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合成远红光介导的 CRISPR-dCas9 装置诱导功能性神经元分化。

Synthetic far-red light-mediated CRISPR-dCas9 device for inducing functional neuronal differentiation.

机构信息

Synthetic Biology and Biomedical Engineering Laboratory, Shanghai Key Laboratory of Regulatory Biology, Institute of Biomedical Sciences and School of Life Sciences, East China Normal University, 200241 Shanghai, China.

Faculty of Dentistry, The University of Hong Kong, Pokfulam, Hong Kong Special Administrative Region 999077, China.

出版信息

Proc Natl Acad Sci U S A. 2018 Jul 17;115(29):E6722-E6730. doi: 10.1073/pnas.1802448115. Epub 2018 Jul 2.

Abstract

The ability to control the activity of CRISPR-dCas9 with precise spatiotemporal resolution will enable tight genome regulation of user-defined endogenous genes for studying the dynamics of transcriptional regulation. Optogenetic devices with minimal phototoxicity and the capacity for deep tissue penetration are extremely useful for precise spatiotemporal control of cellular behavior and for future clinic translational research. Therefore, capitalizing on synthetic biology and optogenetic design principles, we engineered a far-red light (FRL)-activated CRISPR-dCas9 effector (FACE) device that induces transcription of exogenous or endogenous genes in the presence of FRL stimulation. This versatile system provides a robust and convenient method for precise spatiotemporal control of endogenous gene expression and also has been demonstrated to mediate targeted epigenetic modulation, which can be utilized to efficiently promote differentiation of induced pluripotent stem cells into functional neurons by up-regulating a single neural transcription factor, This FACE system might facilitate genetic/epigenetic reprogramming in basic biological research and regenerative medicine for future biomedical applications.

摘要

利用精确的时空分辨率控制 CRISPR-dCas9 的活性,将能够对用户定义的内源性基因进行严格的基因组调控,以研究转录调控的动态。具有最小光毒性和能够进行深层组织穿透的光遗传学设备对于精确的时空控制细胞行为和未来的临床转化研究非常有用。因此,利用合成生物学和光遗传学设计原理,我们设计了一种远红光(FRL)激活的 CRISPR-dCas9 效应器(FACE)设备,该设备在 FRL 刺激下诱导外源性或内源性基因的转录。这个多功能系统为精确的时空控制内源性基因表达提供了一种强大而方便的方法,并且已经证明可以介导靶向表观遗传调节,这可以通过上调单个神经转录因子来有效促进诱导多能干细胞向功能性神经元的分化。这个 FACE 系统可能有助于基础生物学研究中的遗传/表观遗传重编程和再生医学,以用于未来的生物医学应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/80d9/6055150/4204f53c94a4/pnas.1802448115fig01.jpg

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