Literature DB >> 26352023

Self-assembly of α-helical polypeptides driven by complex coacervation.

Dimitrios Priftis1, Lorraine Leon1, Ziyuan Song2, Sarah L Perry1, Khatcher O Margossian1, Anna Tropnikova1, Jianjun Cheng2, Matthew Tirrell3.   

Abstract

Reported is the ability of α-helical polypeptides to self-assemble with oppositely-charged polypeptides to form liquid complexes while maintaining their α-helical secondary structure. Coupling the α-helical polypeptide to a neutral, hydrophilic polymer and subsequent complexation enables the formation of nanoscale coacervate-core micelles. While previous reports on polypeptide complexation demonstrated a critical dependence of the nature of the complex (liquid versus solid) on chirality, the α-helical structure of the positively charged polypeptide prevents the formation of β-sheets, which would otherwise drive the assembly into a solid state, thereby, enabling coacervate formation between two chiral components. The higher charge density of the assembly, a result of the folding of the α-helical polypeptide, provides enhanced resistance to salts known to inhibit polypeptide complexation. The unique combination of properties of these materials can enhance the known potential of fluid polypeptide complexes for delivery of biologically relevant molecules.
© 2015 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Keywords:  chirality; helical structures; micelles; peptides; self-assembly

Mesh:

Substances:

Year:  2015        PMID: 26352023     DOI: 10.1002/anie.201504861

Source DB:  PubMed          Journal:  Angew Chem Int Ed Engl        ISSN: 1433-7851            Impact factor:   15.336


  16 in total

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Authors:  Amanda B Marciel; Eun Ji Chung; Blair K Brettmann; Lorraine Leon
Journal:  Adv Colloid Interface Sci       Date:  2016-07-02       Impact factor: 12.984

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3.  Selection of Secondary Structures of Heterotypic Supramolecular Peptide Assemblies by an Enzymatic Reaction.

Authors:  Jie Li; Ziqing Zhan; Xuewen Du; Jiaqing Wang; Brandon Hong; Bing Xu
Journal:  Angew Chem Int Ed Engl       Date:  2018-08-06       Impact factor: 15.336

4.  Complex Coacervation-Integrated Hybrid Nanoparticles Increasing Plasmid DNA Delivery Efficiency in Vivo.

Authors:  Yunfei Li; Brock Humphries; Zhishan Wang; Shuyao Lang; Xuefei Huang; Hua Xiao; Yiguo Jiang; Chengfeng Yang
Journal:  ACS Appl Mater Interfaces       Date:  2016-11-07       Impact factor: 9.229

5.  Programmable and Chemically Fueled DNA Coacervates by Transient Liquid-Liquid Phase Separation.

Authors:  Jie Deng; Andreas Walther
Journal:  Chem       Date:  2020-10-21       Impact factor: 22.804

Review 6.  Biomaterials via peptide assembly: Design, characterization, and application in tissue engineering.

Authors:  Vincent P Gray; Connor D Amelung; Israt Jahan Duti; Emma G Laudermilch; Rachel A Letteri; Kyle J Lampe
Journal:  Acta Biomater       Date:  2021-10-25       Impact factor: 8.947

7.  Conformation-Directed Formation of Self-Healing Diblock Copolypeptide Hydrogels via Polyion Complexation.

Authors:  Yintao Sun; Alexander L Wollenberg; Timothy Mark O'Shea; Yanxiang Cui; Z Hong Zhou; Michael V Sofroniew; Timothy J Deming
Journal:  J Am Chem Soc       Date:  2017-10-12       Impact factor: 15.419

8.  Down-regulating Proteolysis to Enhance Anticancer Activity of Peptide Nanofibers.

Authors:  Jie Li; Xuewen Du; Devon J Powell; Rong Zhou; Junfeng Shi; Hongjian He; Zhaoqianqi Feng; Bing Xu
Journal:  Chem Asian J       Date:  2018-07-24

9.  Strategies to improve micelle stability for drug delivery.

Authors:  Yang Lu; Ershuai Zhang; Jianhai Yang; Zhiqiang Cao
Journal:  Nano Res       Date:  2018-08-01       Impact factor: 8.897

Review 10.  Peptide-drug conjugates as effective prodrug strategies for targeted delivery.

Authors:  Yin Wang; Andrew G Cheetham; Garren Angacian; Hao Su; Lisi Xie; Honggang Cui
Journal:  Adv Drug Deliv Rev       Date:  2016-06-29       Impact factor: 15.470

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