Liu Tianshuo, Xu Ling, Chung Kevin, Sisto Luke J, Hwang Jimin, Zhang Chengxin, Van Zandt Michael C, Pyle Anna Marie
Department of Molecular, Cellular and Developmental Biology, Yale University, New Haven, CT 06511.
HHMI, Chevy Chase, MD 20815.
Proc Natl Acad Sci U S A. 2025 May 13;122(19):e2502425122. doi: 10.1073/pnas.2502425122. Epub 2025 May 8.
Despite the promise of vastly expanding the druggable genome, rational design of RNA-targeting ligands remains challenging as it requires the rapid identification of hits and visualization of the resulting cocomplexes for guiding optimization. Here, we leveraged high-throughput screening, medicinal chemistry, and structural biology to identify a de novo splicing inhibitor against a large and highly folded fungal group I intron. High-resolution cryoEM structures of the intron in different liganded states not only reveal molecular interactions that rationalize experimental structure-activity relationship but also shed light on a unique strategy whereby RNA-associated metal ions and RNA conformation exhibit exceptional plasticity in response to small-molecule binding. This study reveals general principles that govern RNA-ligand recognition, the interplay between chemical bonding specificity, and dynamic responses within an RNA target.
尽管有望极大地扩展可药物作用基因组,但靶向RNA配体的合理设计仍然具有挑战性,因为它需要快速识别命中靶点并可视化所得的共复合物以指导优化。在此,我们利用高通量筛选、药物化学和结构生物学来鉴定一种针对大型且高度折叠的真菌I类内含子的从头剪接抑制剂。处于不同配体结合状态的内含子的高分辨率冷冻电镜结构不仅揭示了使实验结构-活性关系合理化的分子相互作用,还揭示了一种独特的策略,即RNA相关金属离子和RNA构象在响应小分子结合时表现出非凡的可塑性。这项研究揭示了支配RNA-配体识别、化学键特异性之间的相互作用以及RNA靶标内动态响应的一般原则。