Literature DB >> 29701785

Mitochondrial Adaptations to Variable Environments and Their Role in Animals' Stress Tolerance.

Inna Sokolova1,2.   

Abstract

Mitochondria are the key organelles involved in energy and redox homeostasis, cellular signaling, and survival. Animal mitochondria are exquisitely sensitive to environmental stress, and stress-induced changes in the mitochondrial integrity and function have major consequences for the organismal performance and fitness. Studies in the model organisms such as terrestrial mammals and insects showed that mitochondrial dysfunction is a major cause of injury during pathological conditions and environmental insults such as hypoxia, ischemia-reperfusion, and exposure to toxins. However, animals from highly stressful environments (such as the intertidal zone of the ocean) can maintain mitochondrial integrity and function despite intense and rapid fluctuations in abiotic conditions and associated changes in the intracellular milieu. Recent studies demonstrate that mitochondria of intertidal organisms (including mollusks, crustaceans, and fish) are capable of maintaining activity of mitochondrial electron transport system (ETS), ATP synthesis, and mitochondrial coupling in a broad range of temperature, osmolarity, and ion content. Mitochondria of intertidal organisms such as mollusks are also resistant to hypoxia-reoxygenation injury and show stability or even upregulation of the mitochondrial ETS activity and ATP synthesis capacity during intermittent hypoxia. In contrast, pH optima for mitochondrial ATP synthesis and respiration are relatively narrow in intertidal mollusks and may reflect adaptation to suppress metabolic rate during pH shifts caused by extreme stress. Sensitivity to anthropogenic pollutants (such as trace metals) in intertidal mollusks appears similar to that of other organisms (including mammals) and may reflect the lack of adaptation to these evolutionarily novel stressors. The mechanisms of the exceptional mitochondrial resilience to temperature, salinity, and hypoxic stress are not yet fully understood in intertidal organisms, yet recent studies demonstrate that they may involve rapid modulation of the ETS capacity (possibly due to post-translation modification of mitochondrial proteins), upregulation of antioxidant defenses in anticipation of oxidative stress, and high activity of mitochondrial proteases involved in degradation of damaged mitochondrial proteins. With rapidly developing molecular tools for non-model organisms, future studies of mitochondrial adaptations should pinpoint the molecular sites associated with the passive tolerance and/or active regulation of mitochondrial activity during stress exposures in intertidal organisms, investigate the roles of mitochondria in transduction of stress signals, and explore the interplay between bioenergetics and mitochondrial signaling in facilitating survival in these highly stressful environments.

Entities:  

Mesh:

Year:  2018        PMID: 29701785     DOI: 10.1093/icb/icy017

Source DB:  PubMed          Journal:  Integr Comp Biol        ISSN: 1540-7063            Impact factor:   3.326


  12 in total

1.  PAH SORPTION TO NANOPLASTICS AND THE TROJAN HORSE EFFECT AS DRIVERS OF MITOCHONDRIAL TOXICITY AND PAH LOCALIZATION IN ZEBRAFISH.

Authors:  Rafael Trevisan; Daniel Uzochukwu; Richard T Di Giulio
Journal:  Front Environ Sci       Date:  2020-07-24

2.  The Mitochondrial Contribution to Animal Performance, Adaptation, and Life-History Variation.

Authors:  Wendy R Hood; Steven N Austad; Pierre Bize; Ana Gabriela Jimenez; Kristi L Montooth; Patricia M Schulte; Graham R Scott; Inna Sokolova; Jason R Treberg; Karine Salin
Journal:  Integr Comp Biol       Date:  2018-09-01       Impact factor: 3.326

3.  Adaptive thermal plasticity enhances sperm and egg performance in a model insect.

Authors:  Ramakrishnan Vasudeva; Andreas Sutter; Kris Sales; Matthew E Dickinson; Alyson J Lumley; Matthew Jg Gage
Journal:  Elife       Date:  2019-10-01       Impact factor: 8.140

4.  Improved mitochondrial function in salmon (Salmo salar) following high temperature acclimation suggests that there are cracks in the proverbial 'ceiling'.

Authors:  Lucie Gerber; Kathy A Clow; Felix C Mark; Anthony K Gamperl
Journal:  Sci Rep       Date:  2020-12-10       Impact factor: 4.379

5.  Molecular assessment of proteins encoded by the mitochondrial genome of Clarias batrachus and Clarias gariepinus.

Authors:  Gyanendra Bahadur Chand; Sushant Kumar; Gajendra Kumar Azad
Journal:  Biochem Biophys Rep       Date:  2021-03-25

Review 6.  Mitochondria as a target and central hub of energy division during cold stress in insects.

Authors:  Jan Lubawy; Szymon Chowański; Zbigniew Adamski; Małgorzata Słocińska
Journal:  Front Zool       Date:  2022-01-06       Impact factor: 3.172

7.  The identification of alternative oxidase in intermediate host snails of Schistosoma and its potential role in protecting Oncomelania hupensis against niclosamide-induced stress.

Authors:  Ni Jiang; Shi-Zhu Li; Yang-Wen-Qing Zhang; Mohamed R Habib; Tao Xiong; Sha Xu; Huifen Dong; Qin-Ping Zhao
Journal:  Parasit Vectors       Date:  2022-03-21       Impact factor: 3.876

8.  Flexible Thermal Sensitivity of Mitochondrial Oxygen Consumption and Substrate Oxidation in Flying Insect Species.

Authors:  Hichem A Menail; Simon B Cormier; Mariem Ben Youssef; Lisa Bjerregaard Jørgensen; Jess L Vickruck; Pier Morin; Luc H Boudreau; Nicolas Pichaud
Journal:  Front Physiol       Date:  2022-04-25       Impact factor: 4.755

Review 9.  Thriving in Oxygen While Preventing ROS Overproduction: No Two Systems Are Created Equal.

Authors:  O Mendez-Romero; C Ricardez-García; P Castañeda-Tamez; N Chiquete-Félix; S Uribe-Carvajal
Journal:  Front Physiol       Date:  2022-04-04       Impact factor: 4.755

10.  Goldfish Response to Chronic Hypoxia: Mitochondrial Respiration, Fuel Preference and Energy Metabolism.

Authors:  Elie Farhat; Hang Cheng; Caroline Romestaing; Matthew Pamenter; Jean-Michel Weber
Journal:  Metabolites       Date:  2021-03-22
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