| Literature DB >> 29771457 |
Ramesh Singh1, Narendra Kumar Mishra2, Vikas Kumar1, Vandana Vinayak3, Khashti Ballabh Joshi1.
Abstract
We report the design and synthesis of a biocompatible small-peptide-based compound for the controlled and targeted delivery of encapsulated bioactive metal ions through transformation of the internal nanostructures of its complexes. A tyrosine-based short-peptide amphiphile (sPA) was synthesized and observed to self-assemble into β-sheet-like secondary structures. The self-assembly of the designed sPA was modulated by application of different bioactive transition-metal ions, as was confirmed by spectroscopic and microscopic techniques. These bioactive metal-ion-conjugated sPA hybrid structures were further used to develop antibacterial materials. As a result of the excellent antibacterial activity of zinc ions the growth of clinically relevant bacteria such as Escherichia coli was inhibited in the presence of zinc⋅sPA conjugate. Bacterial testing demonstrated that, due to high biocompatibility with bacterial cells, the designed sPA acted as a metal ion delivery agent and might therefore show great potential in locally addressing bacterial infections.Entities:
Keywords: antibiotics; metal ions; self-assembly; short-peptide amphiphiles; tyrosine
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Year: 2018 PMID: 29771457 DOI: 10.1002/cbic.201800220
Source DB: PubMed Journal: Chembiochem ISSN: 1439-4227 Impact factor: 3.164