4.8 Article

Membrane active Janus-oligomers of β3-peptides

期刊

CHEMICAL SCIENCE
卷 11, 期 26, 页码 6868-6881

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0sc01344g

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资金

  1. Hungarian Academy of Sciences [LP2016-2, LP2017-8]
  2. National Research, Development and Innovation Office NKFIH, Hungary [NVKP_16-1-2016-0007, OTKA PD-121326, PD-124451]
  3. GINOP grant [BIONANO_GINOP-2.3.2-15-2016-00017]
  4. Marie Curie Fellowship [660030]
  5. Janos Bolyai Research Scholarship
  6. MTA Premium Post-Doctorate Research Program of the Hungarian Academy of Sciences
  7. European Union [VEKOP-2.3.3-15-2017-00020]
  8. State of Hungary
  9. European Regional Development Fund
  10. National Research, Development and Innovation Fund of Hungary [HunProtEx 2018-1.2.1-NKP-2018-00005, 2018-1.2.1-NKP]
  11. Hungarian Ministry for Innovation and Technology
  12. Marie Curie Actions (MSCA) [660030] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

Self-assembling peptides offer a versatile set of tools for bottom-up construction of supramolecular biomaterials. Among these compounds, non-natural peptidic foldamers experience increased focus due to their structural variability and lower sensitivity to enzymatic degradation. However, very little is known about their membrane properties and complex oligomeric assemblies - key areas for biomedical and technological applications. Here we designed short, acyclic beta(3)-peptide sequences with alternating amino acid stereoisomers to obtain non-helical molecules having hydrophilic charged residues on one side, and hydrophobic residues on the other side, with the N-terminus preventing formation of infinite fibrils. Our results indicate that these beta-peptides form small oligomers both in water and in lipid bilayers and are stabilized by intermolecular hydrogen bonds. In the presence of model membranes, they either prefer the headgroup regions or they insert between the lipid chains. Molecular dynamics (MD) simulations suggest the formation of two-layered bundles with their side chains facing opposite directions when compared in water and in model membranes. Analysis of the MD calculations showed hydrogen bonds inside each layer, however, not between the layers, indicating a dynamic assembly. Moreover, the aqueous form of these oligomers can host fluorescent probes as well as a hydrophobic molecule similarly toe.g.lipid transfer proteins. For the tested, peptides the mixed chirality pattern resulted in similar assemblies despite sequential differences. Based on this, it is hoped that the presented molecular framework will inspire similar oligomers with diverse functionality.

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