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绿光控制的哺乳动物和植物细胞基因开关。

Green Light-Controlled Gene Switch for Mammalian and Plant Cells.

机构信息

Signalling Research Centres BIOSS and CIBSS and Faculty of Biology, University of Freiburg, Freiburg, Germany.

Celonic AG, Basel, Switzerland.

出版信息

Methods Mol Biol. 2021;2312:89-107. doi: 10.1007/978-1-0716-1441-9_6.

DOI:10.1007/978-1-0716-1441-9_6
PMID:34228286
Abstract

The quest to engineer increasingly complex synthetic gene networks in mammalian and plant cells requires an ever-growing portfolio of orthogonal gene expression systems. To control gene expression, light is of particular interest due to high spatial and temporal resolution, ease of dosage and simplicity of administration, enabling increasingly sophisticated man-machine interfaces. However, the majority of applied optogenetic switches are crowded in the UVB, blue and red/far-red light parts of the optical spectrum, limiting the number of simultaneously applicable stimuli. This problem is even more pertinent in plant cells, in which UV-A/B, blue, and red light-responsive photoreceptors are already expressed endogenously. To alleviate these challenges, we developed a green light responsive gene switch, based on the light-sensitive bacterial transcription factor CarH from Thermus thermophilus and its cognate DNA operator sequence CarO. The switch is characterized by high reversibility, high transgene expression levels, and low leakiness, leading to up to 350-fold induction ratios in mammalian cells. In this chapter, we describe the essential steps to build functional components of the green light-regulated gene switch, followed by detailed protocols to quantify transgene expression over time in mammalian cells. In addition, we expand this protocol with a description of how the optogenetic switch can be implemented in protoplasts of A. thaliana.

摘要

在哺乳动物和植物细胞中设计越来越复杂的合成基因网络的过程中,需要不断增加正交基因表达系统的组合。为了控制基因表达,光由于具有高空间和时间分辨率、易于剂量控制和操作简单等优点,特别受到关注,从而实现了越来越复杂的人机界面。然而,大多数应用的光遗传学开关都集中在光学光谱的 UVB、蓝色和红色/远红色部分,这限制了同时可应用的刺激数量。在植物细胞中,这个问题更加突出,因为其中已经内源性表达了 UV-A/B、蓝色和红光响应的光受体。为了缓解这些挑战,我们开发了一种基于嗜热栖热菌转录因子 CarH 和其同源 DNA 操纵子序列 CarO 的绿色光响应基因开关。该开关具有高可逆性、高转基因表达水平和低漏泄性,在哺乳动物细胞中可诱导高达 350 倍的表达。在本章中,我们描述了构建绿色光调控基因开关功能组件的基本步骤,随后详细介绍了在哺乳动物细胞中随时间定量转基因表达的方案。此外,我们还扩展了该方案,描述了如何在拟南芥原生质体中实现光遗传学开关。

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Green Light-Controlled Gene Switch for Mammalian and Plant Cells.绿光控制的哺乳动物和植物细胞基因开关。
Methods Mol Biol. 2021;2312:89-107. doi: 10.1007/978-1-0716-1441-9_6.
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A Green-Light-Responsive System for the Control of Transgene Expression in Mammalian and Plant Cells.用于控制哺乳动物和植物细胞中转基因表达的绿光响应系统。
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