Literature DB >> 25795504

Mitochondrial function and disturbances in the septic kidney.

Samir M Parikh1, Yuan Yang2, Liyu He2, Chengyuan Tang2, Ming Zhan3, Zheng Dong4.   

Abstract

Per milligram of tissue, only the heart exceeds the kidney's abundance of mitochondria. Not surprisingly, renal mitochondria are most densely concentrated in the epithelium of the nephron, at sites where the chemical work of moving solutes against electrochemical gradients places large and constant demands for adenosine triphosphate. Derangements of renal epithelial mitochondria appear to be a hallmark for diverse forms of acute kidney injury (AKI). The pathogenesis of multiple-organ dysfunction syndrome in sepsis is complex, but a substantial body of experimental and observational human data supports the twin concepts that mitochondrial dysfunction contributes to impaired filtration and that recovery of mitochondrial structure and function is essential for recovery from sepsis-associated AKI. These insights have suggested novel methods to diagnose, stratify, prevent, or even treat this common and deadly complication of critical illness. This review will do the following: (1) describe the structure and functions of healthy mitochondria and how renal energy metabolism relates to solute transport; (2) provide an overview of the evidence linking mitochondrial pathology to renal disease; (3) summarize the mitochondrial lesions observed in septic AKI; (4) analyze the role of mitochondrial processes including fission/fusion, mitophagy, and biogenesis in the development of septic AKI and recovery from this disease; and (5) explore the potential for therapeutically targeting mitochondria to prevent or treat septic AKI.
Copyright © 2015 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Sepsis; kidney injury; mitochondria

Mesh:

Year:  2015        PMID: 25795504      PMCID: PMC4465453          DOI: 10.1016/j.semnephrol.2015.01.011

Source DB:  PubMed          Journal:  Semin Nephrol        ISSN: 0270-9295            Impact factor:   5.299


  99 in total

1.  Microvascular and interstitial oxygen tension in the renal cortex and medulla studied in a 4-h rat model of LPS-induced endotoxemia.

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Journal:  Shock       Date:  2011-07       Impact factor: 3.454

2.  Autophagy guards against cisplatin-induced acute kidney injury.

Authors:  Atsushi Takahashi; Tomonori Kimura; Yoshitsugu Takabatake; Tomoko Namba; Junya Kaimori; Harumi Kitamura; Isao Matsui; Fumio Niimura; Taiji Matsusaka; Naonobu Fujita; Tamotsu Yoshimori; Yoshitaka Isaka; Hiromi Rakugi
Journal:  Am J Pathol       Date:  2012-02       Impact factor: 4.307

3.  Anaerobic and aerobic pathways for salvage of proximal tubules from hypoxia-induced mitochondrial injury.

Authors:  J M Weinberg; M A Venkatachalam; N F Roeser; P Saikumar; Z Dong; R A Senter; I Nissim
Journal:  Am J Physiol Renal Physiol       Date:  2000-11

4.  Mitochondrial biogenesis in kidney disease.

Authors:  Joel M Weinberg
Journal:  J Am Soc Nephrol       Date:  2011-02-25       Impact factor: 10.121

5.  A mitochondrial protein compendium elucidates complex I disease biology.

Authors:  David J Pagliarini; Sarah E Calvo; Betty Chang; Sunil A Sheth; Scott B Vafai; Shao-En Ong; Geoffrey A Walford; Canny Sugiana; Avihu Boneh; William K Chen; David E Hill; Marc Vidal; James G Evans; David R Thorburn; Steven A Carr; Vamsi K Mootha
Journal:  Cell       Date:  2008-07-11       Impact factor: 41.582

6.  Mitochondrial dysfunction in a long-term rodent model of sepsis and organ failure.

Authors:  David Brealey; Sekhar Karyampudi; Thomas S Jacques; Marco Novelli; Ray Stidwill; Val Taylor; Ryszard T Smolenski; Mervyn Singer
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2003-11-06       Impact factor: 3.619

7.  Bak regulates mitochondrial morphology and pathology during apoptosis by interacting with mitofusins.

Authors:  Craig Brooks; Qingqing Wei; Leping Feng; Guie Dong; Yanmei Tao; Lin Mei; Zi-Jian Xie; Zheng Dong
Journal:  Proc Natl Acad Sci U S A       Date:  2007-07-02       Impact factor: 11.205

8.  A toll-like receptor 2 pathway regulates the Ppargc1a/b metabolic co-activators in mice with Staphylococcal aureus sepsis.

Authors:  Timothy E Sweeney; Hagir B Suliman; John W Hollingsworth; Karen E Welty-Wolf; Claude A Piantadosi
Journal:  PLoS One       Date:  2011-09-26       Impact factor: 3.240

Review 9.  Mitochondrial dynamics: regulatory mechanisms and emerging role in renal pathophysiology.

Authors:  Ming Zhan; Craig Brooks; Fuyou Liu; Lin Sun; Zheng Dong
Journal:  Kidney Int       Date:  2013-01-16       Impact factor: 10.612

10.  Mitochondrial autophagy involving renal injury and aging is modulated by caloric intake in aged rat kidneys.

Authors:  Jing Cui; Suozhu Shi; Xuefeng Sun; Guangyan Cai; Shaoyuan Cui; Quan Hong; Xiangmei Chen; Xue-Yuan Bai
Journal:  PLoS One       Date:  2013-07-22       Impact factor: 3.240

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  59 in total

Review 1.  Pharmacologic Approaches to Improve Mitochondrial Function in AKI and CKD.

Authors:  Hazel H Szeto
Journal:  J Am Soc Nephrol       Date:  2017-08-04       Impact factor: 10.121

2.  Mitochondria in Kidney Injury: When the Power Plant Fails.

Authors:  Chengyuan Tang; Zheng Dong
Journal:  J Am Soc Nephrol       Date:  2016-01-07       Impact factor: 10.121

Review 3.  Mitophagy Contributes to the Pathogenesis of Inflammatory Diseases.

Authors:  Yan Zhao; Shaohui Huang; Jie Liu; Ximing Wu; Shuai Zhou; Ke Dai; Yurong Kou
Journal:  Inflammation       Date:  2018-10       Impact factor: 4.092

4.  Nucleophosmin Phosphorylation as a Diagnostic and Therapeutic Target for Ischemic AKI.

Authors:  Zhiyong Wang; Erdjan Salih; Chinaemere Igwebuike; Ryan Mulhern; Ramon G Bonegio; Andrea Havasi; Steven C Borkan
Journal:  J Am Soc Nephrol       Date:  2019-01       Impact factor: 10.121

5.  Two-Photon Intravital Fluorescence Lifetime Imaging of the Kidney Reveals Cell-Type Specific Metabolic Signatures.

Authors:  Takashi Hato; Seth Winfree; Richard Day; Ruben M Sandoval; Bruce A Molitoris; Mervin C Yoder; Roger C Wiggins; Yi Zheng; Kenneth W Dunn; Pierre C Dagher
Journal:  J Am Soc Nephrol       Date:  2017-03-01       Impact factor: 10.121

Review 6.  PPARγ-Coactivator-1α, Nicotinamide Adenine Dinucleotide and Renal Stress Resistance.

Authors:  Ali Poyan Mehr; Samir M Parikh
Journal:  Nephron       Date:  2017-06-08       Impact factor: 2.847

7.  PINK1-PRKN/PARK2 pathway of mitophagy is activated to protect against renal ischemia-reperfusion injury.

Authors:  Chengyuan Tang; Hailong Han; Mingjuan Yan; Shiyao Zhu; Jing Liu; Zhiwen Liu; Liyu He; Jieqiong Tan; Yu Liu; Hong Liu; Lin Sun; Shaobin Duan; Youming Peng; Fuyou Liu; Xiao-Ming Yin; Zhuohua Zhang; Zheng Dong
Journal:  Autophagy       Date:  2018-02-17       Impact factor: 16.016

8.  miR-214 represses mitofusin-2 to promote renal tubular apoptosis in ischemic acute kidney injury.

Authors:  Yu Yan; Zhengwei Ma; Jiefu Zhu; Mengru Zeng; Hong Liu; Zheng Dong
Journal:  Am J Physiol Renal Physiol       Date:  2020-01-31

Review 9.  Autophagy in acute kidney injury.

Authors:  Gur P Kaushal; Sudhir V Shah
Journal:  Kidney Int       Date:  2016-01-21       Impact factor: 10.612

Review 10.  Mitochondria in Sepsis-Induced AKI.

Authors:  Jian Sun; Jingxiao Zhang; Jiakun Tian; Grazia Maria Virzì; Kumar Digvijay; Laura Cueto; Yongjie Yin; Mitchell H Rosner; Claudio Ronco
Journal:  J Am Soc Nephrol       Date:  2019-05-10       Impact factor: 10.121

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