Department of Plant Biotechnology, Institute of Plant Genetics, Leibniz Universität Hannover, 30419 Hannover, Germany.
Institute of Computer Science, Martin Luther University Halle-Wittenberg, 06120 Halle (Saale), Germany.
Nucleic Acids Res. 2022 Feb 28;50(4):2387-2400. doi: 10.1093/nar/gkac098.
Transcription activator-like effectors (TALEs) are bacterial proteins with a programmable DNA-binding domain, which turned them into exceptional tools for biotechnology. TALEs contain a central array of consecutive 34 amino acid long repeats to bind DNA in a simple one-repeat-to-one-nucleotide manner. However, a few naturally occurring aberrant repeat variants break this strict binding mechanism, allowing for the recognition of an additional sequence with a -1 nucleotide frameshift. The limits and implications of this extended TALE binding mode are largely unexplored. Here, we analyse the complete diversity of natural and artificially engineered aberrant repeats for their impact on the DNA binding of TALEs. Surprisingly, TALEs with several aberrant repeats can loop out multiple repeats simultaneously without losing DNA-binding capacity. We also characterized members of the only natural TALE class harbouring two aberrant repeats and confirmed that their target is the major virulence factor OsSWEET13 from rice. In an aberrant TALE repeat, the position and nature of the amino acid sequence strongly influence its function. We explored the tolerance of TALE repeats towards alterations further and demonstrate that inserts as large as GFP can be tolerated without disrupting DNA binding. This illustrates the extraordinary DNA-binding capacity of TALEs and opens new uses in biotechnology.
转录激活样效应因子(TALEs)是一种具有可编程 DNA 结合结构域的细菌蛋白,这使它们成为生物技术领域的绝佳工具。TALEs 包含一系列连续的 34 个氨基酸长的重复序列,这些重复序列以简单的一重复一核苷酸方式结合 DNA。然而,少数天然存在的异常重复变体打破了这种严格的结合机制,允许识别具有 -1 个核苷酸移码的额外序列。这种扩展的 TALE 结合模式的限制和影响在很大程度上尚未得到探索。在这里,我们分析了天然和人工工程异常重复的完整多样性,以研究其对 TALEs DNA 结合的影响。令人惊讶的是,具有多个异常重复的 TALEs 可以同时环出多个重复而不丧失 DNA 结合能力。我们还对仅含有两个异常重复的天然 TALE 类别的成员进行了表征,并证实其靶标是来自水稻的主要毒力因子 OsSWEET13。在异常 TALE 重复中,氨基酸序列的位置和性质强烈影响其功能。我们进一步探索了 TALE 重复的耐受性,并证明即使插入 GFP 等大型插入物也不会破坏 DNA 结合。这说明了 TALEs 具有非凡的 DNA 结合能力,并为生物技术开辟了新的用途。