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本文引用的文献

1
Progress in targeting RAS with small molecule drugs.小分子药物靶向 RAS 的研究进展。
Biochem J. 2019 Jan 31;476(2):365-374. doi: 10.1042/BCJ20170441.
2
Second-Harmonic Generation (SHG) for Conformational Measurements: Assay Development, Optimization, and Screening.用于构象测量的二次谐波产生(SHG):分析方法的开发、优化与筛选
Methods Enzymol. 2018;610:167-190. doi: 10.1016/bs.mie.2018.09.017. Epub 2018 Oct 19.
3
Correction: BRET-based RAS biosensors that show a novel small molecule is an inhibitor of RAS-effector protein-protein interactions.更正:基于生物发光共振能量转移(BRET)的RAS生物传感器表明一种新型小分子是RAS效应蛋白-蛋白相互作用的抑制剂。
Elife. 2018 Aug 2;7:e40515. doi: 10.7554/eLife.40515.
4
High-throughput screening identifies small molecules that bind to the RAS:SOS:RAS complex and perturb RAS signaling.高通量筛选可识别与RAS:SOS:RAS复合物结合并干扰RAS信号传导的小分子。
Anal Biochem. 2018 May 1;548:44-52. doi: 10.1016/j.ab.2018.01.025. Epub 2018 Feb 11.
5
Targeting KRAS Mutant Cancers with a Covalent G12C-Specific Inhibitor.针对 KRAS 突变癌症的共价 G12C 特异性抑制剂。
Cell. 2018 Jan 25;172(3):578-589.e17. doi: 10.1016/j.cell.2018.01.006.
6
Novel K-Ras G12C Switch-II Covalent Binders Destabilize Ras and Accelerate Nucleotide Exchange.新型 K-Ras G12C 开关 II 型共价结合物使 Ras 失稳并加速核苷酸交换。
J Chem Inf Model. 2018 Feb 26;58(2):464-471. doi: 10.1021/acs.jcim.7b00399. Epub 2018 Jan 31.
7
Monomeric ephrinB2 binding induces allosteric changes in Nipah virus G that precede its full activation.单体埃菲林B2结合会在尼帕病毒糖蛋白完全激活之前诱导其变构变化。
Nat Commun. 2017 Oct 3;8(1):781. doi: 10.1038/s41467-017-00863-3.
8
The small GTPases K-Ras, N-Ras, and H-Ras have distinct biochemical properties determined by allosteric effects.小GTP酶K-Ras、N-Ras和H-Ras具有由变构效应决定的独特生化特性。
J Biol Chem. 2017 Aug 4;292(31):12981-12993. doi: 10.1074/jbc.M117.778886. Epub 2017 Jun 19.
9
Applications of Surface Second Harmonic Generation in Biological Sensing.表面二次谐波产生在生物传感中的应用。
Annu Rev Anal Chem (Palo Alto Calif). 2017 Jun 12;10(1):387-414. doi: 10.1146/annurev-anchem-071015-041453. Epub 2017 Mar 16.
10
Detection of Ligand-Induced Conformational Changes in Oligonucleotides by Second-Harmonic Generation at a Supported Lipid Bilayer Interface.通过在支撑脂质双层界面上的二次谐波产生检测寡核苷酸中的配体诱导构象变化。
Anal Chem. 2016 Nov 1;88(21):10482-10489. doi: 10.1021/acs.analchem.6b02498. Epub 2016 Oct 12.

拉氏构象变化的二次谐波检测及小分子配体的发现。

Second harmonic generation detection of Ras conformational changes and discovery of a small molecule binder.

机构信息

Helen Diller Family Comprehensive Cancer Center, University of California, San Francisco, CA 94158.

Biodesy, Inc., South San Francisco, CA 94080.

出版信息

Proc Natl Acad Sci U S A. 2019 Aug 27;116(35):17290-17297. doi: 10.1073/pnas.1905516116. Epub 2019 Aug 9.

DOI:10.1073/pnas.1905516116
PMID:31399543
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6717309/
Abstract

Second harmonic generation (SHG) is an emergent biophysical method that sensitively measures real-time conformational change of biomolecules in the presence of biological ligands and small molecules. This study describes the successful implementation of SHG as a primary screening platform to identify fragment ligands to oncogenic Kirsten rat sarcoma (KRas). KRas is the most frequently mutated driver of pancreatic, colon, and lung cancers; however, there are few well-characterized small molecule ligands due to a lack of deep binding pockets. Using SHG, we identified a fragment binder to KRas and used H N transverse relaxation optimized spectroscopy (TROSY) heteronuclear single-quantum coherence (HSQC) NMR to characterize its binding site as a pocket adjacent to the switch 2 region. The unique sensitivity of SHG furthered our study by revealing distinct conformations induced by our hit fragment compared with 4,6-dichloro-2-methyl-3-aminoethyl-indole (DCAI), a Ras ligand previously described to bind the same pocket. This study highlights SHG as a high-throughput screening platform that reveals structural insights in addition to ligand binding.

摘要

二次谐波产生(SHG)是一种新兴的生物物理方法,可在存在生物配体和小分子的情况下灵敏地测量生物分子的实时构象变化。本研究描述了 SHG 作为一种主要的筛选平台,成功地识别了致癌性 Kirsten 大鼠肉瘤(KRas)的片段配体。KRas 是胰腺、结肠和肺癌中最常发生突变的驱动基因;然而,由于缺乏深结合口袋,很少有特征明确的小分子配体。我们使用 SHG 鉴定了一种 KRas 的片段结合物,并使用 H N 横向弛豫优化光谱(TROSY)异核单量子相干(HSQC)NMR 来表征其结合口袋位于开关 2 区域附近。SHG 的独特灵敏度通过揭示与先前描述的与同一口袋结合的 Ras 配体 4,6-二氯-2-甲基-3-氨乙基-吲哚(DCAI)相比,我们的命中片段诱导的不同构象,进一步推进了我们的研究。这项研究强调了 SHG 作为一种高通量筛选平台,除了配体结合外,还能揭示结构见解。