Yaffa Serur, Chloe Alexa McGhee, Noam Avital, Odeya Russo, Mira Michelle Raman, Tamar Green
{"title":"努南综合征谱系儿童的皮质下形状改变:基因型-表型关联的见解。","authors":"Yaffa Serur, Chloe Alexa McGhee, Noam Avital, Odeya Russo, Mira Michelle Raman, Tamar Green","doi":"10.1093/cercor/bhaf217","DOIUrl":null,"url":null,"abstract":"<p><p>Noonan syndrome is the most common RASopathy and is associated with high rates of neurodevelopmental disorders. Prior neuroimaging studies in children with Noonan syndrome have identified structural effects on subcortical regions, though most focus on volumetric differences, overlooking finer morphological changes. These studies also tend to examine common genetic variants, excluding rarer forms within the Noonan syndrome spectrum. Shape analysis offers a sensitive approach to detecting subtle alterations, and when applied across variants, may reveal distinct neuroanatomical signatures. We acquired anatomical magnetic resonance imaging scans from 104 children with Noonan syndrome spectrum (ages 5 to 17, mean = 10.0) and 80 age- and sex-matched typically developing children (ages 4 to 16, mean = 9.54). Our comprehensive analysis examined local thickness and surface dilation/contraction (Jacobian), including genetic variant-specific analyses. Noonan syndrome spectrum showed widespread subcortical alterations beyond volume reduction, including thinning and surface contraction in the putamen, pallidum, thalamus, and caudate, and expansion in the accumbens. Distinct regional effects were found for PTPN11, SOS1, and other Noonan syndrome spectrum-associated variants. These findings confirm subcortical volume reductions in several regions and highlight complex, region-specific shape alterations. Importantly, neuroanatomical patterns varied across genetic variants, suggesting distinct mechanisms of brain development. Understanding these variant-specific structural profiles may provide insights into genotype-based approaches and inform future precision medicine strategies.</p>","PeriodicalId":9715,"journal":{"name":"Cerebral cortex","volume":"35 8","pages":""},"PeriodicalIF":2.9000,"publicationDate":"2025-08-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC12345204/pdf/","citationCount":"0","resultStr":"{\"title\":\"Subcortical shape alterations in children with Noonan syndrome spectrum: insights into genotype-phenotype associations.\",\"authors\":\"Yaffa Serur, Chloe Alexa McGhee, Noam Avital, Odeya Russo, Mira Michelle Raman, Tamar Green\",\"doi\":\"10.1093/cercor/bhaf217\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Noonan syndrome is the most common RASopathy and is associated with high rates of neurodevelopmental disorders. Prior neuroimaging studies in children with Noonan syndrome have identified structural effects on subcortical regions, though most focus on volumetric differences, overlooking finer morphological changes. These studies also tend to examine common genetic variants, excluding rarer forms within the Noonan syndrome spectrum. Shape analysis offers a sensitive approach to detecting subtle alterations, and when applied across variants, may reveal distinct neuroanatomical signatures. We acquired anatomical magnetic resonance imaging scans from 104 children with Noonan syndrome spectrum (ages 5 to 17, mean = 10.0) and 80 age- and sex-matched typically developing children (ages 4 to 16, mean = 9.54). Our comprehensive analysis examined local thickness and surface dilation/contraction (Jacobian), including genetic variant-specific analyses. Noonan syndrome spectrum showed widespread subcortical alterations beyond volume reduction, including thinning and surface contraction in the putamen, pallidum, thalamus, and caudate, and expansion in the accumbens. Distinct regional effects were found for PTPN11, SOS1, and other Noonan syndrome spectrum-associated variants. These findings confirm subcortical volume reductions in several regions and highlight complex, region-specific shape alterations. Importantly, neuroanatomical patterns varied across genetic variants, suggesting distinct mechanisms of brain development. 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Subcortical shape alterations in children with Noonan syndrome spectrum: insights into genotype-phenotype associations.
Noonan syndrome is the most common RASopathy and is associated with high rates of neurodevelopmental disorders. Prior neuroimaging studies in children with Noonan syndrome have identified structural effects on subcortical regions, though most focus on volumetric differences, overlooking finer morphological changes. These studies also tend to examine common genetic variants, excluding rarer forms within the Noonan syndrome spectrum. Shape analysis offers a sensitive approach to detecting subtle alterations, and when applied across variants, may reveal distinct neuroanatomical signatures. We acquired anatomical magnetic resonance imaging scans from 104 children with Noonan syndrome spectrum (ages 5 to 17, mean = 10.0) and 80 age- and sex-matched typically developing children (ages 4 to 16, mean = 9.54). Our comprehensive analysis examined local thickness and surface dilation/contraction (Jacobian), including genetic variant-specific analyses. Noonan syndrome spectrum showed widespread subcortical alterations beyond volume reduction, including thinning and surface contraction in the putamen, pallidum, thalamus, and caudate, and expansion in the accumbens. Distinct regional effects were found for PTPN11, SOS1, and other Noonan syndrome spectrum-associated variants. These findings confirm subcortical volume reductions in several regions and highlight complex, region-specific shape alterations. Importantly, neuroanatomical patterns varied across genetic variants, suggesting distinct mechanisms of brain development. Understanding these variant-specific structural profiles may provide insights into genotype-based approaches and inform future precision medicine strategies.
期刊介绍:
Cerebral Cortex publishes papers on the development, organization, plasticity, and function of the cerebral cortex, including the hippocampus. Studies with clear relevance to the cerebral cortex, such as the thalamocortical relationship or cortico-subcortical interactions, are also included.
The journal is multidisciplinary and covers the large variety of modern neurobiological and neuropsychological techniques, including anatomy, biochemistry, molecular neurobiology, electrophysiology, behavior, artificial intelligence, and theoretical modeling. In addition to research articles, special features such as brief reviews, book reviews, and commentaries are included.