Literature DB >> 12071589

Different patterns of renal cell killing after warm and cold ischemia.

Ming Yin1, Robert T Currin, Xing-Xi Peng, Harold E Mekeel, Robert Schoonhoven, John J Lemasters.   

Abstract

Kidneys preserved for transplantation surgery sustain injuries caused by cold ischemia during storage. Additionally, kidneys harvested from non-heart-beating donors encounter the stress of warm ischemia. The aim of this study was to determine the specific cell types losing viability after warm and cold ischemia. In warm ischemia studies, the pedicles of left kidneys of Lewis rats were cross-clamped for up to 90 min. In cold ischemia studies, kidneys were flushed with cold University of Wisconsin solution and stored up to 48h at 0-1 degrees C. After warm or cold ischemia, kidneys were perfused via the renal arteries with Krebs-Henseleit bicarbonate (KHB) buffer at 37 degrees C, followed by trypan blue to label the nuclei of nonviable cells. Warm ischemia for 90 min caused renal failure and led to injury of proximal tubular cells, e.g., loss of brush borders, cast formation and trypan blue labeling. Cold ischemia for 48 h also caused renal failure but, unlike warm ischemia, caused trypan blue labeling of glomerular podocytes and peritubular endothelial cells. In warm ischemia-induced injury, electron microscopy showed shedding of microvilli and marked swelling of proximal tubular cells, microvilli and mitochondria. In cold ischemia-induced injury, podocytes were blebbed and swollen, and their pedicels were detached from the basement membrane, but disruption in proximal tubules was milder. In conclusion, warm ischemia triggers injury primarily to proximal tubular cells, whereas cold ischemia damages glomerular podocytes and peritubular endothelial cells in addition to proximal tubules.

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Year:  2002        PMID: 12071589     DOI: 10.1081/jdi-120004092

Source DB:  PubMed          Journal:  Ren Fail        ISSN: 0886-022X            Impact factor:   2.606


  6 in total

1.  Comparison of normothermic and hypothermic perfusion in porcine kidneys donated after cardiac death.

Authors:  Matthew F Blum; Qiang Liu; Basem Soliman; Paul Dreher; Toshihiro Okamoto; Emilio D Poggio; David A Goldfarb; William M Baldwin; Cristiano Quintini
Journal:  J Surg Res       Date:  2017-04-20       Impact factor: 2.192

2.  Ischemic injury to kidney induces glomerular podocyte effacement and dissociation of slit diaphragm proteins Neph1 and ZO-1.

Authors:  Mark C Wagner; George Rhodes; Exing Wang; Vikas Pruthi; Ehtesham Arif; Moin A Saleem; Sarah E Wean; Puneet Garg; Rakesh Verma; Lawrence B Holzman; Vince Gattone; Bruce A Molitoris; Deepak Nihalani
Journal:  J Biol Chem       Date:  2008-10-14       Impact factor: 5.157

3.  Prognostic value of intraoperative measurements of renal tissue oxygenation and microcirculation on renal function in partial nephrectomy.

Authors:  Matthias Maruschke; Katja Hagel; Oliver Hakenberg; Thomas Scheeren
Journal:  Clin Exp Nephrol       Date:  2017-12-02       Impact factor: 2.801

4.  The influence of warm ischemia elimination on kidney injury during transplantation - clinical and molecular study.

Authors:  Dorota Kamińska; Katarzyna Kościelska-Kasprzak; Paweł Chudoba; Agnieszka Hałoń; Oktawia Mazanowska; Agnieszka Gomółkiewicz; Piotr Dzięgiel; Dominika Drulis-Fajdasz; Marta Myszka; Agnieszka Lepiesza; Wojciech Polak; Maria Boratyńska; Marian Klinger
Journal:  Sci Rep       Date:  2016-11-03       Impact factor: 4.379

Review 5.  Targeting Mitochondria during Cold Storage to Maintain Proteasome Function and Improve Renal Outcome after Transplantation.

Authors:  Sorena B Lo; Richard T Blaszak; Nirmala Parajuli
Journal:  Int J Mol Sci       Date:  2020-05-15       Impact factor: 5.923

6.  Renal cold storage followed by transplantation impairs expression of key mitochondrial fission and fusion proteins.

Authors:  Nirmala Parajuli; Stephen Shrum; Julia Tobacyk; Alex Harb; John M Arthur; Lee Ann MacMillan-Crow
Journal:  PLoS One       Date:  2017-10-04       Impact factor: 3.240

  6 in total

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