Ultrasound-responsive liposomes: A mechanistic framework to decode the effects of acoustic parameters

I Ignasi Simon (Department of Chemical Engineering, Delft University of Technology) R Rebecca F. A. van den Elshout (Department of Chemical Engineering, Delft University of Technology) G Gandhika K. Wardhana (Department of Microelectronics, Delft University of Technology) M Masoumeh Aqamolaei (Department of Microelectronics, Delft University of Technology) I Isabella S. T. de Jonge (Department of Chemical Engineering, Delft University of Technology) R Remco Hartkamp (Department of Process and Energy, Delft University of Technology) R Riccardo Alessandri (Department of Chemical Engineering, KU Leuven) T Tiago L. Costa (Department of Microelectronics, Delft University of Technology) A Alina Y. Rwei (Department of Chemical Engineering, Delft University of Technology)

Abstract

Ultrasound offers a noninvasive, clinically relevant means to achieve precise spatiotemporal control of cargo release from ultrasound-responsive drug delivery systems within deep tissues. This approach enables targeted delivery of therapeutic agents, enhancing efficacy while minimizing systemic toxicity. While previous studies show that release from ultrasound-responsive liposomes depends on acoustic parameters, the underlying mechanisms remain unclear. A deeper mechanistic understanding is essential to achieve precision over release and maximize therapeutic outcomes. To address this, we propose a sonoporation-based framework to describe release dynamics across varying frequencies, pressures, duty cycles, and pulse repetition frequencies for ultrasound-responsive poly(ethylene glycol)-functionalized liposomes. Using computational simulations validated by empirical results, our framework identifies a critical pressure threshold for release onset and demonstrates how the time spent above this threshold, modulated by acoustic parameters, governs release efficiency. To elucidate these effects, custom-built ultrasound transducers with different resonance frequencies were fabricated and characterized to ensure precise sample alignment, minimize acoustic distortion, and maintain a controlled focal-volume-to-sample-volume ratio across different frequencies. COMSOL simulations indicated that oscillatory acoustic pressure plays a more dominant role than acoustic radiation force, while coarse-grained molecular dynamics simulations captured pressure-dependent pore formation dynamics within the lipid bilayer. Together, our experiments and simulations highlight mechanical effects—particularly oscillatory acoustic pressure—as the primary driver of sonoporation-facilitated release. Finally, we discuss how optimizing acoustic parameters through this mechanistic framework could facilitate safe and effective clinical translation by considering tissue safety and ultrasound transducer design.

Article Details

Volume / Issue Vol. 123, Issue 13
Published March 31, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (9)

I

Ignasi Simon

Department of Chemical Engineering, Delft University of Technology

R

Rebecca F. A. van den Elshout

Department of Chemical Engineering, Delft University of Technology

G

Gandhika K. Wardhana

Department of Microelectronics, Delft University of Technology

M

Masoumeh Aqamolaei

Department of Microelectronics, Delft University of Technology

I

Isabella S. T. de Jonge

Department of Chemical Engineering, Delft University of Technology

R

Remco Hartkamp

Department of Process and Energy, Delft University of Technology

R

Riccardo Alessandri

Department of Chemical Engineering, KU Leuven

T

Tiago L. Costa

Department of Microelectronics, Delft University of Technology

A

Alina Y. Rwei

Department of Chemical Engineering, Delft University of Technology