Literature DB >> 10064619

Altered gene expression and functions of mitochondria in human nephrotic syndrome.

H Holthöfer1, M Kretzler, A Haltia, M L Solin, J W Taanman, H Schägger, W Kriz, D Kerjaschki, D Schlöndorff.   

Abstract

The molecular basis of glomerular permselectivity remains largely unknown. The congenital nephrotic syndrome of the Finnish type (CNF) characterized by massive proteinuria already present but without extrarenal symptoms is a unique human disease model of pure proteinuria. In search of genes and pathophysiologic mechanisms associated with proteinuria, we used differential display-PCR to identify differences in gene expression between glomeruli from CNF and control kidneys. A distinctly underexpressed PCR product of the CNF kidneys showed over 98% identity with a mitochondrially encoded cytochrome c oxidase (COX I). Using a full-length COX I cDNA probe, we verified down-regulation of COX I mRNA to 1/4 of normal kidney values on Northern blots. In addition, transcripts of other mitochondrially encoded respiratory chain complexes showed a similar down-regulation whereas the respective nuclearly encoded complexes were expressed at comparable levels. Additional studies using histochemical, immunohistochemical, in situ hybridization, RT-PCR, and biochemical and electron microscopic methods all showed a mitochondrial involvement in the diseased kidneys but not in extrarenal blood vessels. As a secondary sign of mitochondrial dysfunction, excess lipid peroxidation products were found in glomerular structures in CNF samples. Our data suggest that mitochondrial dysfunction occurs in the kidneys of patients with CNF, with subsequent lipid peroxidation at the glomerular basement membrane. Our additional studies have revealed similar down-regulation of mitochondrial functions in experimental models of proteinuria. Thus, mitochondrial dysfunction may be a crucial pathophysiologic factor in this symptom.

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Year:  1999        PMID: 10064619     DOI: 10.1096/fasebj.13.3.523

Source DB:  PubMed          Journal:  FASEB J        ISSN: 0892-6638            Impact factor:   5.191


  21 in total

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7.  Nephrin localizes at the podocyte filtration slit area and is characteristically spliced in the human kidney.

Authors:  H Holthöfer; H Ahola; M L Solin; S Wang; T Palmen; P Luimula; A Miettinen; D Kerjaschki
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9.  Alterations in fatty acid utilization and an impaired antioxidant defense mechanism are early events in podocyte injury: a proteomic analysis.

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10.  Mpv17 in mitochondria protects podocytes against mitochondrial dysfunction and apoptosis in vivo and in vitro.

Authors:  Gabriela Casalena; Stefanie Krick; Ilse Daehn; Liping Yu; Wenjun Ju; Shaolin Shi; Su-yi Tsai; Vivette D'Agati; Maja Lindenmeyer; Clemens D Cohen; Detlef Schlondorff; Erwin P Bottinger
Journal:  Am J Physiol Renal Physiol       Date:  2014-03-05
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