Literature DB >> 21315412

Proliferative capacity of stem/progenitor-like cells in the kidney may associate with the outcome of patients with acute tubular necrosis.

Youxin Ye1, Bingyin Wang, Xinxin Jiang, Weiming Hu, Jian Feng, Hua Li, Mei Jin, Yingjuan Ying, Wenjuan Wang, Xiaoou Mao, Kunlin Jin.   

Abstract

Animal studies indicate that adult renal stem/progenitor cells can undergo rapid proliferation in response to renal injury, but whether the same is true in humans is largely unknown. To examine the profile of renal stem/progenitor cells responsible for acute tubular necrosis in human kidney, double and triple immunostaining was performed using proliferative marker and stem/progenitor protein markers on sections from 10 kidneys with acute tubular necrosis and 4 normal adult kidneys. The immunopositive cells were recorded using 2-photon confocal laser scanning microscopy. We found that dividing cells were present in the tubules of the cortex and medulla, as well as the glomerulus in normal human kidney. Proliferative cells in the parietal layer of Bowman capsule expressed CD133, and dividing cells in the tubules expressed immature cell protein markers paired box gene 2, vimentin, and nestin. After acute tubular necrosis, Ki67-positive cells in the cortex tubules significantly increased compared with normal adult kidney. These Ki67-positive cells expressed CD133 and paired box gene 2, but not the cell death marker, activated caspase-3. In addition, the number of dividing cells increased significantly in patients with acute tubular necrosis who subsequently recovered, compared with patients with acute tubular necrosis who consequently developed protracted acute tubular necrosis or died. Our data suggest that renal stem/progenitor cells may reside not only in the parietal layer of Bowman capsule but also in the cortex and medulla in normal human kidney, and the proliferative capacity of renal stem/progenitor cells after acute tubular necrosis may be an important determinant of a patient's outcome.
Copyright © 2011 Elsevier Inc. All rights reserved.

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Year:  2011        PMID: 21315412      PMCID: PMC3135674          DOI: 10.1016/j.humpath.2010.11.005

Source DB:  PubMed          Journal:  Hum Pathol        ISSN: 0046-8177            Impact factor:   3.466


  29 in total

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4.  The use of the monoclonal antibody Ki-67 in the identification of proliferating cells: application to surgical neuropathology.

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  14 in total

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2.  Pulsed focused ultrasound pretreatment improves mesenchymal stromal cell efficacy in preventing and rescuing established acute kidney injury in mice.

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Journal:  J Transl Sci       Date:  2015-07-30

6.  Renal distal tubule proliferation and increased aquaporin 2 level but decreased urine osmolality in db/db mouse: treatment with chromium picolinate.

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7.  Role of medullary progenitor cells in epithelial cell migration and proliferation.

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10.  Urinary CD133+ extracellular vesicles are decreased in kidney transplanted patients with slow graft function and vascular damage.

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