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多亚基CRISPR效应器和转座子的无细胞快速表征

Rapid cell-free characterization of multi-subunit CRISPR effectors and transposons.

作者信息

Wimmer Franziska, Mougiakos Ioannis, Englert Frank, Beisel Chase L

机构信息

Helmholtz Institute for RNA-based Infection Research (HIRI), Helmholtz Centre for Infection Research (HZI), 97080 Würzburg, Germany.

Helmholtz Institute for RNA-based Infection Research (HIRI), Helmholtz Centre for Infection Research (HZI), 97080 Würzburg, Germany; Medical Faculty, University of Würzburg, 97080 Würzburg, Germany.

出版信息

Mol Cell. 2022 Mar 17;82(6):1210-1224.e6. doi: 10.1016/j.molcel.2022.01.026. Epub 2022 Feb 24.

Abstract

CRISPR-Cas biology and technologies have been largely shaped to date by the characterization and use of single-effector nucleases. By contrast, multi-subunit effectors dominate natural systems, represent emerging technologies, and were recently associated with RNA-guided DNA transposition. This disconnect stems from the challenge of working with multiple protein subunits in vitro and in vivo. Here, we apply cell-free transcription-translation (TXTL) systems to radically accelerate the characterization of multi-subunit CRISPR effectors and transposons. Numerous DNA constructs can be combined in one TXTL reaction, yielding defined biomolecular readouts in hours. Using TXTL, we mined phylogenetically diverse I-E effectors, interrogated extensively self-targeting I-C and I-F systems, and elucidated targeting rules for I-B and I-F CRISPR transposons using only DNA-binding components. We further recapitulated DNA transposition in TXTL, which helped reveal a distinct branch of I-B CRISPR transposons. These capabilities will facilitate the study and exploitation of the broad yet underexplored diversity of CRISPR-Cas systems and transposons.

摘要

到目前为止,CRISPR-Cas生物学和技术在很大程度上是由单效应核酸酶的表征和应用所塑造的。相比之下,多亚基效应器在自然系统中占主导地位,代表着新兴技术,并且最近与RNA引导的DNA转座相关联。这种脱节源于在体外和体内处理多个蛋白质亚基的挑战。在这里,我们应用无细胞转录-翻译(TXTL)系统从根本上加速对多亚基CRISPR效应器和转座子的表征。众多DNA构建体可以在一个TXTL反应中组合,在数小时内产生明确的生物分子读数。使用TXTL,我们挖掘了系统发育上不同的I-E效应器,广泛研究了自我靶向的I-C和I-F系统,并仅使用DNA结合成分阐明了I-B和I-F CRISPR转座子的靶向规则。我们进一步在TXTL中重现了DNA转座,这有助于揭示I-B CRISPR转座子的一个独特分支。这些能力将促进对CRISPR-Cas系统和转座子广泛但尚未充分探索的多样性的研究和利用。

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