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A clinical and genotype-phenotype analysis of MACF1 variants
Jordy Dekker1, Rachel Schot2, Kimberly A Aldinger3
1Department of Clinical Genetics, Erasmus MC, University Medical Center Rotterdam, PO Box 2040, Rotterdam 3000 CA, the Netherlands.
Abstract:
Microtubule-actin cross-linking factor 1 (MACF1) is a large protein of the spectraplakin family, which is essential for brain development. MACF1 interacts with microtubules through the growth arrest-specific 2 (Gas2)-related (GAR) domain. Heterozygous MACF1 missense variants affecting the zinc-binding residues in this domain result in a distinctive cortical and brain stem malformation. Evidence for other MACF1-associated disorders is still limited. Here, we present a cohort of 45 individuals with heterozygous or bi-allelic MACF1 variants to explore the phenotypic spectrum and assess possible pathogenic relevance. We observe that de novo heterozygous missense variants in the EF-hand domains also result in distinctive brain malformation and provide experimental evidence that variants in the EF-hand/GAR module increase microtubule binding, suggestive of a toxic gain of function. Notably, no phenotype-genotype correlation was possible for the remaining heterozygous variants in other domains. A clinical review of eight families with bi-allelic variants reveals a possible complex neurodevelopmental syndrome of the central and peripheral nervous systems. In these individuals, bi-allelic variants mostly affect the Plakin domain. Furthermore, RNA sequencing and chromatin immunoprecipitation (ChIP) analyses of human fetal brain tissue reveal five MACF1 isoforms with region-specific expression, differing in their exon 1 transcription start sites but splicing to a common exon 2. This differential expression explains the frontal-predominant lissencephaly in an individual with a homozygous stop-gain in exon 1 (MACF1-204: c.70C>T [p.Arg24∗]), as this isoform is preferentially expressed in the frontal cortex. We conclude that MACF1-related disorders are strictly linked to domain function and the level of transcript expression, explaining the observed wide clinical heterogeneity.
Insights
Microtubule-actin cross-linking factor 1 (MACF1) variants cause brain malformations. Different MACF1 gene variants lead to distinct neurodevelopmental disorders, linked to specific protein domains and expression levels.
Area of Science:
- Genetics
- Neuroscience
- Molecular Biology
Background:
- Microtubule-actin cross-linking factor 1 (MACF1) is crucial for brain development.
- MACF1 interacts with microtubules via its growth arrest-specific 2 (Gas2)-related (GAR) domain.
- Previous studies linked MACF1 variants to brain malformations, but the full spectrum of disorders remained unclear.
Purpose of the Study:
- To explore the phenotypic spectrum of MACF1-related disorders.
- To assess the pathogenic relevance of various MACF1 variants.
- To investigate genotype-phenotype correlations and underlying molecular mechanisms.
Main Methods:
- Clinical review of 45 individuals with MACF1 variants.
- Experimental analysis of variant effects on microtubule binding.
- RNA sequencing and chromatin immunoprecipitation (ChIP) in human fetal brain tissue.
Main Results:
- De novo heterozygous missense variants in EF-hand domains cause brain malformations, suggesting a toxic gain of function.
- Bi-allelic variants, primarily in the Plakin domain, are associated with complex neurodevelopmental syndromes affecting the central and peripheral nervous systems.
- Five MACF1 isoforms with region-specific expression were identified, explaining specific malformations like frontal-predominant lissencephaly.
Conclusions:
- MACF1-related disorders are domain-specific and influenced by transcript expression levels.
- Genetic variants in MACF1 can lead to a wide spectrum of neurodevelopmental phenotypes.
- Understanding MACF1 isoform expression is key to explaining clinical heterogeneity in these disorders.
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