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Synthesis of Polylysine/Silica Hybrids through Branched-Polylysine-Mediated Biosilicification

[Image: see text] Although many biosilicification methods based on cationic linear α-poly -l- lysine for synthesis of polylysine/silica hybrids have been investigated, these methods tend to rely on the counteranions, added catalysts, and complex synthesis process. To explore a simple and efficient b...

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Autores principales: Min, Jiakang, Ma, Changde, Liu, Xiaoguang, Li, Jiaxin, Jiang, Hanqing, Wen, Xin, Chen, Xuecheng, Mijowska, Ewa, Tang, Tao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643853/
https://www.ncbi.nlm.nih.gov/pubmed/31458359
http://dx.doi.org/10.1021/acsomega.8b01587
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author Min, Jiakang
Ma, Changde
Liu, Xiaoguang
Li, Jiaxin
Jiang, Hanqing
Wen, Xin
Chen, Xuecheng
Mijowska, Ewa
Tang, Tao
author_facet Min, Jiakang
Ma, Changde
Liu, Xiaoguang
Li, Jiaxin
Jiang, Hanqing
Wen, Xin
Chen, Xuecheng
Mijowska, Ewa
Tang, Tao
author_sort Min, Jiakang
collection PubMed
description [Image: see text] Although many biosilicification methods based on cationic linear α-poly -l- lysine for synthesis of polylysine/silica hybrids have been investigated, these methods tend to rely on the counteranions, added catalysts, and complex synthesis process. To explore a simple and efficient biosilicification method, in this work, branched poly-l-lysine (BPL) is used as both a catalyst to hydrolyze tetraethoxysilane (TEOS) and an in situ template to direct silicic acids forming polylysine/silica hybrids in one-pot mode. The catalysis of BPL to hydrolyze TEOS results from the abundant hydrogen bonding (as the active site) to increase the nucleophilicity of BPL. Meanwhile, the hydrogen bonding is also found to be the key factor determining the self-assembly of BPL. During biosilicification, owing to self-assembly of BPL molecules, BPL would form spherical particles by keeping a random-coil conformation or form lamellar structures by undergoing a conformational transition from a random-coil to β-sheet construction. As a result, polylysine/silica hybrids with tunable topological structures are synthesized using aggregated BPLs as templates after the hydrolysis of TEOS. This finding of applying BPL to fulfill the biosilicification procedure without counteranions and added catalysts would enable a better understanding of the polypeptide-governed biosilicification process and pave a way for fabricating complex inorganic architectures applicable to silica transformational chemistry.
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spelling pubmed-66438532019-08-27 Synthesis of Polylysine/Silica Hybrids through Branched-Polylysine-Mediated Biosilicification Min, Jiakang Ma, Changde Liu, Xiaoguang Li, Jiaxin Jiang, Hanqing Wen, Xin Chen, Xuecheng Mijowska, Ewa Tang, Tao ACS Omega [Image: see text] Although many biosilicification methods based on cationic linear α-poly -l- lysine for synthesis of polylysine/silica hybrids have been investigated, these methods tend to rely on the counteranions, added catalysts, and complex synthesis process. To explore a simple and efficient biosilicification method, in this work, branched poly-l-lysine (BPL) is used as both a catalyst to hydrolyze tetraethoxysilane (TEOS) and an in situ template to direct silicic acids forming polylysine/silica hybrids in one-pot mode. The catalysis of BPL to hydrolyze TEOS results from the abundant hydrogen bonding (as the active site) to increase the nucleophilicity of BPL. Meanwhile, the hydrogen bonding is also found to be the key factor determining the self-assembly of BPL. During biosilicification, owing to self-assembly of BPL molecules, BPL would form spherical particles by keeping a random-coil conformation or form lamellar structures by undergoing a conformational transition from a random-coil to β-sheet construction. As a result, polylysine/silica hybrids with tunable topological structures are synthesized using aggregated BPLs as templates after the hydrolysis of TEOS. This finding of applying BPL to fulfill the biosilicification procedure without counteranions and added catalysts would enable a better understanding of the polypeptide-governed biosilicification process and pave a way for fabricating complex inorganic architectures applicable to silica transformational chemistry. American Chemical Society 2018-12-18 /pmc/articles/PMC6643853/ /pubmed/31458359 http://dx.doi.org/10.1021/acsomega.8b01587 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Min, Jiakang
Ma, Changde
Liu, Xiaoguang
Li, Jiaxin
Jiang, Hanqing
Wen, Xin
Chen, Xuecheng
Mijowska, Ewa
Tang, Tao
Synthesis of Polylysine/Silica Hybrids through Branched-Polylysine-Mediated Biosilicification
title Synthesis of Polylysine/Silica Hybrids through Branched-Polylysine-Mediated Biosilicification
title_full Synthesis of Polylysine/Silica Hybrids through Branched-Polylysine-Mediated Biosilicification
title_fullStr Synthesis of Polylysine/Silica Hybrids through Branched-Polylysine-Mediated Biosilicification
title_full_unstemmed Synthesis of Polylysine/Silica Hybrids through Branched-Polylysine-Mediated Biosilicification
title_short Synthesis of Polylysine/Silica Hybrids through Branched-Polylysine-Mediated Biosilicification
title_sort synthesis of polylysine/silica hybrids through branched-polylysine-mediated biosilicification
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643853/
https://www.ncbi.nlm.nih.gov/pubmed/31458359
http://dx.doi.org/10.1021/acsomega.8b01587
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