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Hydrogen Bonding-Based Layer-by-Layer Assembly of Nature-Derived Eggshell Membrane Hydrolysates and Coffee Melanoidins in Single-Cell Nanoencapsulation

Title
Hydrogen Bonding-Based Layer-by-Layer Assembly of Nature-Derived Eggshell Membrane Hydrolysates and Coffee Melanoidins in Single-Cell Nanoencapsulation
Authors
Han S.Y.Yun G.Nguyen D.T.Kang E.K.Lee H.Kim S.Kim B.J.Park J.H.Choi I.S.
Ewha Authors
박지훈
SCOPUS Author ID
박지훈scopus
Issue Date
2022
Journal Title
ChemNanoMat
ISSN
2199-692XJCR Link
Citation
ChemNanoMat vol. 8, no. 5
Keywords
biocompatibilitycoffee melanoidinscytoprotectioneggshell membrane hydrolysatessingle-cell nanoencapsulation
Publisher
John Wiley and Sons Inc
Indexed
SCIE; SCOPUS WOS scopus
Document Type
Article
Abstract
Single-cell nanoencapsulation (SCNE), a chemical strategy for sustaining the structure and functions of viable cells, strictly requires, for creation of cell-in-shell structures, materials that are extremely compatible with chemically labile cells. In this study, we propose the utilization of eggshell membrane hydrolysates (ESMHs) and coffee melanoidins (CMs) derived from food waste—eggshells and spent coffee grounds, respectively—as layer-by-layer (LbL) components. Hydrogen bonding-based LbL construction of nanoshells on Saccharomyces cerevisiae proves greatly biocompatible, not harming the cells (viability > 99%). The ESMH/CM films are durable in a wide range of pH values and effectively protect the encapsulated cells from lethal heavy metals (Cd2+, Cu2+, and Zn2+) and UV-B irradiation. The Fe3+-mediated shell cross-linking augments the ESMH/CM shell's durability and cytoprotectability. The natural ESMHs and CMs will add to the biomaterial arsenal for a multitude of applications that involve the interfacing of living cells and materials. © 2022 Wiley-VCH GmbH.
DOI
10.1002/cnma.202100535
Appears in Collections:
사범대학 > 과학교육과 > Journal papers
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