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引导分子动力学模拟作为后处理来优化 iBRAB 设计的 Fab 模型。

Steered molecular dynamics simulation as a post-process to optimize the iBRAB-designed Fab model.

机构信息

School of Biotechnology, International University, Hochiminh City, 700000, Vietnam.

Vietnam National University - HCMC, Hochiminh City, 700000, Vietnam.

出版信息

J Comput Aided Mol Des. 2024 Oct 24;38(1):34. doi: 10.1007/s10822-024-00575-z.

Abstract

Therapeutic monoclonal antibodies are an effective method of treating acute infectious diseases. However, knowing which of the produced antibodies in the vast number of human antibodies can cure the disease requires a long time and advanced technology. The previously introduced iBRAB method relies on studied antibodies to design a broad-spectrum antibody capable of neutralizing antigens of many different Influenza A viral strains. To evaluate the antigen-binding fragment as an applicable drug, the therapeutic antibody profiles providing guidelines collected from clinically staged therapeutic antibodies were used to access different measurements. Although the evaluated values were within an accepted range, the modification in the amino acid sequence is required for better properties. Thus, using the steered molecular dynamics (SMD) simulation to determine the binding capacity of amino acids in the functional region, the profile of interacted amino acids of Fab with the antigen was established for modified reference. As a result, the model was modified with amino acids elimination at positions 96-97 in the heavy chain and 26-27, 91, 96-97, and 102-103 in the light chain, which has better Therapeutic Antibody Profiler evaluations than the original designation. Thus again, SMD simulation is a promising computational approach for post-modification in rational drug design.

摘要

治疗性单克隆抗体是治疗急性传染病的有效方法。然而,要知道在大量的人类抗体中,哪些抗体可以治愈疾病,需要很长的时间和先进的技术。前面介绍的 iBRAB 方法依赖于已研究的抗体来设计一种广谱抗体,能够中和许多不同的流感 A 病毒株的抗原。为了评估抗原结合片段作为一种适用药物,从临床分期治疗性抗体中收集的治疗性抗体概况指南用于评估不同的测量值。虽然评估值在可接受的范围内,但需要对氨基酸序列进行修改,以获得更好的性能。因此,使用定向分子动力学(SMD)模拟来确定功能区域中氨基酸的结合能力,为修改后的参考建立了 Fab 与抗原相互作用的氨基酸概况。结果,模型在重链的 96-97 位和轻链的 26-27 位、91 位、96-97 位和 102-103 位上消除了氨基酸,与原始设计相比,治疗性抗体分析器的评估结果更好。因此,再次证明 SMD 模拟是合理药物设计中进行后期修饰的一种很有前途的计算方法。

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