Deployable 3D‐Printed Vascular Stent with Surface‐Catalysed Endogenous Nitric Oxide Generation

K Kun Zhou (Key Laboratory of Animal Virology, Ministry of Agricultural and Rural Affairs of China and Zhejiang Provincial Engineering Research Center of Animal Biological Products, Department of Veterinary Medicine, Zhejiang University College of Animal Sciences) Z Zifei Han K Kang Lin (Institut für Kernphysik, Goethe-Universität Frankfurt, Max-von-Laue-Str.1, Frankfurt am Main 60438, Germany) D Di Wu S Siti Nur Asyura Adzlan (School of Chemical Engineering UNSW Sydney New South Wales Australia) Q Qingqing Fan (Institute of Acoustics, Chinese Academy of Sciences 1 , Beijing 100190,) C Christina Cortez‐Jugo (Department of Chemical Engineering The University of Melbourne Parkville Victoria Australia) R Rona Chandrawati (School of Chemical Engineering UNSW Sydney New South Wales Australia) C Cyrille Boyer (School of Chemical Engineering)

Abstract

ABSTRACT Atherosclerosis, a leading cause of heart attacks and strokes through the formation of vascular blockages, has become a major global healthcare challenge, with patient numbers expected to rise. Balloon‐based angioplasty and stenting, the most common clinical treatments, have evolved over decades with advances in material biocompatibility, biodegradability, and device design. However, they still face critical issues such as tissue damage, inflammation, and restenosis, which can lead to implant failure and necessitate repeated surgeries, severely affecting patients’ quality of life. To address the urgent need for a long‐term stable stent system, we present a deployable 3D‐printed vascular stent with surface‐catalyzed endogenous nitric oxide (NO) generation (DSENO), offering a promising new direction for stent development. Unlike traditional stents, the DSENO can be deployed remotely using magnetic force and heat, eliminating the need for a catheter or balloon and thereby reducing the risk of tissue injury. Furthermore, its surface is modified to catalyze intracellular NO generation from endogenous S‐nitrosothiols, which inhibits smooth muscle cell proliferation to prevent restenosis.

Article Details

Volume / Issue Vol. 38, Issue 21
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

K

Kun Zhou

Key Laboratory of Animal Virology, Ministry of Agricultural and Rural Affairs of China and Zhejiang Provincial Engineering Research Center of Animal Biological Products, Department of Veterinary Medicine, Zhejiang University College of Animal Sciences

Z

Zifei Han

K

Kang Lin

Institut für Kernphysik, Goethe-Universität Frankfurt, Max-von-Laue-Str.1, Frankfurt am Main 60438, Germany

D

Di Wu

S

Siti Nur Asyura Adzlan

School of Chemical Engineering UNSW Sydney New South Wales Australia

Q

Qingqing Fan

Institute of Acoustics, Chinese Academy of Sciences 1 , Beijing 100190,

C

Christina Cortez‐Jugo

Department of Chemical Engineering The University of Melbourne Parkville Victoria Australia

R

Rona Chandrawati

School of Chemical Engineering UNSW Sydney New South Wales Australia

C

Cyrille Boyer

School of Chemical Engineering