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小分子剪接调节剂对单链核酸的识别。

Recognition of single-stranded nucleic acids by small-molecule splicing modulators.

机构信息

Department of Medicinal Chemistry, University of Kansas, Lawrence, KS 66047, USA.

Center for Computational Biology and Department of Molecular Biosciences, University of Kansas, Lawrence, KS 66047, USA.

出版信息

Nucleic Acids Res. 2021 Aug 20;49(14):7870-7883. doi: 10.1093/nar/gkab602.

Abstract

Risdiplam is the first approved small-molecule splicing modulator for the treatment of spinal muscular atrophy (SMA). Previous studies demonstrated that risdiplam analogues have two separate binding sites in exon 7 of the SMN2 pre-mRNA: (i) the 5'-splice site and (ii) an upstream purine (GA)-rich binding site. Importantly, the sequence of this GA-rich binding site significantly enhanced the potency of risdiplam analogues. In this report, we unambiguously determined that a known risdiplam analogue, SMN-C2, binds to single-stranded GA-rich RNA in a sequence-specific manner. The minimum required binding sequence for SMN-C2 was identified as GAAGGAAGG. We performed all-atom simulations using a robust Gaussian accelerated molecular dynamics (GaMD) method, which captured spontaneous binding of a risdiplam analogue to the target nucleic acids. We uncovered, for the first time, a ligand-binding pocket formed by two sequential GAAG loop-like structures. The simulation findings were highly consistent with experimental data obtained from saturation transfer difference (STD) NMR and structure-affinity-relationship studies of the risdiplam analogues. Together, these studies illuminate us to understand the molecular basis of single-stranded purine-rich RNA recognition by small-molecule splicing modulators with an unprecedented binding mode.

摘要

反义寡核苷酸调节剂 risdiplam 是首个获批用于治疗脊髓性肌萎缩症(SMA)的小分子剪接调节剂。先前的研究表明,risdiplam 类似物在 SMN2 pre-mRNA 的外显子 7 中有两个独立的结合位点:(i)5′剪接位点和(ii)上游嘌呤(GA)富含结合位点。重要的是,该 GA 富含结合位点的序列显著增强了 risdiplam 类似物的效力。在本报告中,我们明确确定了一种已知的 risdiplam 类似物 SMN-C2 以序列特异性方式结合单链 GA 富含 RNA。确定 SMN-C2 的最小必需结合序列为 GAAGGAAGG。我们使用强大的高斯加速分子动力学(GaMD)方法进行全原子模拟,该方法捕获了 risdiplam 类似物与靶核酸的自发结合。我们首次揭示了由两个连续的 GAAG 环样结构形成的配体结合口袋。模拟结果与来自饱和转移差异(STD)NMR 的实验数据以及 risdiplam 类似物的结构-亲和力关系研究高度一致。这些研究共同阐明了小分子剪接调节剂识别单链嘌呤丰富 RNA 的分子基础,揭示了一种前所未有的结合模式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db4c/8373063/30bbf2f0a169/gkab602gra1.jpg

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