适体
化学
生物信息学
寡核苷酸
变构调节
结合位点
纳米技术
核酸
分子动力学
组合化学
微秒
生物物理学
计算生物学
小分子
DNA
生物化学
计算化学
酶
生物
分子生物学
材料科学
基因
物理
天文
作者
Ruoyu Wang,Qiansen Zhang,Yi Zhang,Hanchang Shi,Kim Truc Nguyen,Xiaohong Zhou
出处
期刊:Analytical Chemistry
[American Chemical Society]
日期:2019-10-18
卷期号:91 (24): 15811-15817
被引量:77
标识
DOI:10.1021/acs.analchem.9b04115
摘要
Split aptamers (SPAs) are a pair of oligonucleotide fragments generated by cleaving a long parent aptamer. SPAs have many compelling advantages over the parent aptamer such as sandwich target binding, optimized concise structure, and low cost. However, only a limited number of SPAs have been developed so far because the traditional theory restricts the splitting to the functionally dispensable site that many parent aptamers do not possess. In this work, the traditional mechanism and hypothesis that SPAs can also be generated by splitting the parent aptamer at the functionally essential site while still preserving the biorecognition capability are challenged. To prove the hypothesis, three SPAs with Broken initial small-molecule binding Pockets (BPSPAs) are discovered and their binding capabilities are validated both in the wet lab and in silico. An allosteric binding mechanism of BPSPAs, in which a new binding pocket is formed upon the target binding, is revealed by all-atom microsecond-scale molecular dynamics simulations. Our work highlights the important role of MD simulations in predicting the ligand binding potency with functional nucleic acids at the molecular level. The findings will greatly promote discovery of new SPAs and their applications in molecular sensing in many fields.
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