Regulation of kidney mitochondrial function by caloric restriction

被引:10
作者
Serna, Julian D. C. [1 ]
Amaral, Andressa G. [2 ]
Caldeira da Silva, Camille C. [1 ]
Munhoz, Ana C. [1 ]
Vilas-Boas, Eloisa A. [1 ]
Menezes-Filho, Sergio L. [1 ]
Kowaltowski, Alicia J. [1 ]
机构
[1] Univ Sao Paulo, Inst Quim, Dept Bioquim, Sao Paulo, Brazil
[2] Univ Sao Paulo, Inst Ciencias Biomed, Dept Fisiol & Biofis, Sao Paulo, Brazil
基金
巴西圣保罗研究基金会;
关键词
calcium; calorie restriction; kidney; mitochondria; reactive oxygen species; DIETARY RESTRICTION; REACTIVE OXYGEN; CALCIUM; CA2+; MICU1; METABOLISM; MEMBRANE; MCU; HOMEOSTASIS; BIOGENESIS;
D O I
10.1152/ajprenal.00461.2021
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Caloric restriction (CR) prevents obesity and increases resilience against pathological stimuli in laboratory rodents. At the mitochondrial level, protection promoted by CR in the brain and liver is related to higher Ca2+ uptake rates and capacities, avoiding Ca2+- induced mitochondrial permeability transition. Dietary restriction has also been shown to increase kidney resistance against damaging stimuli; if these effects are related to similar mitochondrial adaptations has not been uncovered. Here, we characterized changes in mitochondrial function in response to 6 mo of CR in rats and measured bioenergetic parameters, redox balance, and Ca2+ homeostasis. CR promoted an increase in succinate-supported mitochondrial oxygen consumption rates. Although CR prevents mitochondrial reactive oxygen species production in many tissues, in kidney, we found that mitochondrial H2O2 release was enhanced in a succinate-dependent manner. Surprisingly, and opposite to the effects observed in the brain and liver, mitochondria from CR animals were more prone to Ca2+-induced mitochondrial permeability transition, in a manner reversed by the antioxidant dithiothreitol. CR mitochondria also displayed higher Ca2+ uptake rates, which were not accompanied by changes in Ca2+ efflux rates or related to altered inner mitochondrial membrane potentials or amounts of the mitochondrial Ca(2+)uniporter. Instead, increased mitochondrial Ca2+ uptake rates in CR kidneys correlated with loss of mitochondrial Ca2+ uptake protein 2 (MICU2), a mitochondrial Ca2+ uniporter modulator. Interestingly, MICU2 is also modulated by CR in the liver, suggesting that it has a broader diet-sensitive regulatory role controlling mitochondrial Ca2+ homeostasis. Together, our results highlight the organ-specific bioenergetic, redox, and ionic transport results of CR, with some unexpected deleterious effects in the kidney. NEW & NOTEWORTHY Prevention of obesity through caloric restriction (CR) is well known to protect many tissues but has been poorly studied in kidneys. Here, we determined the effects of long-term CR in rat kidney mitochondria, which are central players in energy metabolism and aging. Surprisingly, we found that the diet increased mitochondrial reactive oxygen production and permeability transition. This suggests that the kidneys respond differently to restricted diets and may be more susceptible under CR.
引用
收藏
页码:F92 / F106
页数:15
相关论文
共 59 条
[1]   SAFRANINE AS A PROBE OF MITOCHONDRIAL-MEMBRANE POTENTIAL [J].
AKERMAN, KEO ;
WIKSTROM, MKF .
FEBS LETTERS, 1976, 68 (02) :191-197
[2]   Caloric restriction increases brain mitochondrial calcium retention capacity and protects against excitotoxicity [J].
Amigo, Ignacio ;
Menezes-Filho, Sergio Luiz ;
Luevano-Martinez, Luis Alberto ;
Chausse, Bruno ;
Kowaltowski, Alicia J. .
AGING CELL, 2017, 16 (01) :73-81
[3]   Increased propensity for cell death in diabetic human heart is mediated by mitochondrial-dependent pathways [J].
Anderson, Ethan J. ;
Rodriguez, Evelio ;
Anderson, Curtis A. ;
Thayne, Kathleen ;
Chitwood, W. Randolph ;
Kypson, Alan P. .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2011, 300 (01) :H118-H124
[4]   Integrative genomics identifies MCU as an essential component of the mitochondrial calcium uniporter [J].
Baughman, Joshua M. ;
Perocchi, Fabiana ;
Girgis, Hany S. ;
Plovanich, Molly ;
Belcher-Timme, Casey A. ;
Sancak, Yasemin ;
Bao, X. Robert ;
Strittmatter, Laura ;
Goldberger, Olga ;
Bogorad, Roman L. ;
Koteliansky, Victor ;
Mootha, Vamsi K. .
NATURE, 2011, 476 (7360) :341-U111
[5]   Mitochondrial energetics in the kidney [J].
Bhargava, Pallavi ;
Schnellmann, Rick G. .
NATURE REVIEWS NEPHROLOGY, 2017, 13 (10) :629-646
[6]   Cardiovascular homeostasis dependence on MICU2, a regulatory subunit of the mitochondrial calcium uniporter [J].
Bick, Alexander G. ;
Wakimoto, Hiroko ;
Kamer, Kimberli J. ;
Sancak, Yasemin ;
Goldberger, Olga ;
Axelsson, Anna ;
DeLaughter, Daniel M. ;
Gorham, Joshua M. ;
Mootha, Vamsi K. ;
Seidman, J. G. ;
Seidman, Christine E. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2017, 114 (43) :E9096-E9104
[7]   Cellular pathophysiology of ischemic acute kidney injury [J].
Bonventre, Joseph V. ;
Yang, Li .
JOURNAL OF CLINICAL INVESTIGATION, 2011, 121 (11) :4210-4221
[8]   NCLX: The mitochondrial sodium calcium exchanger [J].
Boyman, Liron ;
Williams, George S. B. ;
Khananshvili, Daniel ;
Sekler, Israel ;
Lederer, W. J. .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2013, 59 :205-213
[9]  
Castillo Elena C, 2019, Cell Physiol Biochem, V53, P465, DOI 10.33594/000000151
[10]   Commonly adopted caloric restriction protocols often involve malnutrition [J].
Cerqueira, Fernanda M. ;
Kowaltowski, Alicia J. .
AGEING RESEARCH REVIEWS, 2010, 9 (04) :424-430