Functional And Structural Analyses Of A Bacterial Antifreeze Protein

Antifreeze proteins (AFPs) are a class of ice binding proteins (IBPs) that are expressed by different cold-adapted organisms to increase their freezing tolerance. AFPs have two major properties: thermal hysteresis and ice recrystallization inhibition. Here we report the functional and structural ana...

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Main Author: Wang, Chen
Format: Text
Language:unknown
Published: LSU Scholarly Repository 2017
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Online Access:https://repository.lsu.edu/gradschool_dissertations/4213
https://doi.org/10.31390/gradschool_dissertations.4213
https://repository.lsu.edu/context/gradschool_dissertations/article/5220/viewcontent/Wang_diss.pdf
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spelling ftlouisianastuir:oai:repository.lsu.edu:gradschool_dissertations-5220 2024-09-15T17:43:44+00:00 Functional And Structural Analyses Of A Bacterial Antifreeze Protein Wang, Chen 2017-01-01T08:00:00Z application/pdf https://repository.lsu.edu/gradschool_dissertations/4213 https://doi.org/10.31390/gradschool_dissertations.4213 https://repository.lsu.edu/context/gradschool_dissertations/article/5220/viewcontent/Wang_diss.pdf unknown LSU Scholarly Repository https://repository.lsu.edu/gradschool_dissertations/4213 doi:10.31390/gradschool_dissertations.4213 https://repository.lsu.edu/context/gradschool_dissertations/article/5220/viewcontent/Wang_diss.pdf LSU Doctoral Dissertations biochemistry protein structural biology ice binding protein antifreeze protein Life Sciences text 2017 ftlouisianastuir https://doi.org/10.31390/gradschool_dissertations.4213 2024-08-08T04:27:14Z Antifreeze proteins (AFPs) are a class of ice binding proteins (IBPs) that are expressed by different cold-adapted organisms to increase their freezing tolerance. AFPs have two major properties: thermal hysteresis and ice recrystallization inhibition. Here we report the functional and structural analyses of a bacterial AFP, IBPv. IBPv was originally secreted by a bacterium recovered from a deep glacial ice core drilled at Vostok Station, Antarctica. Our study showed that the recombinant protein rIBPv exhibited a thermal hysteresis of 2°C at concentrations higher than 50 µM, effectively inhibited ice recrystallization, and enhanced bacterial viability during freeze-thaw cycling. Circular dichroism scans indicated that rIBPv mainly consists of β-strands and its denaturing temperature was 53.5°C. Multiple sequence alignment of homologous IBPs predicted that IBPv contains two ice binding domains; a feature unique among known AFPs. To examine functional differences between the IBPv domains, each domain was cloned, expressed, and purified. The second domain (domain B) expressed higher ice binding activity. The 1.75 Å resolution crystal structure of IBPv was obtained, which is the first reported structure of multi-domain AFPs. The two ice binding domains are structurally similar with a RMSD of 0.68 Å by backbone alignment. Each domain consists of an irregular β-helix with a triangular cross-section and a long α-helix that parallels at one side of the β-helix. Both domains are stabilized by large numbers of tightly packed hydrophobic side chains. Structural alignment and mutagenesis studies were used to confirm a flat plane with some aligned water molecules in each domain as the ice binding site, which is located on the same face of the β-helix. Structural non-hindrance of the ice binding site was found to be pivotal for the function of IBPv. Data from thermal hysteresis and gel filtration assays suggested that the two domains could cooperate to achieve a higher ice binding effect by forming heterodimers. ... Text Antarc* Antarctica ice core LSU Digital Commons (Louisiana State University)
institution Open Polar
collection LSU Digital Commons (Louisiana State University)
op_collection_id ftlouisianastuir
language unknown
topic biochemistry
protein
structural biology
ice binding protein
antifreeze protein
Life Sciences
spellingShingle biochemistry
protein
structural biology
ice binding protein
antifreeze protein
Life Sciences
Wang, Chen
Functional And Structural Analyses Of A Bacterial Antifreeze Protein
topic_facet biochemistry
protein
structural biology
ice binding protein
antifreeze protein
Life Sciences
description Antifreeze proteins (AFPs) are a class of ice binding proteins (IBPs) that are expressed by different cold-adapted organisms to increase their freezing tolerance. AFPs have two major properties: thermal hysteresis and ice recrystallization inhibition. Here we report the functional and structural analyses of a bacterial AFP, IBPv. IBPv was originally secreted by a bacterium recovered from a deep glacial ice core drilled at Vostok Station, Antarctica. Our study showed that the recombinant protein rIBPv exhibited a thermal hysteresis of 2°C at concentrations higher than 50 µM, effectively inhibited ice recrystallization, and enhanced bacterial viability during freeze-thaw cycling. Circular dichroism scans indicated that rIBPv mainly consists of β-strands and its denaturing temperature was 53.5°C. Multiple sequence alignment of homologous IBPs predicted that IBPv contains two ice binding domains; a feature unique among known AFPs. To examine functional differences between the IBPv domains, each domain was cloned, expressed, and purified. The second domain (domain B) expressed higher ice binding activity. The 1.75 Å resolution crystal structure of IBPv was obtained, which is the first reported structure of multi-domain AFPs. The two ice binding domains are structurally similar with a RMSD of 0.68 Å by backbone alignment. Each domain consists of an irregular β-helix with a triangular cross-section and a long α-helix that parallels at one side of the β-helix. Both domains are stabilized by large numbers of tightly packed hydrophobic side chains. Structural alignment and mutagenesis studies were used to confirm a flat plane with some aligned water molecules in each domain as the ice binding site, which is located on the same face of the β-helix. Structural non-hindrance of the ice binding site was found to be pivotal for the function of IBPv. Data from thermal hysteresis and gel filtration assays suggested that the two domains could cooperate to achieve a higher ice binding effect by forming heterodimers. ...
format Text
author Wang, Chen
author_facet Wang, Chen
author_sort Wang, Chen
title Functional And Structural Analyses Of A Bacterial Antifreeze Protein
title_short Functional And Structural Analyses Of A Bacterial Antifreeze Protein
title_full Functional And Structural Analyses Of A Bacterial Antifreeze Protein
title_fullStr Functional And Structural Analyses Of A Bacterial Antifreeze Protein
title_full_unstemmed Functional And Structural Analyses Of A Bacterial Antifreeze Protein
title_sort functional and structural analyses of a bacterial antifreeze protein
publisher LSU Scholarly Repository
publishDate 2017
url https://repository.lsu.edu/gradschool_dissertations/4213
https://doi.org/10.31390/gradschool_dissertations.4213
https://repository.lsu.edu/context/gradschool_dissertations/article/5220/viewcontent/Wang_diss.pdf
genre Antarc*
Antarctica
ice core
genre_facet Antarc*
Antarctica
ice core
op_source LSU Doctoral Dissertations
op_relation https://repository.lsu.edu/gradschool_dissertations/4213
doi:10.31390/gradschool_dissertations.4213
https://repository.lsu.edu/context/gradschool_dissertations/article/5220/viewcontent/Wang_diss.pdf
op_doi https://doi.org/10.31390/gradschool_dissertations.4213
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