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New variants in the mitochondrial genomes of schizophrenic patients
Lourdes Martorell1, Teresa Segués, Gerard Folch
1Departament de Formació i Investigació, Hospital Psiquiàtric Universitari Institut Pere Mata, Reus, Spain. lourdes.martorell@urv.net
Abstract:
The impaired mitochondrial function hypothesis in schizophrenia is based on evidence of altered brain metabolism, morphology, biochemistry and gene expression. Mitochondria have their own genome, which is needed to synthesize some of the subunits of the respiratory chain enzymes. Mitochondrial DNA (mtDNA) is maternally inherited and we observed an excess of maternal transmission of schizophrenia in a set of parent-offspring affected pairs. We therefore hypothesized that mutations in the mtDNA may contribute to the complex genetic basis of schizophrenia. The entire mtDNA of six schizophrenic patients with an apparent maternal transmission of the disease was sequenced and compared to the reference sequence. We have identified 50 variants and among these six have not been previously reported. Three of them were missense variants: MTCO2 7750C>A, MTATP6 8857G>A and MTND4 12096T>A. These were maternally inherited because they were also present in the mtDNA of their respective schizophrenic mothers and none of them were found in 95 control individuals. The MTND4 12096T>A (Leu446His) is a heteroplasmic variant present in five of the six mother-offspring patient pairs that triggers a non-conservative substitution in the ND4 subunit of complex I. Sequence alignment of 110 ND4 peptides from all eukaryotic kingdoms shows that only hydrophobic amino acids are found in this position. Moreover, leucine was conserved or substituted by an isoleucine in all mammalian species. This indicates that the presence of histidine could affect complex I activity in patients with schizophrenia.
Insights
Mitochondrial DNA (mtDNA) mutations may contribute to schizophrenia. Researchers found novel, maternally inherited mtDNA variants, including one impacting Complex I, in patients with maternal transmission of the disease.
Area of Science:
- Neuroscience
- Genetics
- Mitochondrial Biology
Background:
- Schizophrenia is linked to impaired mitochondrial function, evidenced by altered brain metabolism and gene expression.
- Mitochondria possess their own genome (mtDNA), crucial for respiratory chain enzyme synthesis.
- Maternal inheritance of mtDNA and observed excess maternal transmission of schizophrenia suggest a potential role for mtDNA mutations.
Purpose of the Study:
- To investigate the hypothesis that mutations in mitochondrial DNA (mtDNA) contribute to the genetic basis of schizophrenia.
- To identify novel mtDNA variants associated with schizophrenia, particularly in cases with maternal transmission.
Main Methods:
- Sequencing of the entire mitochondrial DNA (mtDNA) from six schizophrenia patients exhibiting maternal transmission.
- Comparison of patient mtDNA sequences against a reference sequence.
- Analysis of identified variants for maternal inheritance and presence in control populations.
Main Results:
- Fifty variants were identified in the patient mtDNA, with six being previously unreported.
- Three novel missense variants (MTCO2 7750C>A, MTATP6 8857G>A, MTND4 12096T>A) were found to be maternally inherited.
- A heteroplasmic variant, MTND4 12096T>A (Leu446His), was present in five of six mother-offspring pairs, potentially affecting Complex I activity.
Conclusions:
- Maternally inherited mitochondrial DNA mutations are potential contributors to schizophrenia.
- The novel MTND4 variant may impair mitochondrial Complex I function, offering a new avenue for understanding schizophrenia pathogenesis.
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