Cargando…

Pressure tolerance of deep‐sea enzymes can be evolved through increasing volume changes in protein transitions: a study with lactate dehydrogenases from abyssal and hadal fishes

We explore the principles of pressure tolerance in enzymes of deep‐sea fishes using lactate dehydrogenases (LDH) as a case study. We compared the effects of pressure on the activities of LDH from hadal snailfishes Notoliparis kermadecensis and Pseudoliparis swirei with those from a shallow‐adapted L...

Descripción completa

Detalles Bibliográficos
Autores principales: Gerringer, Mackenzie E., Yancey, Paul H., Tikhonova, Olga V., Vavilov, Nikita E., Zgoda, Victor G., Davydov, Dmitri R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7818408/
https://www.ncbi.nlm.nih.gov/pubmed/32250538
http://dx.doi.org/10.1111/febs.15317
_version_ 1783638828361187328
author Gerringer, Mackenzie E.
Yancey, Paul H.
Tikhonova, Olga V.
Vavilov, Nikita E.
Zgoda, Victor G.
Davydov, Dmitri R.
author_facet Gerringer, Mackenzie E.
Yancey, Paul H.
Tikhonova, Olga V.
Vavilov, Nikita E.
Zgoda, Victor G.
Davydov, Dmitri R.
author_sort Gerringer, Mackenzie E.
collection PubMed
description We explore the principles of pressure tolerance in enzymes of deep‐sea fishes using lactate dehydrogenases (LDH) as a case study. We compared the effects of pressure on the activities of LDH from hadal snailfishes Notoliparis kermadecensis and Pseudoliparis swirei with those from a shallow‐adapted Liparis florae and an abyssal grenadier Coryphaenoides armatus. We then quantified the LDH content in muscle homogenates using mass‐spectrometric determination of the LDH‐specific conserved peptide LNLVQR. Existing theory suggests that adaptation to high pressure requires a decrease in volume changes in enzymatic catalysis. Accordingly, evolved pressure tolerance must be accompanied with an important reduction in the volume change associated with pressure‐promoted alteration of enzymatic activity ( [Formula: see text] ). Our results suggest an important revision to this paradigm. Here, we describe an opposite effect of pressure adaptation—a substantial increase in the absolute value of [Formula: see text] in deep‐living species compared to shallow‐water counterparts. With this change, the enzyme activities in abyssal and hadal species do not substantially decrease their activity with pressure increasing up to 1–2 kbar, well beyond full‐ocean depth pressures. In contrast, the activity of the enzyme from the tidepool snailfish, L. florae, decreases nearly linearly from 1 to 2500 bar. The increased tolerance of LDH activity to pressure comes at the expense of decreased catalytic efficiency, which is compensated with increased enzyme contents in high‐pressure‐adapted species. The newly discovered strategy is presumably used when the enzyme mechanism involves the formation of potentially unstable excited transient states associated with substantial changes in enzyme–solvent interactions.
format Online
Article
Text
id pubmed-7818408
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-78184082021-01-29 Pressure tolerance of deep‐sea enzymes can be evolved through increasing volume changes in protein transitions: a study with lactate dehydrogenases from abyssal and hadal fishes Gerringer, Mackenzie E. Yancey, Paul H. Tikhonova, Olga V. Vavilov, Nikita E. Zgoda, Victor G. Davydov, Dmitri R. FEBS J Original Articles We explore the principles of pressure tolerance in enzymes of deep‐sea fishes using lactate dehydrogenases (LDH) as a case study. We compared the effects of pressure on the activities of LDH from hadal snailfishes Notoliparis kermadecensis and Pseudoliparis swirei with those from a shallow‐adapted Liparis florae and an abyssal grenadier Coryphaenoides armatus. We then quantified the LDH content in muscle homogenates using mass‐spectrometric determination of the LDH‐specific conserved peptide LNLVQR. Existing theory suggests that adaptation to high pressure requires a decrease in volume changes in enzymatic catalysis. Accordingly, evolved pressure tolerance must be accompanied with an important reduction in the volume change associated with pressure‐promoted alteration of enzymatic activity ( [Formula: see text] ). Our results suggest an important revision to this paradigm. Here, we describe an opposite effect of pressure adaptation—a substantial increase in the absolute value of [Formula: see text] in deep‐living species compared to shallow‐water counterparts. With this change, the enzyme activities in abyssal and hadal species do not substantially decrease their activity with pressure increasing up to 1–2 kbar, well beyond full‐ocean depth pressures. In contrast, the activity of the enzyme from the tidepool snailfish, L. florae, decreases nearly linearly from 1 to 2500 bar. The increased tolerance of LDH activity to pressure comes at the expense of decreased catalytic efficiency, which is compensated with increased enzyme contents in high‐pressure‐adapted species. The newly discovered strategy is presumably used when the enzyme mechanism involves the formation of potentially unstable excited transient states associated with substantial changes in enzyme–solvent interactions. John Wiley and Sons Inc. 2020-04-21 2020-12 /pmc/articles/PMC7818408/ /pubmed/32250538 http://dx.doi.org/10.1111/febs.15317 Text en © 2020 The Authors. The FEBS Journal published by John Wiley & Sons Ltd on behalf of Federation of European Biochemical Societies This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Articles
Gerringer, Mackenzie E.
Yancey, Paul H.
Tikhonova, Olga V.
Vavilov, Nikita E.
Zgoda, Victor G.
Davydov, Dmitri R.
Pressure tolerance of deep‐sea enzymes can be evolved through increasing volume changes in protein transitions: a study with lactate dehydrogenases from abyssal and hadal fishes
title Pressure tolerance of deep‐sea enzymes can be evolved through increasing volume changes in protein transitions: a study with lactate dehydrogenases from abyssal and hadal fishes
title_full Pressure tolerance of deep‐sea enzymes can be evolved through increasing volume changes in protein transitions: a study with lactate dehydrogenases from abyssal and hadal fishes
title_fullStr Pressure tolerance of deep‐sea enzymes can be evolved through increasing volume changes in protein transitions: a study with lactate dehydrogenases from abyssal and hadal fishes
title_full_unstemmed Pressure tolerance of deep‐sea enzymes can be evolved through increasing volume changes in protein transitions: a study with lactate dehydrogenases from abyssal and hadal fishes
title_short Pressure tolerance of deep‐sea enzymes can be evolved through increasing volume changes in protein transitions: a study with lactate dehydrogenases from abyssal and hadal fishes
title_sort pressure tolerance of deep‐sea enzymes can be evolved through increasing volume changes in protein transitions: a study with lactate dehydrogenases from abyssal and hadal fishes
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7818408/
https://www.ncbi.nlm.nih.gov/pubmed/32250538
http://dx.doi.org/10.1111/febs.15317
work_keys_str_mv AT gerringermackenziee pressuretoleranceofdeepseaenzymescanbeevolvedthroughincreasingvolumechangesinproteintransitionsastudywithlactatedehydrogenasesfromabyssalandhadalfishes
AT yanceypaulh pressuretoleranceofdeepseaenzymescanbeevolvedthroughincreasingvolumechangesinproteintransitionsastudywithlactatedehydrogenasesfromabyssalandhadalfishes
AT tikhonovaolgav pressuretoleranceofdeepseaenzymescanbeevolvedthroughincreasingvolumechangesinproteintransitionsastudywithlactatedehydrogenasesfromabyssalandhadalfishes
AT vavilovnikitae pressuretoleranceofdeepseaenzymescanbeevolvedthroughincreasingvolumechangesinproteintransitionsastudywithlactatedehydrogenasesfromabyssalandhadalfishes
AT zgodavictorg pressuretoleranceofdeepseaenzymescanbeevolvedthroughincreasingvolumechangesinproteintransitionsastudywithlactatedehydrogenasesfromabyssalandhadalfishes
AT davydovdmitrir pressuretoleranceofdeepseaenzymescanbeevolvedthroughincreasingvolumechangesinproteintransitionsastudywithlactatedehydrogenasesfromabyssalandhadalfishes