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通过突变扫描揭示的TnpB潜在活性

Latent activity in TnpB revealed by mutational scanning.

作者信息

Thornton Brittney W, Weissman Rachel F, Tran Ryan V, Duong Brenda T, Rodriguez Jorge E, Terrace Cynthia I, Groover Evan D, Park Jung-Un, Tartaglia Julia, Doudna Jennifer A, Savage David F

机构信息

Department of Molecular and Cell Biology, University of California, Berkeley, Berkeley, CA, 94720, USA.

Innovative Genomics Institute, University of California, Berkeley, Berkeley, CA, 94720, USA.

出版信息

bioRxiv. 2025 Feb 16:2025.02.11.637750. doi: 10.1101/2025.02.11.637750.

Abstract

TnpB is an evolutionarily diverse family of RNA-guided endonucleases associated with prokaryotic transposons. Due to their small size and putative evolutionary relationship to Cas12s, TnpB holds significant potential for genome editing and mechanistic exploration. However, most TnpBs lack robust gene-editing activity, and unbiased profiling of mutational effects on editing activity has not been experimentally explored. Here, we mapped comprehensive sequence-function landscapes of a TnpB ribonucleoprotein and discovered many activating mutations in both the protein and RNA. Single-position changes in the RNA outperform existing variants, highlighting the utility of systematic RNA scaffold mutagenesis. Leveraging the mutational landscape of the TnpB protein, we identified enhanced protein variants from a combinatorial library of activating mutations. These variants increased editing in human cells and by over two-fold and fifty-fold relative to wild-type TnpB, respectively. In total, this study highlights unknown elements critical for regulation of endonuclease activity in both the TnpB protein and the RNA, and reveals a surprising amount of latent activity accessible through mutation.

摘要

TnpB是一个与原核转座子相关的RNA引导核酸内切酶的进化多样化家族。由于其体积小以及与Cas12s可能存在的进化关系,TnpB在基因组编辑和机制探索方面具有巨大潜力。然而,大多数TnpB缺乏强大的基因编辑活性,且尚未对突变对编辑活性的影响进行无偏分析。在此,我们绘制了TnpB核糖核蛋白的全面序列-功能图谱,并在蛋白质和RNA中发现了许多激活突变。RNA中的单位点变化优于现有变体,突出了系统RNA支架诱变的实用性。利用TnpB蛋白质的突变图谱,我们从激活突变的组合文库中鉴定出增强的蛋白质变体。这些变体在人类细胞中的编辑效率分别比野生型TnpB提高了两倍多和五十倍。总的来说,这项研究突出了TnpB蛋白质和RNA中对核酸内切酶活性调节至关重要的未知元件,并揭示了通过突变可获得的惊人数量的潜在活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7bb7/11844463/e01f67462f2c/nihpp-2025.02.11.637750v2-f0006.jpg

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