Light‐Activated Isolation of High‐Quality Mitochondria for Therapeutic Transplantation

H Hui Liu Y Yuxin Jiao (State Key Laboratory of Flexible Electronics (LOFE) & Institute of Flexible Electronics (IFE) Northwestern Polytechnical University Xi'an China) T Ting Zhang H Haiwei Wang Y Yufei Xue (MOE Key Laboratory for Non-Equilibrium Synthesis and Modulation of Condensed Matter, Shaanxi Province Key Laboratory of Advanced Functional Materials and Mesoscopic Physics, School of Physics) J Jiayu Ding Y Yang Ding M Meiling Wang (Institute of Intelligent Machines, Hefei Institutes of Physical Science) W Weisen Zhang (State Key Laboratory of Flexible Electronics (LOFE) & Institute of Flexible Electronics (IFE) Northwestern Polytechnical University Xi'an China) H Hua Bai B Bo Peng N Nicolas H. Voelcker (Melbourne Centre for Nanofabrication) L Lin Li

Abstract

ABSTRACT Artificial mitochondrial transplantation (AMT) holds great promise for reprogramming cellular metabolism and restoring cell function. Its clinical translation, however, relies on access to mitochondria that are both of high purity and metabolically active, requirements that current isolation techniques struggle to meet. Conventional differential centrifugation (DC) method yields heterogeneous and low‐activity mitochondria, whereas magnetic bead (MB)‐based immuno‐isolation leaves non‐biodegradable beads permanently attached. Herein, we present a Light‐Activated Mitochondrial Isolation ( LAMI ) platform comprising programmable mitochondria‐targeting MBs and a photo‐responsive release mechanism for the selective, efficient, and non‐destructive extraction of high‐quality mitochondria. LAMI employs magnetic nanoparticles decorated with a branched, modular probe architecture that supports systematic variation in mitochondria‐targeting ligand type, ligand density, and optical tracking elements. Incorporation of a photo‐cleavable linker allows on‐demand, mild, and reagent‐free release of captured mitochondria. Compared with DC method, LAMI produces mitochondria with markedly improved purity, structural integrity, and functionality. In an ischemia‐reperfusion injury (IRI) model, LAMI ‐isolated mitochondria‐based AMT exhibits superior therapeutic performance. Together, LAMI provides a non‐destructive, efficient, and versatile mitochondrial isolation strategy that overcomes long‐standing limitations of current methods, offering a robust platform to advance AMT and its future biomedical applications.

Article Details

Volume / Issue Vol. 65, Issue 28
Published July 06, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

H

Hui Liu

Y

Yuxin Jiao

State Key Laboratory of Flexible Electronics (LOFE) & Institute of Flexible Electronics (IFE) Northwestern Polytechnical University Xi'an China

T

Ting Zhang

H

Haiwei Wang

Y

Yufei Xue

MOE Key Laboratory for Non-Equilibrium Synthesis and Modulation of Condensed Matter, Shaanxi Province Key Laboratory of Advanced Functional Materials and Mesoscopic Physics, School of Physics

J

Jiayu Ding

Y

Yang Ding

M

Meiling Wang

Institute of Intelligent Machines, Hefei Institutes of Physical Science

W

Weisen Zhang

State Key Laboratory of Flexible Electronics (LOFE) & Institute of Flexible Electronics (IFE) Northwestern Polytechnical University Xi'an China

H

Hua Bai

B

Bo Peng

N

Nicolas H. Voelcker

Melbourne Centre for Nanofabrication

L

Lin Li