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Updated: Aug 22, 2025

Constant Pressure-controlled Extrusion Method for the Preparation of Nano-sized Lipid Vesicles
Published on: June 22, 2012
Development of Adenovirus Containing Liposomes Produced by Extrusion vs. Homogenization: A Comparison for Scale-Up
Jaimin R Shah1,2,3, Tao Dong1,2,4, Abraham T Phung1,2,4
1Moores Cancer Center, University of California San Diego, La Jolla, CA 92037, USA.
Abstract:
Adenovirus (Ad) is a widely studied viral vector for cancer therapy as it can be engineered to cause selective lysis of cancer cells. However, Ad delivery is limited in treating cancers that do not have coxsackievirus and adenovirus receptors (CAR). To overcome this challenge, Ad-encapsulated liposomes were developed that enhance the delivery of Ads and increase therapeutic efficacy. Cationic empty liposomes were manufactured first, to which an anionic Ad were added, which resulted in encapsulated Ad liposomes through charge interaction. Optimization of the liposome formula was carried out with series of formulation variables experiments using an extrusion process, which is ideal for laboratory-scale small batches. Later, the optimized formulation was manufactured with a homogenization technique-A high shear rotor-stator blending, that is ideal for large-scale manufacturing and is in compliance with Good Manufacturing Practices (GMP). Comparative in vitro transduction, physicochemical characterization, long-term storage stability at different temperature conditions, and in vivo animal studies were performed. Ad encapsulated liposomes transduced CAR deficient cells 100-fold more efficiently than the unencapsulated Ad (p ≤ 0.0001) in vitro, and 4-fold higher in tumors injected in nude mice in vivo. Both extrusion and homogenization performed similarly-with equivalent in vitro and in vivo transduction efficiencies, physicochemical characterization, and long-term storage stability. Thus, two Ad encapsulated liposomes preparation methods used herein, i.e., extrusion vs. homogenization were equivalent in terms of enhanced Ad performance and long-term storage stability; this will, hopefully, facilitate translation to the clinic.
Insights
Adenovirus (Ad) liposomes enhance cancer therapy delivery, especially for CAR-deficient tumors. Both extrusion and homogenization methods yield comparable, stable Ad-encapsulated liposomes for clinical translation.
Area of Science:
- Oncolytic virotherapy
- Nanomedicine
- Biotechnology
Background:
- Adenovirus (Ad) is a promising viral vector for cancer therapy, enabling selective cancer cell lysis.
- Adenovirus delivery is hindered in tumors lacking coxsackievirus and adenovirus receptors (CAR).
- Liposome encapsulation offers a strategy to improve Ad delivery and therapeutic outcomes.
Purpose of the Study:
- To develop and optimize Ad-encapsulated liposomes for enhanced cancer therapy delivery.
- To compare laboratory-scale (extrusion) and large-scale (homogenization) manufacturing methods for Ad-liposomes.
- To evaluate the in vitro and in vivo efficacy, stability, and physicochemical properties of Ad-liposomes.
Main Methods:
- Cationic liposomes were prepared and complexed with anionic Ad via charge interaction.
- Liposome formulations were optimized using extrusion (lab-scale).
- Optimized formulations were scaled up using homogenization (GMP-compliant).
- In vitro transduction, physicochemical characterization, storage stability, and in vivo studies were conducted.
Main Results:
- Ad-encapsulated liposomes showed 100-fold higher in vitro transduction of CAR-deficient cells compared to unencapsulated Ad (p ≤ 0.0001).
- In vivo studies demonstrated a 4-fold increase in tumor transduction with Ad-liposomes in nude mice.
- Both extrusion and homogenization methods yielded equivalent results in transduction efficiency, characterization, and stability.
Conclusions:
- Ad-encapsulated liposomes significantly enhance Ad delivery and efficacy, particularly for CAR-deficient cancers.
- Extrusion and homogenization are viable, equivalent methods for preparing stable Ad-liposomes.
- These findings support the clinical translation of Ad-liposome technology for cancer therapy.

