适体
小角X射线散射
寡核苷酸
DNA
化学
分子
核糖核酸
分子动力学
碎片分子轨道
生物物理学
散射
生物
分子轨道
生物化学
基因
计算化学
分子生物学
物理
光学
有机化学
作者
Dmitry Morozov,Vladimir Mironov,Roman V. Moryachkov,Irina A. Shchugoreva,Polina V. Artyushenko,Galina S. Zamay,Olga S. Kolovskaya,Tatiana N. Zamay,Alexey V. Krat,Dmitry Molodenskiy,V. N. Zabluda,Dmitry V. Veprintsev,Alexey E. Sokolov,Р. А. Зуков,Maxim V. Berezovski,Felix N. Tomilin,Dmitri G. Fedorov,Yuri Alexeev,Anna S. Kichkailo
标识
DOI:10.1016/j.omtn.2021.07.015
摘要
Aptamers are short, single-stranded DNA or RNA oligonucleotide molecules that function as synthetic analogs of antibodies and bind to a target molecule with high specificity.Aptamer affinity entirely depends on its tertiary structure and charge distribution.Therefore, length and structure optimization are essential for increasing aptamer specificity and affinity.Here, we present a general optimization procedure for finding the most populated atomistic structures of DNA aptamers.Based on the existed aptamer LC-18 for lung adenocarcinoma, a new truncated LC-18 (LC-18t) aptamer LC-18t was developed.A three-dimensional (3D) shape of LC-18t was reported based on small-angle X-ray scattering (SAXS) experiments and molecular modeling by fragment molecular orbital or molecular dynamic methods.Molecular simulations revealed an ensemble of possible aptamer conformations in solution that were in close agreement with measured SAXS data.The aptamer LC-18t had stronger binding to cancerous cells in lung tumor tissues and shared the binding site with the original larger aptamer.The suggested approach reveals 3D shapes of aptamers and helps in designing better affinity probes.
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