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光诱导的定制锌指转录因子激活基因的时空控制。

Light-inducible spatiotemporal control of gene activation by customizable zinc finger transcription factors.

机构信息

Department of Biomedical Engineering, Duke University, Durham, North Carolina 27708, USA.

出版信息

J Am Chem Soc. 2012 Oct 10;134(40):16480-3. doi: 10.1021/ja3065667. Epub 2012 Sep 27.

Abstract

Advanced gene regulatory systems are necessary for scientific research, synthetic biology, and gene-based medicine. An ideal system would allow facile spatiotemporal manipulation of gene expression within a cell population that is tunable, reversible, repeatable, and can be targeted to diverse DNA sequences. To meet these criteria, a gene regulation system was engineered that combines light-sensitive proteins and programmable zinc finger transcription factors. This system, light-inducible transcription using engineered zinc finger proteins (LITEZ), uses two light-inducible dimerizing proteins from Arabidopsis thaliana, GIGANTEA and the LOV domain of FKF1, to control synthetic zinc finger transcription factor activity in human cells. Activation of gene expression in human cells engineered with LITEZ was reversible and repeatable by modulating the duration of illumination. The level of gene expression could also be controlled by modulating light intensity. Finally, gene expression could be activated in a spatially defined pattern by illuminating the human cell culture through a photomask of arbitrary geometry. LITEZ enables new approaches for precisely regulating gene expression in biotechnology and medicine, as well as studying gene function, cell-cell interactions, and tissue morphogenesis.

摘要

先进的基因调控系统对于科学研究、合成生物学和基于基因的医学是必不可少的。一个理想的系统应该能够在细胞群体中轻松地进行时空基因表达调控,这种调控应具有可调节性、可逆性、可重复性,并能针对不同的 DNA 序列进行靶向调控。为了满足这些标准,设计了一种将光敏感蛋白和可编程锌指转录因子结合在一起的基因调控系统。该系统称为使用工程化锌指蛋白的光诱导转录(LITEZ),它使用来自拟南芥的两种光诱导二聚化蛋白,GIGANTEA 和 FKF1 的 LOV 结构域,来控制人细胞中合成锌指转录因子的活性。通过调节光照时间,用 LITEZ 工程化的人类细胞中的基因表达的激活是可逆和可重复的。通过调节光强度也可以控制基因表达的水平。最后,通过用光掩模对人细胞培养物进行任意形状的照明,可以在空间上定义的模式中激活基因表达。LITEZ 为生物技术和医学中精确调控基因表达,以及研究基因功能、细胞-细胞相互作用和组织形态发生提供了新的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2579/3468123/deb53f52c961/ja-2012-065667_0001.jpg

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