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Mitochondrial DNA backgrounds might modulate diabetes complications rather than T2DM as a whole
Alessandro Achilli1, Anna Olivieri, Maria Pala
1Dipartimento di Biologia Cellulare e Ambientale, Università di Perugia, Perugia, Italy.
Abstract:
Mitochondrial dysfunction has been implicated in rare and common forms of type 2 diabetes (T2DM). Additionally, rare mitochondrial DNA (mtDNA) mutations have been shown to be causal for T2DM pathogenesis. So far, many studies have investigated the possibility that mtDNA variation might affect the risk of T2DM, however, when found, haplogroup association has been rarely replicated, even in related populations, possibly due to an inadequate level of haplogroup resolution. Effects of mtDNA variation on diabetes complications have also been proposed. However, additional studies evaluating the mitochondrial role on both T2DM and related complications are badly needed. To test the hypothesis of a mitochondrial genome effect on diabetes and its complications, we genotyped the mtDNAs of 466 T2DM patients and 438 controls from a regional population of central Italy (Marche). Based on the most updated mtDNA phylogeny, all 904 samples were classified into 57 different mitochondrial sub-haplogroups, thus reaching an unprecedented level of resolution. We then evaluated whether the susceptibility of developing T2DM or its complications differed among the identified haplogroups, considering also the potential effects of phenotypical and clinical variables. MtDNA backgrounds, even when based on a refined haplogroup classification, do not appear to play a role in developing T2DM despite a possible protective effect for the common European haplogroup H1, which harbors the G3010A transition in the MTRNR2 gene. In contrast, our data indicate that different mitochondrial haplogroups are significantly associated with an increased risk of specific diabetes complications: H (the most frequent European haplogroup) with retinopathy, H3 with neuropathy, U3 with nephropathy, and V with renal failure.
Insights
Mitochondrial DNA haplogroups do not influence type 2 diabetes risk but are linked to specific complications. Haplogroup H is associated with retinopathy, H3 with neuropathy, U3 with nephropathy, and V with renal failure.
Area of Science:
- Genetics
- Metabolic Diseases
- Mitochondrial Biology
Background:
- Mitochondrial dysfunction is linked to type 2 diabetes (T2DM).
- Mitochondrial DNA (mtDNA) mutations can cause T2DM, but haplogroup associations with T2DM risk are inconsistent.
- The role of mtDNA variation in T2DM complications requires further investigation.
Purpose of the Study:
- To investigate the association between mitochondrial genome variation and T2DM susceptibility.
- To explore the link between mitochondrial haplogroups and the risk of developing T2DM complications.
Main Methods:
- Genotyping of mitochondrial DNA (mtDNA) from 466 T2DM patients and 438 controls from central Italy.
- Classification of 904 samples into 57 mitochondrial sub-haplogroups using updated phylogenetic data.
- Evaluation of haplogroup associations with T2DM and its complications, considering clinical variables.
Main Results:
- Mitochondrial DNA backgrounds did not significantly affect T2DM susceptibility.
- Haplogroup H1 showed a potential protective effect against T2DM.
- Specific haplogroups were associated with increased risk of diabetes complications: H with retinopathy, H3 with neuropathy, U3 with nephropathy, and V with renal failure.
Conclusions:
- Mitochondrial haplogroups do not appear to influence the risk of developing type 2 diabetes.
- Distinct mitochondrial haplogroups are significantly associated with an increased risk of specific diabetic complications, highlighting their role in disease progression.
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