to form a nano-sized polyplex stable in plasma. Treatment with PGAamine-Rac1 siRNA polyplex (siRac1-polyplex) caused specific gene silencing by 80% in HeLa and SKOV-3 human ovarian adenocarcinoma cells as opposed to PGAamine-control non-targeting siRNA polyplex (siCtrl-polyplex) leading to inhibition of cell migration and wound healing abilities. A stepwise dose escalation was performed in order to determine the in vivo maximum tolerated dose (MTD). This was followed by intraperitoneal administration of siRac1-polyplex to mCherry-labeled ovarian adenocarcinoma-bearing mice leading to preferred tumor accumulation of siRac1 (8-fold) which resulted in 38% Rac1 knockdown. Furthermore, the polyplex was administered intravenously to lung carcinoma-bearing mice in which it caused 33% Rac1 knockdown. These promising results led to efficacy studies administering systemic treatment with an anticancer siRNA, siPlk1-polyplex, which inhibited tumor growth by 73% and 87% compared with siCtrl-polyplex or saline-treated mice, respectively, leading to prolonged overall survival. These findings represent the first time that a polyaminated poly(α)glutamate polymer is used for an efficacious and safe tumor delivery of RNAi following systemic administration.
Insights
This study introduces a novel nanocarrier, poly(α)glutamate amine (PGAamine), for effective small interfering RNA (siRNA) delivery in cancer therapy. The PGAamine-siRNA complex shows promise for targeted tumor treatment and improved survival rates.
Area of Science:
- Biotechnology and Nanomedicine
- Cancer Therapeutics
- RNA Interference (RNAi)
Background:
- Small interfering RNA (siRNA) holds therapeutic potential for cancer via RNA interference (RNAi).
- Clinical application of siRNA is hindered by poor stability, cellular uptake, and biodistribution issues.
- An unmet need exists for safe and effective nanocarriers for targeted solid tumor delivery of siRNA.
Purpose of the Study:
- To design, synthesize, and characterize a novel nanocarrier for siRNA delivery.
- To evaluate the efficacy and safety of the nanocarrier for targeted cancer therapy.
Main Methods:
- Development of a polyaminated poly(α)glutamate (PGAamine) nanocarrier.
- Formation of PGAamine-siRNA polyplexes for electrostatic interaction and plasma stability.
- In vitro gene silencing assessment in ovarian cancer cells (HeLa, SKOV-3).
- In vivo studies in mice with ovarian and lung tumors to assess biodistribution, gene knockdown, and therapeutic efficacy.
Main Results:
- PGAamine-siRNA polyplexes demonstrated significant gene silencing (80%) in vitro, inhibiting cancer cell migration.
- In vivo studies showed preferential tumor accumulation of siRNA and significant Rac1 knockdown in ovarian (38%) and lung (33%) tumors.
- Systemic administration of anticancer siRNA (siPlk1) using the nanocarrier inhibited tumor growth (73-87%) and prolonged survival.
Conclusions:
- PGAamine serves as an efficacious and safe nanocarrier for systemic siRNA delivery to solid tumors.
- This novel polymer-siRNA complex overcomes major hurdles in RNAi-based cancer therapy.
- The findings establish a new platform for developing advanced nanomedicines for targeted cancer treatment.
Related Concept Videos
siRNA - Small Interfering RNAs
In the cytoplasm, siRNA is processed from a double-stranded RNA, which comes from either endogenous DNA transcription or exogenous sources like a virus. This double-stranded RNA is then cleaved by the...
Site-Targeted Drug Delivery Systems: Polymeric Carriers
Modified-Release Drug Delivery Systems: Site-Targeted

