Homozygous mutation in MCM7 causes autosomal recessive primary microcephaly and intellectual disability
Ethiraj Ravindran1,2,3, Cynthia Gutierrez de Velazco1,2,3, Ali Ghazanfar4
1Institute of Cell Biology and Neurobiology, Charité Universitätsmedizin Berlin, Berlin, Germany.
Background:
Minichromosomal maintenance (MCM) complex components 2, 4, 5 and 6 have been linked to human disease with phenotypes including microcephaly and intellectual disability. The MCM complex has DNA helicase activity and is thereby important for the initiation and elongation of the replication fork and highly expressed in proliferating neural stem cells.
Methods:
Whole-exome sequencing was applied to identify the genetic cause underlying the neurodevelopmental disease of the index family. The expression pattern of Mcm7 was characterised by performing quantitative real-time PCR, in situ hybridisation and immunostaining. To prove the disease-causative nature of identified MCM7, a proof-of-principle experiment was performed.
Results:
We reported that the homozygous missense variant c.793G>A/p.A265T (g.7:99695841C>T, NM_005916.4) in MCM7 was associated with autosomal recessive primary microcephaly (MCPH), severe intellectual disability and behavioural abnormalities in a consanguineous pedigree with three affected individuals. We found concordance between the spatiotemporal expression pattern of Mcm7 in mice and a proliferative state: Mcm7 expression was higher in early mouse developmental stages and in proliferative zones of the brain. Accordingly, Mcm7/MCM7 levels were detectable particularly in undifferentiated mouse embryonal stem cells and human induced pluripotent stem cells compared with differentiated neurons. We further demonstrate that the downregulation of Mcm7 in mouse neuroblastoma cells reduces cell viability and proliferation, and, as a proof-of-concept, that this is counterbalanced by the overexpression of wild-type but not mutant MCM7.
Conclusion:
We report mutations of MCM7 as a novel cause of autosomal recessive MCPH and intellectual disability and highlight the crucial function of MCM7 in nervous system development.
Insights
Mutations in MCM7 cause autosomal recessive primary microcephaly and intellectual disability. This highlights the critical role of MCM7 in nervous system development and neural stem cell proliferation.
Area of Science:
- Genetics
- Neuroscience
- Molecular Biology
Background:
- Minichromosomal maintenance (MCM) complex components are implicated in human diseases such as microcephaly and intellectual disability.
- The MCM complex is essential for DNA replication and highly expressed in neural stem cells.
Purpose of the Study:
- To identify the genetic cause of a neurodevelopmental disorder in a consanguineous family.
- To investigate the role of MCM7 in nervous system development.
Main Methods:
- Whole-exome sequencing was used to identify genetic variants.
- Quantitative real-time PCR, in situ hybridization, and immunostaining were performed to analyze Mcm7 expression patterns.
- Functional studies in cell lines were conducted to validate the pathogenicity of the identified MCM7 variant.
Main Results:
- A homozygous missense variant (c.793G>A/p.A265T) in MCM7 was identified in individuals with autosomal recessive primary microcephaly (MCPH), severe intellectual disability, and behavioral abnormalities.
- Mcm7 expression is elevated in early developmental stages and proliferative zones of the brain, particularly in stem cells, and decreases upon differentiation.
- Downregulation of Mcm7 in neuroblastoma cells impaired cell viability and proliferation, which was rescued by wild-type MCM7 overexpression.
Conclusions:
- Mutations in MCM7 represent a novel genetic cause of autosomal recessive MCPH and intellectual disability.
- MCM7 plays a crucial role in human nervous system development.
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