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Laboratory Study

Microenvironment derived from metanephros transplantation inhibits the progression of acute kidney injury in glycerol-induced rat models

ORCID Icon, , , , , , , , , , , & show all
Pages 89-97 | Received 26 Aug 2019, Accepted 26 Nov 2019, Published online: 03 Jan 2020

References

  • Al-Awqati Q, Oliver JA. Stem cells in the kidney. Kidney Int. 2002;61(2):387–395.
  • Yamanaka S, Yokoo T. Current bioengineering methods for whole kidney regeneration. Stem Cells Int. 2015;2015:724047.
  • Yokote S, Matsunari H, Iwai S, et al. Urine excretion strategy for stem cell-generated embryonic kidneys. Proc Natl Acad Sci USA. 2015;112(42):12980–12985.
  • Marshall D, Dilworth MR, Clancy M, et al. Increasing renal mass improves survival in anephric rats following metanephros transplantation. Exp Physiol. 2007;92(1):263–271.
  • Fujimoto E, Yamanaka S, Kurihara S, et al. Embryonic kidney function in a chronic renal failure model in rodents. Clin Exp Nephrol. 2017;21(4):579–588.
  • Rogers SA, Lowell JA, Hammerman NA, et al. Transplantation of developing metanephroi into adult rats. Kidney Int. 1998;54(1):27–37.
  • Naito M. Macrophage heterogeneity in development and differentiation. Arch Histol Cytol. 1993;56(4):331–351.
  • Dekel B, Burakova T, Ben-Hur H, et al. Engraftment of human kidney tissue in rat radiation chimera: II. Human fetal kidneys display reduced immunogenicity to adoptively transferred human peripheral blood mononuclear cells and exhibit rapid growth and development. Transplantation. 1997;64(11):1550–1558.
  • Yong Guan XL, Kailin L, Zhang X, et al. Evaluation of two kinds of materials for whole kidney regeneration. Int J Clin Exp Pathol. 2016;9(11):11607–11614.
  • Yokoo T, Fukui A, Ohashi T, et al. Xenobiotic kidney organogenesis from human mesenchymal stem cells using a growing rodent embryo. JASN. 2006;17(4):1026–1034.
  • Matsumoto K, Yokoo T, Matsunari H, et al. Xenotransplanted embryonic kidney provides a niche for endogenous mesenchymal stem cell differentiation into erythropoietin-producing tissue. Stem Cells. 2012;30(6):1228–1235.
  • Yokote S, Yokoo T, Matsumoto K, et al. Metanephros transplantation inhibits the progression of vascular calcification in rats with adenine-induced renal failure. Nephron Exp Nephrol. 2011;120(1):e32–40.
  • Yokote S, Yokoo T, Matsumoto K, et al. The effect of metanephros transplantation on blood pressure in anephric rats with induced acute hypotension. Nephrol Dial Transplant. 2012;27(9):3449–3455.
  • Chawla LS, Eggers PW, Star RA, et al. Acute kidney injury and chronic kidney disease as interconnected syndromes. N Engl J Med. 2014;371(1):58–66.
  • Bosch X, Poch E, Grau JM. Rhabdomyolysis and acute kidney injury. N Engl J Med. 2009;361(1):62–72.
  • Glodowski SD, Wagener G. New insights into the mechanisms of acute kidney injury in the intensive care unit. J Clin Anesth. 2015;27(2):175–180.
  • Venkatachalam MA, Weinberg JM, Kriz W, et al. Failed tubule recovery, AKI-CKD transition, and kidney disease progression. JASN. 2015;26(8):1765–1776.
  • Goldberg R, Dennen P. Long-term outcomes of acute kidney injury. Adv Chronic Kidney Dis. 2008;15(3):297–307.
  • Homsi E, de Brito SM, Janino P. Silymarin exacerbates p53-mediated tubular apoptosis in glycerol-induced acute kidney injury in rats. Ren Fail. 2010;32(5):623–632.
  • Kim JH, Lee SS, Jung MH, et al. N-acetylcysteine attenuates glycerol-induced acute kidney injury by regulating MAPKs and Bcl-2 family proteins. Nephrol Dial Transplant. 2010;25(5):1435–1443.
  • Wang YD, Zhang L, Cai GY, et al. Fasudil ameliorates rhabdomyolysis-induced acute kidney injury via inhibition of apoptosis. Ren Fail. 2011;33(8):811–818.
  • Wei Q, Hill WD, Su Y, et al. Heme oxygenase-1 induction contributes to renoprotection by G-CSF during rhabdomyolysis-associated acute kidney injury. Am J Physiol Renal Physiol. 2011;301(1):F162–F170.
  • Sun X, Luan Q, Qiu S. Valsartan prevents glycerol-induced acute kidney injury in male albino rats by downregulating TLR4 and NF-kappaB expression. Int J Biol Macromol. 2018;119:565–571.
  • Al Asmari AK, Al Sadoon KT, Obaid AA, et al. Protective effect of quinacrine against glycerol-induced acute kidney injury in rats. BMC Nephrol. 2017;18(1):41.
  • Rogers SA, Hammerman MR. Prolongation of life in anephric rats following de novo renal organogenesis. Organogenesis. 2004;1(1):22–25.
  • Counts RS, Nowak G, Wyatt RD, et al. Nephrotoxicant inhibition of renal proximal tubule cell regeneration. Am J Physiol. 1995;269(2 Pt 2):F274–F281.
  • Dekel B, Burakova T, Arditti FD, et al. Human and porcine early kidney precursors as a new source for transplantation. Nat Med. 2003;9(1):53–60.
  • Takeda S, Rogers SA, Hammerman MR. Differential origin for endothelial and mesangial cells after transplantation of pig fetal renal primordia into rats. Transpl Immunol. 2006;15(3):211–215.
  • Yin C, Wang N. Kidney injury molecule-1 in kidney disease. Ren Fail. 2016;38(10):1567–1573.
  • Kumar S, Liu J, McMahon AP. Defining the acute kidney injury and repair transcriptome. Semin Nephrol. 2014;34(4):404–417.
  • Jia HM, Zheng Y, Huang LF, et al. Derivation and validation of plasma endostatin for predicting renal recovery from acute kidney injury: a prospective validation study. Crit Care. 2018;22(1):305.
  • Korrapati MC, Shaner BE, Schnellmann RG. Recovery from glycerol-induced acute kidney injury is accelerated by suramin. J Pharmacol Exp Ther. 2012;341(1):126–136.
  • Wang H, Li L, Chu Q, et al. Early initiation of renal replacement treatment in patients with acute kidney injury: A systematic review and meta-analysis. Medicine (Baltimore). 2016;95(46):e5434.
  • Mousleh R, Al Laham S, Al-Manadili A. The preventive role of pioglitazone in glycerol-induced acute kidney injury in rats during two different treatment periods. Iran J Med Sci. 2018;43(2):184–194.
  • Tsai JP, Lee CJ, Subeq YM, et al. Acute alcohol intoxication exacerbates rhabdomyolysis-induced acute renal failure in rats. Int J Med Sci. 2017;14(7):680–689.
  • Chen X, Sun J, Li H, et al. Curcumin-loaded nanoparticles protect against rhabdomyolysis-induced acute kidney injury. Cell Physiol Biochem. 2017;43(5):2143–2154.
  • Zhang Y, Du Y, Yu H, et al. Protective effects of ophiocordyceps lanpingensis on glycerol-induced acute renal failure in mice. J Immunol Res. 2017;2017:1–8.
  • Yokoo T, Ohashi T, Shen JS, et al. Human mesenchymal stem cells in rodent whole-embryo culture are reprogrammed to contribute to kidney tissues. Proc Natl Acad Sci USA. 2005;102(9):3296–3300.
  • Vera-Donoso CD, Garcia-Dominguez X, Jimenez-Trigos E, et al. Laparoscopic transplantation of metanephroi: a first step to kidney xenotransplantation. Actas Urol Esp. 2015;39(9):527–534.
  • Kale S, Karihaloo A, Clark PR, et al. Bone marrow stem cells contribute to repair of the ischemically injured renal tubule. J Clin Invest. 2003;112(1):42–49.
  • Hishikawa K, Marumo T, Miura S, et al. Musculin/MyoR is expressed in kidney side population cells and can regulate their function. J Cell Biol. 2005;169(6):921–928.