论文标题

抗菌肽与膜相互作用的物理化学特征和特征

Physicochemical Features and Peculiarities of Interaction of Antimicrobial Peptides with the Membrane

论文作者

Pirtskhalava, Malak, Vishnepolsky, Boris, Grigolava, Maya

论文摘要

抗微生物肽(AMP)是具有新颖且未开发的生物治疗剂的抗感染物。抗菌肽的作用模式意味着与细胞包膜相互作用。对抗菌肽与细胞包膜相互作用的特殊性的全面理解对于执行新生物治疗剂的任务设计是必要的,对于微生物而言,很难解决抗性。为了启用低成本和高吞吐量的从头设计,必须在计算机预测模型中。为了开发性能预测模型,必须拥有有关AMP的作用机理的全面知识。最后的知识将使我们能够表达地编码氨基酸序列,并成功地选择AMP的准确分类器。微生物细胞的共享保护层是内部质膜。 AMP与生物膜(天然和/或人工)的相互作用是最全面的研究。我们依赖于AMP的理化,聚集和结构特征的调查,对AMP与细胞膜的相互作用的机制和结果进行综述。 AMP作用的效力和机制已列出沿链的氨基酸组成以及极性和极性残基的分布,即肽的物理化学特征,例如疏水性,疏水性和两亲性。许多不同的方法用于对放大器进行分类。对AMP作用的序列,结构和模式的知识的调查允许得出结论,只有AMP的理化特征才能执行明确的分类。对AMP物理化学特征的全面知识对于开发以任务为导向的基于肽的抗生素的设计方法是从头开始的。

Antimicrobial peptides (AMPs) are anti-infectives that have potential as a novel and untapped class of biotherapeutics. Modes of action of antimicrobial peptides imply interaction with cell envelope. Comprehensive understanding of peculiarities of interactions of antimicrobial peptides with cell envelope is necessary to perform the task-oriented design of new biotherapeutics, against which for microbes it is hard to work out resistance. In order to enable a de novo design with low costs and in high throughput, in silico predictive models have to be required. To develop the performant predictive model, comprehensive knowledge on mechanisms of action of AMPs has to be possessed. The last knowledge will allow us to encode amino acid sequences expressively and to get success to the choosing of the accurate classifier of AMPs. A shared protective layer of microbial cells is inner, plasmatic membrane. The interaction of AMP with a biological membrane (native and/or artificial) is the most comprehensively studied. We provide a review of mechanisms and results of interaction of AMP with the cell membrane, relying on the survey of physicochemical, aggregative and structural features of AMPs. Potency and mechanism of action of AMP have presented in the terms of amino acid compositions and distributions of the polar and apolar residues along the chain, that is in such physicochemical features of peptides as the hydrophobicity, hydrophilicity, and amphiphilicity. Many different approaches were used to classify AMPs. The survey of the knowledge on sequences, structures, and modes of actions of AMP, allows concluding that, only the physicochemical features of AMPs give the capability to perform the unambiguous classification. Comprehensive knowledge of physicochemical features of AMP is necessary to develop task-oriented methods of design of peptide-based antibiotics de novo.

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