Autophagy in kidney homeostasis and disease

被引:372
作者
Tang, Chengyuan [1 ]
Livingston, Man J. [2 ]
Liu, Zhiwen [1 ]
Dong, Zheng [1 ,2 ,3 ]
机构
[1] Cent South Univ, Xiangya Hosp 2, Hunan Key Lab Kidney Dis & Blood Purificat, Dept Nephrol, Changsha, Peoples R China
[2] Augusta Univ, Med Coll Georgia, Dept Cellular Biol & Anat, Augusta, GA 30912 USA
[3] Charlie Norwood VA Med Ctr, Augusta, GA 30904 USA
基金
中国国家自然科学基金; 美国国家卫生研究院;
关键词
GLYCATION END-PRODUCTS; DIABETIC-NEPHROPATHY; EXACERBATES PROTEINURIA; LYSOSOMAL BIOGENESIS; MOLECULAR PATHWAYS; EPITHELIAL-CELLS; ULK1; COMPLEX; RENAL REPAIR; MTOR; PODOCYTES;
D O I
10.1038/s41581-020-0309-2
中图分类号
R5 [内科学]; R69 [泌尿科学(泌尿生殖系疾病)];
学科分类号
1002 ; 100201 ;
摘要
In this Review, the authors summarize the basics of autophagy and the signalling pathways involved in its regulation, and examine the multiple roles of autophagy in kidney cells, from its involvement in kidney maintenance and responses to injury, to its potential contribution to glomerular and tubulointerstitial disease. Autophagy is a conserved lysosomal pathway for the degradation of cytoplasmic components. Basal autophagy in kidney cells is essential for the maintenance of kidney homeostasis, structure and function. Under stress conditions, autophagy is altered as part of the adaptive response of kidney cells, in a process that is tightly regulated by signalling pathways that can modulate the cellular autophagic flux - mammalian target of rapamycin, AMP-activated protein kinase and sirtuins are key regulators of autophagy. Dysregulated autophagy contributes to the pathogenesis of acute kidney injury, to incomplete kidney repair after acute kidney injury and to chronic kidney disease of varied aetiologies, including diabetic kidney disease, focal segmental glomerulosclerosis and polycystic kidney disease. Autophagy also has a role in kidney ageing. However, questions remain about whether autophagy has a protective or a pathological role in kidney fibrosis, and about the precise mechanisms and signalling pathways underlying the autophagy response in different types of kidney cells and across the spectrum of kidney diseases. Further research is needed to gain insights into the regulation of autophagy in the kidneys and to enable the discovery of pathway-specific and kidney-selective therapies for kidney diseases and anti-ageing strategies.
引用
收藏
页码:489 / 508
页数:20
相关论文
共 201 条
[1]   Janus Kinase 2 Regulates Transcription Factor EB Expression and Autophagy Completion in Glomerular Podocytes [J].
Alghamdi, Tamadher A. ;
Majumder, Syamantak ;
Thieme, Karina ;
Batchu, N. ;
White, Kathryn E. ;
Liu, Youan ;
Brijmohan, Angela S. ;
Bowskill, Bridgit B. ;
Advani, Suzanne L. ;
Woo, Minna ;
Advani, Andrew .
JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2017, 28 (09) :2642-2654
[2]   Diabetic Kidney Disease Challenges, Progress, and Possibilities [J].
Alicic, Radica Z. ;
Rooney, Michele T. ;
Tuttle, Katherine R. .
CLINICAL JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2017, 12 (12) :2032-2045
[3]   Hypothalamic CaMKK2 contributes to the regulation of energy balance [J].
Anderson, Kristin A. ;
Ribar, Thomas J. ;
Lin, Fumin ;
Noeldner, Pamela K. ;
Green, Michelle F. ;
Muehlbauer, Michael J. ;
Witters, Lee A. ;
Kemp, Bruce E. ;
Means, Anthony R. .
CELL METABOLISM, 2008, 7 (05) :377-388
[4]   Cellular signalling by primary cilia in development, organ function and disease [J].
Anvarian, Zeinab ;
Mykytyn, Kirk ;
Mukhopadhyay, Saikat ;
Pedersen, Lotte Bang ;
Christensen, Soren Tvorup .
NATURE REVIEWS NEPHROLOGY, 2019, 15 (04) :199-219
[5]   MAP-LC3, a promising autophagosomal marker, is processed during the differentiation and recovery of podocytes from PAN nephrosis [J].
Asanuma, K ;
Tanida, I ;
Shirato, I ;
Ueno, T ;
Takahara, H ;
Nishitani, T ;
Kominami, E ;
Tomino, Y .
FASEB JOURNAL, 2003, 17 (06) :1165-+
[6]   Mitochondrial Perturbations Couple mTORC2 to Autophagy in C. elegans [J].
Aspernig, Helena ;
Heimbucher, Thomas ;
Qi, Wenjing ;
Gangurde, Dipak ;
Curic, Sedric ;
Yan, Yijian ;
von Gromoff, Erika Donner ;
Baumeister, Ralf ;
Thien, Antje .
CELL REPORTS, 2019, 29 (06) :1399-+
[7]   The eIF2α/ATF4 pathway is essential for stress-induced autophagy gene expression [J].
B'chir, Wafa ;
Maurin, Anne-Catherine ;
Carraro, Valerie ;
Averous, Julien ;
Jousse, Celine ;
Muranishi, Yuki ;
Parry, Laurent ;
Stepien, Georges ;
Fafournoux, Pierre ;
Bruhat, Alain .
NUCLEIC ACIDS RESEARCH, 2013, 41 (16) :7683-7699
[8]   Autophagy Induces Prosenescent Changes in Proximal Tubular S3 Segments [J].
Baisantry, Arpita ;
Bhayana, Sagar ;
Rong, Song ;
Ermeling, Esther ;
Wrede, Christoph ;
Hegermann, Jan ;
Pennekamp, Petra ;
Soerensen-Zender, Inga ;
Haller, Hermann ;
Melk, Anette ;
Schmitt, Roland .
JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2016, 27 (06) :1609-1616
[9]   Vps34 Deficiency Reveals the Importance of Endocytosis for Podocyte Homeostasis [J].
Bechtel, Wibke ;
Helmstaedter, Martin ;
Balica, Jan ;
Hartleben, Bjoern ;
Kiefer, Betina ;
Hrnjic, Fatima ;
Schell, Christoph ;
Kretz, Oliver ;
Liu, Shuya ;
Geist, Felix ;
Kerjaschki, Dontscho ;
Walz, Gerd ;
Huber, Tobias B. .
JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2013, 24 (05) :727-743
[10]   Transgenic expression of human APOL1 risk variants in podocytes induces kidney disease in mice [J].
Beckerman, Pazit ;
Bi-Karchin, Jing ;
Park, Ae Seo Deok ;
Qiu, Chengxiang ;
Dummer, Patrick D. ;
Soomro, Irfana ;
Boustany-Kari, Carine M. ;
Pullen, Steven S. ;
Miner, Jeffrey H. ;
Hu, Chien-An A. ;
Rohacs, Tibor ;
Inoue, Kazunori ;
Ishibe, Shuta ;
Saleem, Moin A. ;
Palmer, Matthew B. ;
Cuervo, Ana Maria ;
Kopp, Jeffrey B. ;
Susztak, Katalin .
NATURE MEDICINE, 2017, 23 (04) :429-+