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优化 CRISPR-Cas13d 基因回路,实现可调靶 RNA 下调和最小化的副产物 RNA 切割。

Optimizing a CRISPR-Cas13d Gene Circuit for Tunable Target RNA Downregulation with Minimal Collateral RNA Cutting.

机构信息

The Louis and Beatrice Laufer Center for Physical and Quantitative Biology, Stony Brook University, Stony Brook, New York 11794, United States.

Department of Biomedical Engineering, Stony Brook University, Stony Brook, New York 11794, United States.

出版信息

ACS Synth Biol. 2024 Oct 18;13(10):3212-3230. doi: 10.1021/acssynbio.4c00271. Epub 2024 Oct 8.

Abstract

The invention of RNA-guided DNA cutting systems has revolutionized biotechnology. More recently, RNA-guided RNA cutting by Cas13d entered the scene as a highly promising alternative to RNA interference to engineer cellular transcriptomes for biotechnological and therapeutic purposes. Unfortunately, "collateral damage" by indiscriminate off-target cutting tampered enthusiasm for these systems. Yet, how collateral activity, or even RNA target reduction depends on Cas13d and guide RNA abundance has remained unclear due to the lack of expression-tuning studies to address this question. Here we use precise expression-tuning gene circuits to show that both nonspecific and specific, on-target RNA reduction depend on Cas13d and guide RNA levels, and that nonspecific RNA cutting from cleavage might contribute to on-target RNA reduction. Using RNA-level control techniques, we develop new (MONARCH) gene circuits that achieve a high dynamic range with low basal on-target RNA reduction while minimizing collateral activity in human kidney cells and green monkey cells most frequently used in human virology. MONARCH should bring RNA-guided RNA cutting systems to the forefront, as easily applicable, programmable tools for transcriptome engineering in biotechnological and medical applications.

摘要

RNA 引导的 DNA 切割系统的发明彻底改变了生物技术。最近,Cas13d 介导的 RNA 引导的 RNA 切割作为 RNA 干扰的一种极具前途的替代方法,进入了人们的视野,可用于生物技术和治疗目的的细胞转录组工程。不幸的是,无差别靶点切割的“附带损伤”削弱了人们对这些系统的热情。然而,由于缺乏表达调控研究来解决这个问题,Cas13d 和向导 RNA 丰度如何影响非特异性和特异性靶点 RNA 的切割仍不清楚。在这里,我们使用精确的表达调控基因电路来表明,非特异性和特异性靶点的 RNA 减少都依赖于 Cas13d 和向导 RNA 的水平,而且从 切割的非特异性 RNA 切割可能有助于靶点 RNA 的减少。我们利用 RNA 水平控制技术,开发了新的 MONARCH 基因电路,在人类肾脏细胞和绿猴细胞中实现了高动态范围、低基础靶点 RNA 减少和最小化非特异性活性,这些细胞是人类病毒学中最常使用的细胞。MONARCH 应该将 RNA 引导的 RNA 切割系统推向前沿,成为生物技术和医学应用中转录组工程的易于应用、可编程工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f58/11494644/8dc0a0adbcf8/sb4c00271_0001.jpg

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