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Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Mitochondrial dysregulation and oxidative stress in patients with chronic kidney disease
Simona Granata1, Gianluigi Zaza, Simona Simone
1Renal, Dialysis and Transplant Unit-Department of Emergency and Transplantation, University of Bari, Italy. simonagranata79@yahoo.it
Background:
Chronic renal disease (CKD) is characterized by complex changes in cell metabolism leading to an increased production of oxygen radicals, that, in turn has been suggested to play a key role in numerous clinical complications of this pathological condition. Several reports have focused on the identification of biological elements involved in the development of systemic biochemical alterations in CKD, but this abundant literature results fragmented and not exhaustive.
Results:
To better define the cellular machinery associated to this condition, we employed a high-throughput genomic approach based on a whole transcriptomic analysis associated with classical molecular methodologies. The genomic screening of peripheral blood mononuclear cells revealed that 44 genes were up-regulated in both CKD patients in conservative treatment (CKD, n = 9) and hemodialysis (HD, n = 17) compared to healthy subjects (HS, n = 8) (p < 0.001, FDR = 1%). Functional analysis demonstrated that 11/44 genes were involved in the oxidative phosphorylation system. Western blotting for COXI and COXIV, key constituents of the complex IV of oxidative phosphorylation system, performed on an independent testing-group (12 healthy subjects, 10 CKD and 14 HD) confirmed an higher synthesis of these subunits in CKD/HD patients compared to the control group. Only for COXI, the comparison between CKD and healthy subjects reached the statistical significance. However, complex IV activity was significantly reduced in CKD/HD patients compared to healthy subjects (p < 0.01). Finally, CKD/HD patients presented higher reactive oxygen species and 8-hydroxydeoxyguanosine levels compared to controls.
Conclusion:
Taken together these results suggest, for the first time, that CKD/HD patients may have an impaired mitochondrial respiratory system and this condition may be both the consequence and the cause of an enhanced oxidative stress.
Insights
Chronic renal disease (CKD) patients exhibit an impaired mitochondrial respiratory system, leading to increased oxidative stress. This mitochondrial dysfunction may contribute to both the development and progression of CKD complications.
Area of Science:
- Biochemistry
- Molecular Biology
- Genomics
Background:
- Chronic renal disease (CKD) involves metabolic changes and increased oxygen radical production, contributing to clinical complications.
- Existing literature on CKD's biochemical alterations is fragmented and incomplete.
Purpose of the Study:
- To define the cellular machinery associated with CKD using a high-throughput genomic approach.
- To investigate the role of mitochondrial dysfunction and oxidative stress in CKD.
Main Methods:
- Whole transcriptomic analysis of peripheral blood mononuclear cells.
- Gene expression profiling and functional analysis of identified genes.
- Western blotting and enzyme activity assays for mitochondrial complex IV.
Main Results:
- 44 genes were significantly up-regulated in CKD and hemodialysis (HD) patients compared to healthy subjects (HS).
- 11 of these genes are involved in oxidative phosphorylation; Complex IV subunits (COXI, COXIV) showed increased synthesis.
- Despite increased subunit synthesis, Complex IV activity was reduced, alongside elevated reactive oxygen species and 8-hydroxydeoxyguanosine levels in CKD/HD patients.
Conclusions:
- CKD/HD patients display an impaired mitochondrial respiratory system.
- This impairment may be both a cause and consequence of enhanced oxidative stress in CKD.
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