Endogenously Activated and Self‐Reinforced DNA Lipid Nanodevice for Spatial‐Specific and High‐Contrast Imaging of MicroRNA in Cells and Animals

Author:

Li Chan1,Jia Haiyan1,Zhao Wangxin1,Wu Rong1,Zhou Xiaoyu1,Wei Xiaoling1,Xue Guohui2,Shen Zhifa1,Xue Chang1ORCID

Affiliation:

1. Wenzhou Key Laboratory of Cancer Pathogenesis and Translation Key Laboratory of Laboratory Medicine Ministry of Education School of Laboratory Medicine and Life Sciences Wenzhou Medical University Wenzhou Zhejiang 325000 P. R. China

2. Department of Clinical Laboratory Jiujiang NO.1 People's Hospital Jiujiang Jiangxi 332000 P. R. China

Abstract

AbstractTumor‐specific microRNA (miRNA) imaging strategies are critical for investigating mechanisms associated with cancer progression; however, nonspecific signal leakage and false‐positive signaling limit their selectivity and efficiency. In this paper, an endogenously activated and self‐reinforced DNA lipid nanodevice (LND) for spatial‐specific and high‐contrast imaging of miRNAs in living cells and animals is presented. The LND is functionalized on cholesterol‐based lipid micelles (CLMs) containing smart response and self‐fueling DNA components that display redox‐activatable and autocatalytic miRNA probing activities, respectively. The LNDs are initially silenced and selectively activated using glutathione, an endogenous microenvironmental factor overexpressed in tumor cells, to prevent nonspecific signal leakage. Subsequently, an autocatalytic DNA circuit is used for tumor‐specific and high‐contrast miRNA imaging. It is demonstrated that robust CLM nanoparticles can be easily assembled from a cholesterol‐conjugated G‐rich DNA sequence by stirring in a buffered solution, enabling the LND to enter cells naturally. In addition, in vitro and in vivo data illustrate that the enhanced biostability of DNA components on the surface of LNDs can be realized for minimizing false‐positive signals, making the system ideal for miRNA imaging in living mice. This smart LND technique has great potential for precise biomedical imaging and clinical diagnosis.

Funder

Natural Science Foundation of Zhejiang Province

Science and Technology Plan Project of Wenzhou Municipality

National Natural Science Foundation of China

Publisher

Wiley

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