Cancer-type somatic mutations in saccular cerebral aneurysms.

IF 3.7 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Behnam Rezai Jahromi, Miko Valori, Riikka Tulamo, Suvi Jauhiainen, Henna Ilmonen, Jonas Kantonen, Minna Kaikkonen-Määttä, Aki Laakso, Seppo Ylä-Hertuala, Juha E Jääskeläinen, Pentti J Tienari, Mika Niemelä
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引用次数: 0

Abstract

Intracranial aneurysms (IAs) are a major cause of subarachnoidal hemorrhage (SAH) which can have a significant morbidity and mortality. The processes underlying the aneurysm development remains unclear. We performed whole exome sequencing of DNA derived from 20 saccular cerebral aneurysms of 20 patients, followed by somatic variant calling. Eleven (55%) of the 20 patients had detectable nonsynonymous somatic mutations and in total, 48 mutations were detected in the aneurysm samples. The mutations were highly enriched in cancer-related genes and 77% were predictably deleterious. A p.Tyr562Asp somatic mutation was detected in the PDGFRB gene; somatic mutations at the same codon have been reported in fusiform cerebral aneurysms. These results widen the concept on the role of somatic mutations in cerebral aneurysms, indicating their possible role in the more common saccular aneurysm, similarly to the rarer fusiform aneurysm.

囊状脑动脉瘤的癌型体细胞突变。
颅内动脉瘤(IAs)是导致蛛网膜下腔出血(SAH)的主要原因,其发病率和死亡率都很高。动脉瘤形成的过程尚不清楚。我们对来自20例脑囊性动脉瘤患者的DNA进行了全外显子组测序,然后进行了体细胞变异召唤。20例患者中有11例(55%)检测到非同义体细胞突变,在动脉瘤样本中总共检测到48个突变。这些突变在癌症相关基因中高度富集,77%的突变可预见是有害的。PDGFRB基因中检测到p.Tyr562Asp体细胞突变;同一密码子的体细胞突变已被报道在梭状脑动脉瘤。这些结果扩大了体细胞突变在脑动脉瘤中的作用的概念,表明它们可能在更常见的囊状动脉瘤中起作用,类似于罕见的梭状动脉瘤。
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来源期刊
European Journal of Human Genetics
European Journal of Human Genetics 生物-生化与分子生物学
CiteScore
9.90
自引率
5.80%
发文量
216
审稿时长
2 months
期刊介绍: The European Journal of Human Genetics is the official journal of the European Society of Human Genetics, publishing high-quality, original research papers, short reports and reviews in the rapidly expanding field of human genetics and genomics. It covers molecular, clinical and cytogenetics, interfacing between advanced biomedical research and the clinician, and bridging the great diversity of facilities, resources and viewpoints in the genetics community. Key areas include: -Monogenic and multifactorial disorders -Development and malformation -Hereditary cancer -Medical Genomics -Gene mapping and functional studies -Genotype-phenotype correlations -Genetic variation and genome diversity -Statistical and computational genetics -Bioinformatics -Advances in diagnostics -Therapy and prevention -Animal models -Genetic services -Community genetics
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