Subcellular Tandem‐Activated Signal Amplification for Spatially Precise Molecular Imaging in Mitochondria
Abstract
ABSTRACT Despite significant advances in DNA‐based signal amplification strategies for sensitive molecular imaging in live cells, achieving subcellular resolution remains challenging due to limited spatial precision. Here, we present a subcellular tandem‐regulated, spatially selective signal amplification technology for molecular imaging in mitochondria. This platform integrates ribosomal RNA (rRNA)‐activated target‐aptamer recognition with enzyme‐mediated cascade signal amplification, enabling in situ imaging of ATP within defined subcellular compartments (e.g., mitochondria) or membraneless regions (e.g., cytosol). The system facilitates in situ monitoring of ATP dynamics during drug intervention with enhanced spatial precision and sensitivity. Furthermore, by re‐engineering the cascade‐regulated sensor, we extended this approach to enable correlated imaging of mitochondrial ATP and microRNA. This strategy offers a powerful, modular tool for probing energy metabolism and regulatory networks across different subcellular environments.
Article Details
Authors (4)
Xueyan Feng
College of Energy Materials and Chemistry Inner Mongolia University Hohhot China
Deyu Yi
School of Chemistry and Biological Engineering University of Science and Technology Beijing Beijing China
Lele Li
CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety and CAS Center for Excellence in Nanoscience
Mengyuan Li
Department of Chemistry and Biochemistry