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Induction and Micro-CT Imaging of Cerebral Cavernous Malformations in Mouse Model
Published on: September 4, 2017
Mutations in CTC1, encoding the CTS telomere maintenance complex component 1, cause cerebroretinal microangiopathy
Anne Polvi1, Tarja Linnankivi, Tero Kivelä
1Folkhälsan Institute of Genetics, Helsinki, Finland.
Insights
Mutations in the CTC1 gene are linked to Cerebroretinal microangiopathy with calcifications and cysts (CRMCC), a rare genetic disorder. This discovery aids in diagnosing CRMCC, especially when systemic features are present.
Area of Science:
- Genetics
- Rare diseases
- Molecular biology
Background:
- Cerebroretinal microangiopathy with calcifications and cysts (CRMCC) is a rare, multisystem disorder with unknown pathogenesis.
- CRMCC shares phenotypic similarities with Revesz syndrome, linked to TINF2 gene mutations affecting the telomere complex.
Purpose of the Study:
- To identify the genetic cause of Cerebroretinal microangiopathy with calcifications and cysts (CRMCC).
- To investigate the role of the CTC1 gene in CRMCC pathogenesis.
Main Methods:
- Whole-exome sequencing was performed on four unrelated individuals with CRMCC.
- Sanger sequencing was used to confirm mutations in additional affected individuals.
Main Results:
- Four compound heterozygous mutations in CTC1 were identified in the initial cohort, with eight additional mutations found in other patients.
- The presence of systemic findings is crucial for indicating CTC1 sequencing.
- Most patients were compound heterozygotes for missense and frameshift/nonsense mutations, suggesting biallelic severe mutations may be lethal.
Conclusions:
- Deficient CTC1 function is associated with Cerebroretinal microangiopathy with calcifications and cysts (CRMCC).
- Further research is needed to elucidate the pathomechanisms of CTC1 deficiency in CRMCC and its impact on telomere integrity.
Abstract:
Cerebroretinal microangiopathy with calcifications and cysts (CRMCC) is a rare multisystem disorder characterized by extensive intracranial calcifications and cysts, leukoencephalopathy, and retinal vascular abnormalities. Additional features include poor growth, skeletal and hematological abnormalities, and recurrent gastrointestinal bleedings. Autosomal-recessive inheritance has been postulated. The pathogenesis of CRMCC is unknown, but its phenotype has key similarities with Revesz syndrome, which is caused by mutations in TINF2, a gene encoding a member of the telomere protecting shelterin complex. After a whole-exome sequencing approach in four unrelated individuals with CRMCC, we observed four recessively inherited compound heterozygous mutations in CTC1, which encodes the CTS telomere maintenance complex component 1. Sanger sequencing revealed seven more compound heterozygous mutations in eight more unrelated affected individuals. Two individuals who displayed late-onset cerebral findings, a normal fundus appearance, and no systemic findings did not have CTC1 mutations, implying that systemic findings are an important indication for CTC1 sequencing. Of the 11 mutations identified, four were missense, one was nonsense, two resulted in in-frame amino acid deletions, and four were short frameshift-creating deletions. All but two affected individuals were compound heterozygous for a missense mutation and a frameshift or nonsense mutation. No individuals with two frameshift or nonsense mutations were identified, which implies that severe disturbance of CTC1 function from both alleles might not be compatible with survival. Our preliminary functional experiments did not show evidence of severely affected telomere integrity in the affected individuals. Therefore, determining the underlying pathomechanisms associated with deficient CTC1 function will require further studies.
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