Elastomeric Micro‐Balloons for Remote Control of Cerebral Blood Flow and Real‐Time In vivo Imaging of Rodent Brain Response to Hypoperfusion

J Jong Bin Kim (Department of Materials Science and Engineering University of Pennsylvania Philadelphia Pennsylvania USA) J Jinghui Wang Y Yinding Chi (Department of Materials Science and Engineering) J Jingxian Wu A Alicia Ng (Department of Materials Science and Engineering University of Pennsylvania Philadelphia Pennsylvania USA) G Guanda Qiao (Department of Diagnostic Radiology and Nuclear Medicine University of Maryland School of Medicine Baltimore Maryland USA) H Honglin Tan (Department of Diagnostic Radiology and Nuclear Medicine University of Maryland School of Medicine Baltimore Maryland USA) M Miroslaw Janowski (Department of Diagnostic Radiology and Nuclear Medicine University of Maryland School of Medicine Baltimore Maryland USA) P Piotr Walczak Y Yajie Liang (Department of Diagnostic Radiology and Nuclear Medicine University of Maryland School of Medicine Baltimore Maryland USA) S Shu Yang

Abstract

ABSTRACT Current preclinical models of ischemic stroke in mice do not permit simultaneous and continuous in vivo brain imaging during the peri‐stroke period, therefore missing critical pathophysiological events that could be pivotal for stroke management at early stages. Here, we report the fabrication of micro‐balloons using yield‐stress fluids, in which the monolithic elastomeric wall has selectively stiffened regions for controlled inflation and elasticity, depending on the target vessels. A multi‐step bubble‐casting process successfully creates an inner layer in a channel with a diameter of <300 µm, despite the yield stress defying surface‐tension‐induced instability. The micro‐balloon can expand up to four times its initial diameter, enabling remote control of the blood flow in cerebral arteries in live mice. By allowing continuous control of the common carotid artery diameter across different states to induce stroke in a precise, reliable, and reversible manner, the micro‐balloon recapitulates clinically relevant hemodynamics in a mouse model of global brain ischemia, as evidenced by real‐time intravital microscopy and magnetic resonance imaging. The presented micro‐balloons hold significant potential to improve the treatment of stroke patients through minimally invasive interventions and in vivo imaging of pathophysiological events during the peri‐stroke phase.

Article Details

Volume / Issue Vol. 38, Issue 30
Published May 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

J

Jong Bin Kim

Department of Materials Science and Engineering University of Pennsylvania Philadelphia Pennsylvania USA

J

Jinghui Wang

Y

Yinding Chi

Department of Materials Science and Engineering

J

Jingxian Wu

A

Alicia Ng

Department of Materials Science and Engineering University of Pennsylvania Philadelphia Pennsylvania USA

G

Guanda Qiao

Department of Diagnostic Radiology and Nuclear Medicine University of Maryland School of Medicine Baltimore Maryland USA

H

Honglin Tan

Department of Diagnostic Radiology and Nuclear Medicine University of Maryland School of Medicine Baltimore Maryland USA

M

Miroslaw Janowski

Department of Diagnostic Radiology and Nuclear Medicine University of Maryland School of Medicine Baltimore Maryland USA

P

Piotr Walczak

Y

Yajie Liang

Department of Diagnostic Radiology and Nuclear Medicine University of Maryland School of Medicine Baltimore Maryland USA

S

Shu Yang