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Background: Microcephaly, characterized by an abnormally small head size, frequently co-occurs with neurodevelopmental disorders (NDDs). While the genetic basis of NDDs has been widely investigated, the contribution of rare coding variants to microcephaly remains poorly understood.
Methods: We investigated the relationships between head circumference and rare coding variants in 418 individuals with microcephaly, analyzing data from 1050 exomes (312 trios and 106 proband-only samples). Participants were classified into primary microcephaly (PM) and secondary microcephaly (SM) groups, and their clinical and genetic characteristics were systematically assessed. The functional impact of high-priority candidate genes, RTF1 and ASAP2, was further validated using neural progenitor cells (NPCs) and human forebrain organoid models.
Results: Exome sequencing revealed 142 causative and 12 candidate genes associated with microcephaly. Pathway analyses indicated that PM genes are linked to early phases of brain development, whereas SM genes are more associated with later stages of neuronal maturation. In addition, the PM group had a significantly higher proportion of autosomal recessive disorders and exhibited more severe microcephaly than the SM group. Notably, females displayed greater microcephaly severity than males, primarily attributable to differences in the origin of the allele and inheritance patterns on the X chromosome. Functional experiments using CRISPR-Cas9 knockout in NPCs and brain organoids demonstrated reduced NPC proliferation, supporting the essential role of RTF1 and ASAP2 in brain development.
Conclusions: This study sheds light on the complex genetic architecture of microcephaly, emphasizing the impact of rare coding variants on brain development and delineating distinct clinical and molecular profiles underlying PM and SM.
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http://dx.doi.org/10.1186/s13073-025-01513-w | DOI Listing |
NAR Genom Bioinform
September 2025
Centre for Integrative Biology and Systems Medicine (IBSE), Wadhwani School of Data Science and AI, Indian Institute of Technology (IIT) Madras, Chennai 600036, India.
Genome graphs provide a powerful reference structure for representing genetic diversity. Their structure emphasizes the polymorphic regions in a collection of genomes, enabling network-based comparisons of population-level variation. However, current tools are limited in their ability to quantify and compare structural features across large genome graphs.
View Article and Find Full Text PDFNeurochirurgie
September 2025
Department of Pediatric Orthopedic Surgery, Regional University Hospital Center of Tours, France; Regional Epidemiology Unit Centre-Val de Loire, Regional University Hospital Center of Tours, France; Reference Center for Rare Diseases, Chiari and Vertebral and Spinal Cord Malformations (C-MAVEM) of
Objective: Epidemiological data on rare spinal cord malformations in children are lacking in France. Using the national hospital discharge database (PMSI), we studied the care trajectories and estimated the morbidity and mortality burden of these conditions.
Study Design: We conducted a nationwide historical cohort study from 2010 to 2020, including children diagnosed with rare spinal cord diseases within the scope of the C-MAVEM network.
Exp Eye Res
September 2025
Department of Ophthalmology, Zhengzhou University People's Hospital, Henan Provincial People's Hospital, Henan Eye Hospital, Zhengzhou, Henan, China; Henan Key Laboratory of Ophthalmology and Visual Science, Henan Eye Hospital, Henan Provincial People's Hospital, Zhengzhou, Henan, China; Eye institu
Bardet-Biedl Syndrome (BBS) is a rare autosomal recessive ciliopathy characterized by genetic heterogeneity. Despite significant progress in understanding the BBSome-coding genes associated with ciliopathies, the pathogenesis linked to mutations in chaperonin-coding genes (BBS6, BBS10, and BBS12) remains poorly defined. This study aims to confirm the genetic diagnosis of BBS and elucidate the pathological mechanisms in causative genes of BBS10 and BBS12.
View Article and Find Full Text PDFMol Genet Genomics
September 2025
Institute of Genetics, Vetsuisse Faculty, University of Bern, 3012, Bern, Switzerland.
The aim of this study was to investigate three unrelated Simmental calves with atypical white coat color, identify potential genetic causes using a trio-based whole-genome sequencing approach, and assess the prevalence of the identified variants in the breed. Several inherited alleles affecting coat color, ranging from fawn to red spotted and white-headed, have been described in Simmental cattle originating from Switzerland. However, no genetic variant has yet been associated with an almost completely white coat in this breed.
View Article and Find Full Text PDFEpilepsy Behav
September 2025
Biohaven Pharmaceuticals, Inc., New Haven, CT, USA.
Background: KCNQ2 developmental and epileptic encephalopathy (KCNQ2-DEE) is a rare pediatric disorder characterized by seizures and neurodevelopmental impairments. Parent- and healthcare professional (HCP)-reported outcomes regarding the impacts of seizures and neurodevelopmental impairments may guide the design of clinically meaningful KCNQ2-DEE outcome measures.
Methods: Parents of children with KCNQ2-DEE (N = 53) and HCPs with KCNQ2-DEE expertise (N = 2) participated in qualitative interviews exploring signs, symptoms, and impacts of KCNQ2-DEE, and how varying KCNQ2-DEE phenotypes affect child development.