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Molecular basis of ice-binding and cryopreservation activities of type III antifreeze proteins

Antifreeze proteins (AFPs) can inhibit the freezing of body fluid at subzero temperatures to promote the survival of various organisms living in polar regions. Type III AFPs are categorized into three subgroups, QAE1, QAE2, and SP isoforms, based on differences in their isoelectric points. We determ...

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Autores principales: Choi, Seo-Ree, Lee, Jaewang, Seo, Yeo-Jin, Kong, Hyun Sun, Kim, Minjae, Jin, EonSeon, Lee, Jung Ryeol, Lee, Joon-Hwa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Research Network of Computational and Structural Biotechnology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7851773/
https://www.ncbi.nlm.nih.gov/pubmed/33598104
http://dx.doi.org/10.1016/j.csbj.2021.01.016
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author Choi, Seo-Ree
Lee, Jaewang
Seo, Yeo-Jin
Kong, Hyun Sun
Kim, Minjae
Jin, EonSeon
Lee, Jung Ryeol
Lee, Joon-Hwa
author_facet Choi, Seo-Ree
Lee, Jaewang
Seo, Yeo-Jin
Kong, Hyun Sun
Kim, Minjae
Jin, EonSeon
Lee, Jung Ryeol
Lee, Joon-Hwa
author_sort Choi, Seo-Ree
collection PubMed
description Antifreeze proteins (AFPs) can inhibit the freezing of body fluid at subzero temperatures to promote the survival of various organisms living in polar regions. Type III AFPs are categorized into three subgroups, QAE1, QAE2, and SP isoforms, based on differences in their isoelectric points. We determined the thermal hysteresis (TH), ice recrystallization inhibition (IRI), and cryopreservation activity of three isoforms of the notched-fin eelpout AFP and their mutant constructs and characterized their structural and dynamic features using NMR. The QAE1 isoform is the most active among the three classes of III AFP isoforms, and the mutants of inactive QAE2 and SP isoforms, QAE2(ACT) and SP(ACT), displayed the full TH and IRI activities with resepect to QAE1 isoform. Cryopreservation studies using mouse ovarian tissue revealed that the QAE1 isoform and the active mutants, QAE2(ACT) and SP(ACT), more effectively preserved intact follicle morphology and prevented DNA double-strand break damage more efficiently than the inactive isoforms. It was also found that all active AFPs, QAE1, QAE2(ACT), and SP(ACT), formed unique H-bonds with the first 3(10) helix, an interaction that plays an important role in the formation of anchored clathrate water networks for efficient binding to the primary prism and pyramidal planes of ice crystals, which was disrupted in the inactive isoforms. Our studies provide valuable insights into the molecular mechanism of the TH and IRI activity, as well as the cryopreservation efficiency, of type III AFPs.
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spelling pubmed-78517732021-02-16 Molecular basis of ice-binding and cryopreservation activities of type III antifreeze proteins Choi, Seo-Ree Lee, Jaewang Seo, Yeo-Jin Kong, Hyun Sun Kim, Minjae Jin, EonSeon Lee, Jung Ryeol Lee, Joon-Hwa Comput Struct Biotechnol J Research Article Antifreeze proteins (AFPs) can inhibit the freezing of body fluid at subzero temperatures to promote the survival of various organisms living in polar regions. Type III AFPs are categorized into three subgroups, QAE1, QAE2, and SP isoforms, based on differences in their isoelectric points. We determined the thermal hysteresis (TH), ice recrystallization inhibition (IRI), and cryopreservation activity of three isoforms of the notched-fin eelpout AFP and their mutant constructs and characterized their structural and dynamic features using NMR. The QAE1 isoform is the most active among the three classes of III AFP isoforms, and the mutants of inactive QAE2 and SP isoforms, QAE2(ACT) and SP(ACT), displayed the full TH and IRI activities with resepect to QAE1 isoform. Cryopreservation studies using mouse ovarian tissue revealed that the QAE1 isoform and the active mutants, QAE2(ACT) and SP(ACT), more effectively preserved intact follicle morphology and prevented DNA double-strand break damage more efficiently than the inactive isoforms. It was also found that all active AFPs, QAE1, QAE2(ACT), and SP(ACT), formed unique H-bonds with the first 3(10) helix, an interaction that plays an important role in the formation of anchored clathrate water networks for efficient binding to the primary prism and pyramidal planes of ice crystals, which was disrupted in the inactive isoforms. Our studies provide valuable insights into the molecular mechanism of the TH and IRI activity, as well as the cryopreservation efficiency, of type III AFPs. Research Network of Computational and Structural Biotechnology 2021-01-19 /pmc/articles/PMC7851773/ /pubmed/33598104 http://dx.doi.org/10.1016/j.csbj.2021.01.016 Text en © 2021 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Choi, Seo-Ree
Lee, Jaewang
Seo, Yeo-Jin
Kong, Hyun Sun
Kim, Minjae
Jin, EonSeon
Lee, Jung Ryeol
Lee, Joon-Hwa
Molecular basis of ice-binding and cryopreservation activities of type III antifreeze proteins
title Molecular basis of ice-binding and cryopreservation activities of type III antifreeze proteins
title_full Molecular basis of ice-binding and cryopreservation activities of type III antifreeze proteins
title_fullStr Molecular basis of ice-binding and cryopreservation activities of type III antifreeze proteins
title_full_unstemmed Molecular basis of ice-binding and cryopreservation activities of type III antifreeze proteins
title_short Molecular basis of ice-binding and cryopreservation activities of type III antifreeze proteins
title_sort molecular basis of ice-binding and cryopreservation activities of type iii antifreeze proteins
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7851773/
https://www.ncbi.nlm.nih.gov/pubmed/33598104
http://dx.doi.org/10.1016/j.csbj.2021.01.016
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