Identification and characterization of novel compound variants in SLC25A26 associated with combined oxidative
Yiming Ji1, Shuping Wang2, Yiping Cheng1
1Department of Endocrinology and Metabolism, Shandong Provincial Hospital, Cheeloo College of Medicine, Shandong University, Jinan, Shandong 250021, China; Institute of Endocrinology, Shandong Academy of Clinical Medicine, Jinan 250021, Shandong, China; Shandong Clinical Medical Center of Endocrinology and Metabolism, Jinan 250021, Shandong, China.
Background:
Combined oxidative phosphorylation deficiency 28 (COXPD28) is associated with mitochondrial dysfunction caused by mutations in SLC25A26, the gene which encodes the mitochondrial S-adenosylmethionine carrier (SAMC) that responsible for the transport of S-adenosylmethionine (SAM) into the mitochondria.
Objective:
To identify and characterize pathogenic variants of SLC25A26 in a Chinese pedigree, provide a basis for clinical diagnosis and genetic counseling.
Methods:
We conducted a systematic analysis of the clinical characteristics of a female with COXPD28. Whole-exome and mitochondrial genome sequencing was applied for the genetic analysis, together with bioinformatic analysis of predicted consequences of the identified variant. A homotrimer model was built to visualize the affected region and predict possible outcomes of this mutation. Then a literature review was performed by online searching all cases reported with COXPD28.
Results:
The novel compound heterozygous SLC25A26 variants (c.34G > C, p.A12P; c.197C > A; p.A66E) were identified in a Chinese patient with COXPD28. These two variants are located in the transmembrane region 1 and transmembrane region 2, respectively. As a member of the mitochondrial carrier family, the transmembrane region of SAMC is highly conserved. The variants were predicted to be pathogenic by in silico analysis and lead to a change in the protein structure of SAMC. And the change of the SAMC structure may lead to insufficient methylation and cause disease by affecting the SAM transport.
Conclusions:
The variants in this region probably resulted in a variable loss of mitochondrial SAMC transport function and cause the COXPD28. This study that further refine genotype-phenotype associations can provide disease prognosis with a basis and families with reproductive planning options.
Insights
Novel compound heterozygous variants in SLC25A26 were identified in a Chinese patient with combined oxidative phosphorylation deficiency 28 (COXPD28). This finding refines genotype-phenotype associations for mitochondrial dysfunction.
Area of Science:
- Genetics
- Mitochondrial Biology
- Biochemistry
Background:
- Combined oxidative phosphorylation deficiency 28 (COXPD28) is linked to mitochondrial dysfunction.
- Mutations in SLC25A26, encoding the mitochondrial S-adenosylmethionine carrier (SAMC), cause COXPD28.
- SAMC is crucial for transporting S-adenosylmethionine (SAM) into mitochondria.
Observation:
- A Chinese pedigree with COXPD28 was analyzed.
- Whole-exome and mitochondrial genome sequencing were performed.
- Bioinformatic analysis and homotrimer modeling were utilized.
Findings:
- Novel compound heterozygous SLC25A26 variants (c.34G>C, p.A12P; c.197C>A, p.A66E) were identified in a COXPD28 patient.
- These variants are located in highly conserved transmembrane regions of SAMC.
- In silico analysis predicted the variants to be pathogenic, altering SAMC structure and potentially impairing SAM transport and methylation.
Implications:
- These SLC25A26 variants likely cause variable loss of mitochondrial SAMC transport function, leading to COXPD28.
- The study refines genotype-phenotype associations for COXPD28.
- Findings provide a basis for disease prognosis and reproductive planning for affected families.
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