Ca2+-associated triphasic pH changes in mitochondria during brown adipocyte activation
Objective: Brown adipocytes (BAs) are endowed with a high metabolic capacity for energy expenditure due to their high mitochondria content. While mitochondrial pH is dynamically regulated in response to stimulation and, in return, affects various metabolic processes, how mitochondrial pH is regulate...
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doaj-c212af8769b643ecb54f7dca3aeffaff2020-11-24T23:24:37ZengElsevierMolecular Metabolism2212-87782017-08-016879780810.1016/j.molmet.2017.05.013Ca2+-associated triphasic pH changes in mitochondria during brown adipocyte activationYanyan Hou0Tetsuya Kitaguchi1Rókus Kriszt2Yu-Hua Tseng3Michael Raghunath4Madoka Suzuki5WASEDA Bioscience Research Institute in Singapore (WABIOS), 11 Biopolis Way, #05-02 Helios, Singapore 138667, SingaporeWASEDA Bioscience Research Institute in Singapore (WABIOS), 11 Biopolis Way, #05-02 Helios, Singapore 138667, SingaporeDepartment of Biomedical Engineering, National University of Singapore, 117583, SingaporeSection on Integrative Physiology and Metabolism, Joslin Diabetes Center, Harvard Medical School, Boston, MA 02215, USADepartment of Biomedical Engineering, National University of Singapore, 117583, SingaporeWASEDA Bioscience Research Institute in Singapore (WABIOS), 11 Biopolis Way, #05-02 Helios, Singapore 138667, SingaporeObjective: Brown adipocytes (BAs) are endowed with a high metabolic capacity for energy expenditure due to their high mitochondria content. While mitochondrial pH is dynamically regulated in response to stimulation and, in return, affects various metabolic processes, how mitochondrial pH is regulated during adrenergic stimulation-induced thermogenesis is unknown. We aimed to reveal the spatial and temporal dynamics of mitochondrial pH in stimulated BAs and the mechanisms behind the dynamic pH changes. Methods: A mitochondrial targeted pH-sensitive protein, mito-pHluorin, was constructed and transfected to BAs. Transfected BAs were stimulated by an adrenergic agonist, isoproterenol. The pH changes in mitochondria were characterized by dual-color imaging with indicators that monitor mitochondrial membrane potential and heat production. The mechanisms of pH changes were studied by examining the involvement of electron transport chain (ETC) activity and Ca2+ profiles in mitochondria and the intracellular Ca2+ store, the endoplasmic reticulum (ER). Results: A triphasic mitochondrial pH change in BAs upon adrenergic stimulation was revealed. In comparison to a thermosensitive dye, we reveal that phases 1 and 2 of the pH increase precede thermogenesis, while phase 3, characterized by a pH decrease, occurs during thermogenesis. The mechanism of pH increase is partially related to ETC. In addition, the pH increase occurs concurrently with an increase in mitochondrial Ca2+. This Ca2+ increase is contributed to by an influx from the ER, and it is further involved in mitochondrial pH regulation. Conclusions: We demonstrate that an increase in mitochondrial pH is implicated as an early event in adrenergically stimulated BAs. We further suggest that this pH increase may play a role in the potentiation of thermogenesis.http://www.sciencedirect.com/science/article/pii/S2212877817302302Brown adipocytesCa2+Confocal microscopyEndoplasmic reticulumFluorescence imagingMitochondria-associated ER membrane |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yanyan Hou Tetsuya Kitaguchi Rókus Kriszt Yu-Hua Tseng Michael Raghunath Madoka Suzuki |
spellingShingle |
Yanyan Hou Tetsuya Kitaguchi Rókus Kriszt Yu-Hua Tseng Michael Raghunath Madoka Suzuki Ca2+-associated triphasic pH changes in mitochondria during brown adipocyte activation Molecular Metabolism Brown adipocytes Ca2+ Confocal microscopy Endoplasmic reticulum Fluorescence imaging Mitochondria-associated ER membrane |
author_facet |
Yanyan Hou Tetsuya Kitaguchi Rókus Kriszt Yu-Hua Tseng Michael Raghunath Madoka Suzuki |
author_sort |
Yanyan Hou |
title |
Ca2+-associated triphasic pH changes in mitochondria during brown adipocyte activation |
title_short |
Ca2+-associated triphasic pH changes in mitochondria during brown adipocyte activation |
title_full |
Ca2+-associated triphasic pH changes in mitochondria during brown adipocyte activation |
title_fullStr |
Ca2+-associated triphasic pH changes in mitochondria during brown adipocyte activation |
title_full_unstemmed |
Ca2+-associated triphasic pH changes in mitochondria during brown adipocyte activation |
title_sort |
ca2+-associated triphasic ph changes in mitochondria during brown adipocyte activation |
publisher |
Elsevier |
series |
Molecular Metabolism |
issn |
2212-8778 |
publishDate |
2017-08-01 |
description |
Objective: Brown adipocytes (BAs) are endowed with a high metabolic capacity for energy expenditure due to their high mitochondria content. While mitochondrial pH is dynamically regulated in response to stimulation and, in return, affects various metabolic processes, how mitochondrial pH is regulated during adrenergic stimulation-induced thermogenesis is unknown. We aimed to reveal the spatial and temporal dynamics of mitochondrial pH in stimulated BAs and the mechanisms behind the dynamic pH changes.
Methods: A mitochondrial targeted pH-sensitive protein, mito-pHluorin, was constructed and transfected to BAs. Transfected BAs were stimulated by an adrenergic agonist, isoproterenol. The pH changes in mitochondria were characterized by dual-color imaging with indicators that monitor mitochondrial membrane potential and heat production. The mechanisms of pH changes were studied by examining the involvement of electron transport chain (ETC) activity and Ca2+ profiles in mitochondria and the intracellular Ca2+ store, the endoplasmic reticulum (ER).
Results: A triphasic mitochondrial pH change in BAs upon adrenergic stimulation was revealed. In comparison to a thermosensitive dye, we reveal that phases 1 and 2 of the pH increase precede thermogenesis, while phase 3, characterized by a pH decrease, occurs during thermogenesis. The mechanism of pH increase is partially related to ETC. In addition, the pH increase occurs concurrently with an increase in mitochondrial Ca2+. This Ca2+ increase is contributed to by an influx from the ER, and it is further involved in mitochondrial pH regulation.
Conclusions: We demonstrate that an increase in mitochondrial pH is implicated as an early event in adrenergically stimulated BAs. We further suggest that this pH increase may play a role in the potentiation of thermogenesis. |
topic |
Brown adipocytes Ca2+ Confocal microscopy Endoplasmic reticulum Fluorescence imaging Mitochondria-associated ER membrane |
url |
http://www.sciencedirect.com/science/article/pii/S2212877817302302 |
work_keys_str_mv |
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1725559703738515456 |