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Novel m.15434C>A (p.230L>I) Mitochondrial Cytb Gene Missense Mutation Associated with Dilated Cardiomyopathy
Sinda Zarrouk Mahjoub1, Sounira Mehri, Fatma Ourda
1Genetics Laboratory and Research Unit of Genetics Epidemiology and Molecular, Faculty of Medicine of Tunis, Tunis 1007, Tunisia.
Insights
A novel mutation in the mitochondrial cytochrome b gene (MT-CYB) was identified in a patient with severe dilative cardiomyopathy (dCMP). This L230I mutation may cause dCMP, warranting further investigation in animal models.
Area of Science:
- Cardiology
- Genetics
- Mitochondrial Biology
Background:
- Cardiomyopathies (CMPs), including hypertrophic (hCMP) and dilative (dCMP), are linked to impaired mitochondrial energy metabolism.
- Mutations in mitochondrial DNA genes, such as the cytochrome b gene (MT-CYB), have been implicated in causing CMPs.
Purpose of the Study:
- To investigate alterations in the MT-CYB gene in patients with hCMP and dCMP.
- To identify potential novel mutations causative of cardiomyopathy.
Main Methods:
- Analysis of the MT-CYB gene in 30 hCMP patients, 40 dCMP patients, and 50 controls.
- Detection and characterization of genetic variants, including single nucleotide polymorphisms and novel mutations.
Main Results:
- Twenty-seven MT-CYB variants were identified, with 24 being common single nucleotide polymorphisms.
- A novel variant, m.15434C>A, was found in one severe dCMP patient, altering amino acid L230 to I (L230I).
- The L230I variant showed high conservation and was not associated with common haplogroups.
Conclusions:
- The novel L230I mutation in MT-CYB is a potential cause of dilative cardiomyopathy.
- Further studies using yeast or transgenic mouse models are necessary to confirm the pathogenic impact of this mutation.
Abstract:
Background. Previously it has been shown that various types of hypertrophic and dilative cardiomyopathy (hCMP, dCMP) can be attributed to disturbed mitochondrial oxidative energy metabolism. Several studies described mutations in mitochondrial DNA-located genes encoding for subunits of respiratory chain complexes, including the cytochrome b gene (MT-CYB), causing CMPs. Methods and Results. In the present study the MT-CYB gene was analysed in 30 patients with hCMP, 40 patients with dCMP, and 50 controls for alterations. Altogether, 27 MT-CYB variants were detected. Twenty-four of them were single nucleotide polymorphisms defining common haplogroups. The variant m.15434C>A was found in a single patient with severe dCMP and assessed as novel mutation, since it was not found in healthy controls or available data sets, and was nonhaplogroup associated with Phylotree. This variant altered an amino acid (L230I) with a high interspecific amino acid conservation index (CI = 97.7%) indicative of the functional importance of the residue. Conclusions. Though the L230I mutation seems to play a causative role for dCMP, prospective studies on yeast or transgenic mice models with defined mutation are warranted to study the pathogenetic impact of this mutation.
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Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
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