Reductionist Approach in Peptide-Based Nanotechnology
Overview
Authors
Affiliations
The formation of ordered nanostructures by molecular self-assembly of proteins and peptides represents one of the principal directions in nanotechnology. Indeed, polyamides provide superior features as materials with diverse physical properties. A reductionist approach allowed the identification of extremely short peptide sequences, as short as dipeptides, which could form well-ordered amyloid-like β-sheet-rich assemblies comparable to supramolecular structures made of much larger proteins. Some of the peptide assemblies show remarkable mechanical, optical, and electrical characteristics. Another direction of reductionism utilized a natural noncoded amino acid, α-aminoisobutryic acid, to form short superhelical assemblies. The use of this exceptional helix inducer motif allowed the fabrication of single heptad repeats used in various biointerfaces, including their use as surfactants and DNA-binding agents. Two additional directions of the reductionist approach include the use of peptide nucleic acids (PNAs) and coassembly techniques. The diversified accomplishments of the reductionist approach, as well as the exciting future advances it bears, are discussed.
Small Peptide Derived from SFRP5 Suppresses Melanogenesis by Inhibiting Wnt Activity.
Choi Y, Hong J, Lim D, Kim M, Park S, Kang H Curr Issues Mol Biol. 2024; 46(6):5420-5435.
PMID: 38920996 PMC: 11201734. DOI: 10.3390/cimb46060324.
Co-Assembly of Cancer Drugs with Cyclo-HH Peptides: Insights from Simulations and Experiments.
Vlachou A, Kumar V, Tiwari O, Rencus-Lazar S, Chen Y, Ozguney B ACS Appl Bio Mater. 2024; 7(4):2309-2324.
PMID: 38478987 PMC: 11022239. DOI: 10.1021/acsabm.3c01304.
Computational analysis of protein synthesis, diffusion, and binding in compartmental biochips.
Forste S, Vonshak O, Daube S, Bar-Ziv R, Lipowsky R, Rudorf S Microb Cell Fact. 2023; 22(1):244.
PMID: 38037098 PMC: 10688499. DOI: 10.1186/s12934-023-02237-5.
Glycosylation of bacterial antigens changes epitope patterns.
Kern K, Delaroque N, Boysen A, Puder M, Wendt R, Kolsch A Front Immunol. 2023; 14:1258136.
PMID: 37954588 PMC: 10637626. DOI: 10.3389/fimmu.2023.1258136.
Modified Smoluchowski Rate Equations for Aggregation and Fragmentation in Finite Systems.
Szala-Mendyk B, Drajkowska A, Molski A J Phys Chem B. 2023; 127(27):6154-6162.
PMID: 37369009 PMC: 10350959. DOI: 10.1021/acs.jpcb.3c02884.