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Multiple Substrate Binding Mode-Guided Engineering of a Thermophilic PET Hydrolase

[Image: see text] Thermophilic polyester hydrolases (PES-H) have recently enabled biocatalytic recycling of the mass-produced synthetic polyester polyethylene terephthalate (PET), which has found widespread use in the packaging and textile industries. The growing demand for efficient PET hydrolases...

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Autores principales: Pfaff, Lara, Gao, Jian, Li, Zhishuai, Jäckering, Anna, Weber, Gert, Mican, Jan, Chen, Yinping, Dong, Weiliang, Han, Xu, Feiler, Christian G., Ao, Yu-Fei, Badenhorst, Christoffel P. S., Bednar, David, Palm, Gottfried J., Lammers, Michael, Damborsky, Jiri, Strodel, Birgit, Liu, Weidong, Bornscheuer, Uwe T., Wei, Ren
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9361285/
https://www.ncbi.nlm.nih.gov/pubmed/35966606
http://dx.doi.org/10.1021/acscatal.2c02275
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author Pfaff, Lara
Gao, Jian
Li, Zhishuai
Jäckering, Anna
Weber, Gert
Mican, Jan
Chen, Yinping
Dong, Weiliang
Han, Xu
Feiler, Christian G.
Ao, Yu-Fei
Badenhorst, Christoffel P. S.
Bednar, David
Palm, Gottfried J.
Lammers, Michael
Damborsky, Jiri
Strodel, Birgit
Liu, Weidong
Bornscheuer, Uwe T.
Wei, Ren
author_facet Pfaff, Lara
Gao, Jian
Li, Zhishuai
Jäckering, Anna
Weber, Gert
Mican, Jan
Chen, Yinping
Dong, Weiliang
Han, Xu
Feiler, Christian G.
Ao, Yu-Fei
Badenhorst, Christoffel P. S.
Bednar, David
Palm, Gottfried J.
Lammers, Michael
Damborsky, Jiri
Strodel, Birgit
Liu, Weidong
Bornscheuer, Uwe T.
Wei, Ren
author_sort Pfaff, Lara
collection PubMed
description [Image: see text] Thermophilic polyester hydrolases (PES-H) have recently enabled biocatalytic recycling of the mass-produced synthetic polyester polyethylene terephthalate (PET), which has found widespread use in the packaging and textile industries. The growing demand for efficient PET hydrolases prompted us to solve high-resolution crystal structures of two metagenome-derived enzymes (PES-H1 and PES-H2) and notably also in complex with various PET substrate analogues. Structural analyses and computational modeling using molecular dynamics simulations provided an understanding of how product inhibition and multiple substrate binding modes influence key mechanistic steps of enzymatic PET hydrolysis. Key residues involved in substrate-binding and those identified previously as mutational hotspots in homologous enzymes were subjected to mutagenesis. At 72 °C, the L92F/Q94Y variant of PES-H1 exhibited 2.3-fold and 3.4-fold improved hydrolytic activity against amorphous PET films and pretreated real-world PET waste, respectively. The R204C/S250C variant of PES-H1 had a 6.4 °C higher melting temperature than the wild-type enzyme but retained similar hydrolytic activity. Under optimal reaction conditions, the L92F/Q94Y variant of PES-H1 hydrolyzed low-crystallinity PET materials 2.2-fold more efficiently than LCC ICCG, which was previously the most active PET hydrolase reported in the literature. This property makes the L92F/Q94Y variant of PES-H1 a good candidate for future applications in industrial plastic recycling processes.
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spelling pubmed-93612852022-08-10 Multiple Substrate Binding Mode-Guided Engineering of a Thermophilic PET Hydrolase Pfaff, Lara Gao, Jian Li, Zhishuai Jäckering, Anna Weber, Gert Mican, Jan Chen, Yinping Dong, Weiliang Han, Xu Feiler, Christian G. Ao, Yu-Fei Badenhorst, Christoffel P. S. Bednar, David Palm, Gottfried J. Lammers, Michael Damborsky, Jiri Strodel, Birgit Liu, Weidong Bornscheuer, Uwe T. Wei, Ren ACS Catal [Image: see text] Thermophilic polyester hydrolases (PES-H) have recently enabled biocatalytic recycling of the mass-produced synthetic polyester polyethylene terephthalate (PET), which has found widespread use in the packaging and textile industries. The growing demand for efficient PET hydrolases prompted us to solve high-resolution crystal structures of two metagenome-derived enzymes (PES-H1 and PES-H2) and notably also in complex with various PET substrate analogues. Structural analyses and computational modeling using molecular dynamics simulations provided an understanding of how product inhibition and multiple substrate binding modes influence key mechanistic steps of enzymatic PET hydrolysis. Key residues involved in substrate-binding and those identified previously as mutational hotspots in homologous enzymes were subjected to mutagenesis. At 72 °C, the L92F/Q94Y variant of PES-H1 exhibited 2.3-fold and 3.4-fold improved hydrolytic activity against amorphous PET films and pretreated real-world PET waste, respectively. The R204C/S250C variant of PES-H1 had a 6.4 °C higher melting temperature than the wild-type enzyme but retained similar hydrolytic activity. Under optimal reaction conditions, the L92F/Q94Y variant of PES-H1 hydrolyzed low-crystallinity PET materials 2.2-fold more efficiently than LCC ICCG, which was previously the most active PET hydrolase reported in the literature. This property makes the L92F/Q94Y variant of PES-H1 a good candidate for future applications in industrial plastic recycling processes. American Chemical Society 2022-07-27 2022-08-05 /pmc/articles/PMC9361285/ /pubmed/35966606 http://dx.doi.org/10.1021/acscatal.2c02275 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Pfaff, Lara
Gao, Jian
Li, Zhishuai
Jäckering, Anna
Weber, Gert
Mican, Jan
Chen, Yinping
Dong, Weiliang
Han, Xu
Feiler, Christian G.
Ao, Yu-Fei
Badenhorst, Christoffel P. S.
Bednar, David
Palm, Gottfried J.
Lammers, Michael
Damborsky, Jiri
Strodel, Birgit
Liu, Weidong
Bornscheuer, Uwe T.
Wei, Ren
Multiple Substrate Binding Mode-Guided Engineering of a Thermophilic PET Hydrolase
title Multiple Substrate Binding Mode-Guided Engineering of a Thermophilic PET Hydrolase
title_full Multiple Substrate Binding Mode-Guided Engineering of a Thermophilic PET Hydrolase
title_fullStr Multiple Substrate Binding Mode-Guided Engineering of a Thermophilic PET Hydrolase
title_full_unstemmed Multiple Substrate Binding Mode-Guided Engineering of a Thermophilic PET Hydrolase
title_short Multiple Substrate Binding Mode-Guided Engineering of a Thermophilic PET Hydrolase
title_sort multiple substrate binding mode-guided engineering of a thermophilic pet hydrolase
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9361285/
https://www.ncbi.nlm.nih.gov/pubmed/35966606
http://dx.doi.org/10.1021/acscatal.2c02275
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