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Seeded Heteroepitaxial Growth of Crystallizable Collagen Triple Helices: Engineering Multifunctional Two-Dimensional Core-Shell Nanostructures
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 4530929
Author(s) Merg, Andrea D.; van Genderen, Eric; Bazrafshan, Alisina; Su, Hanquan; Zuo, Xiaobing; Touponse, Gavin; Blum, Thorsten B.; Salaita, Khalid; Abrahams, Jan Pieter; Conticello, Vincent P.
Author(s) at UniBasel Abrahams, Jan Pieter
Year 2019
Title Seeded Heteroepitaxial Growth of Crystallizable Collagen Triple Helices: Engineering Multifunctional Two-Dimensional Core-Shell Nanostructures
Journal JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 141
Number 51
Pages / Article-Number 20107-20117
Mesh terms Science & TechnologyPhysical SciencesChemistry, MultidisciplinaryChemistry
Abstract Engineering free-standing 2D nanomaterials with compositional, spatial, and functional control across size regimes from the nano- to mesoscale represents a significant challenge. Herein, we demonstrate a straightforward strategy for the thermodynamically controlled fabrication of multicomponent sectored nanosheets in which each sector can be chemically and spatially addressed independently and orthogonally. Collagen triple helices, comprising collagen-mimetic peptides (CMPs), are employed as molecularly programmable crystallizable units. Modulating their thermodynamic stability affords the controlled synthesis of 2D core-shell nanostructures via thermally driven heteroepitaxial growth. Structural information, gathered from SAXS and cryo-TEM, reveals that the distinct peptide domains maintain their intrinsic lattice structure and illuminates various mechanisms employed by CMP triple helices to alleviate the elastic strain associated with the interfacial lattice mismatch. Finally, we demonstrate that different sectors of the sheet surface can be selectively functionalized using bioorthogonal conjugation chemistry. Altogether, we establish a robust platform for constructing multifunctional 2D nanoarchitectures in which one can systematically program their compositional, spatial, and functional properties, which is a significant step toward their deployment into functional nanoscale devices.
Publisher AMER CHEMICAL SOC
ISSN/ISBN 0002-7863
edoc-URL https://edoc.unibas.ch/75882/
Full Text on edoc No
Digital Object Identifier DOI 10.1021/jacs.9b09335
PubMed ID http://www.ncbi.nlm.nih.gov/pubmed/31800228
ISI-Number 000505627300027
Document type (ISI) Journal Article
 
   

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