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山东大学学报 (医学版) ›› 2026, Vol. 64 ›› Issue (9): 43-49.doi: 10.6040/j.issn.1671-7554.0.2025.0958

• 临床医学 • 上一篇    

全外显子测序技术在儿童遗传病临床诊断与治疗中的应用

武明莉1,姜铭迪1,李静2,宋超1,刘晶1,李真1,周依琳1,张红3,刘庆华1   

  1. 山东第一医科大学第二附属医院 1.检验科;2.儿科;3.血液科, 山东 泰安 271016
  • 发布日期:2026-09-09
  • 通讯作者: 刘庆华. E-mail:honghuahui2006@163.com
  • 基金资助:
    山东省自然科学基金面上项目(ZR2024MH164);泰安市科技创新发展项目(2024NS356)

Application of whole exome sequencing technology in the clinical diagnosis and treatment of genetic diseases in children

WU Mingli1, JIANG Mingdi1, LI Jing2, SONG Chao1, LIU Jing1, LI Zhen1, ZHOU Yilin1, ZHANG Hong3, LIU Qinghua1   

  1. 1. Department of Clinical Laboratory;
    2. Department of Pediatrics;
    3. Department of Hematology, The Second Affiliated Hospital of Shandong First Medical University, Taian 271016, Shandong, China
  • Published:2026-09-09

摘要: 目的 探讨全外显子组测序技术(whole exome sequencing, WES)在儿童遗传病患者临床诊断与治疗中的价值。 方法 收集2019年3月至2023年8月于山东第一医科大学第二附属医院就诊的265例疑似儿童遗传病患者的临床资料进行回顾性分析。所有患者均进行WES测序分析,结合患儿临床表型筛选候选变异,用Sanger法进行测序验证,根据美国医学遗传学与基因组学学会(American College of Medical Genetics and Genomics, ACMG)指南完成致病性评估和遗传诊断,通过表型类别、遗传模式、线粒体基因组变异和拷贝数变异来确定WES的总体检出率,分析WES对临床诊疗策略的影响。 结果 在265例儿童患者中,共检测出98例阳性患儿,总检出率为37.0%(98/265)。检出致病性变异/疑似致病性变异单核苷酸变异(single nucleotide variations, SNVs)102种,拷贝数变异(copy number variations, CNVs)20种,线粒体变异1例,新发变异位点31个。临床表型中神经系统疾病比例最高为55.5%(147/265),61例患儿(62.3%)根据测序结果进行了个体化的精准医疗。 结论 WES技术在揭示患儿遗传特征、助力于患儿早期鉴别诊断、提供个性化精准治疗方案方面具有重要意义。

关键词: 全外显子测序技术, 儿童, 遗传病, 诊断, 治疗, 单核苷酸变异, 拷贝数变异

Abstract: Objective To explore the value of whole exome sequencing(WES)in the clinical diagnosis and treatment of children with genetic diseases. Methods The clinical data of 265 children with suspected genetic diseases who visited the The Second Affiliated Hospital of Shandong First Medical University from March 2019 to August 2023 were retrospectively analyzed. All patients underwent WES sequencing analysis. Candidate variants were screened based on the clinical phenotypes of the children, and Sanger sequencing was used for verification. Pathogenicity assessment and genetic diagnosis were completed according to the guidelines of the American College of Medical Genetics and Genomics(ACMG). The overall detection rate of WES was determined based on phenotype categories, inheritance patterns, mitochondrial genome variations, and copy number variations, and the impact of WES on clinical diagnosis and treatment strategies was analyzed. Results Among the 265 children, 98 positive cases were detected, with a total detection rate of 37.0%(98/265). A total of 102 pathogenic or likely pathogenic single nucleotide variations, 20 copy number variations, 1 mitochondrial variation, and 31 de novo mutation sites were detected. In the context of clinical phenotypes, neurological diseases accounted for the highest proportion, reaching 55.5%(147/265). Based on the sequencing results, 61 children(62.3%)received individualized precision medical treatment. Conclusion WES technology is of great significance in revealing the genetic characteristics of children, facilitating early diagnosis, and providing personalized precision treatment plans.

Key words: Whole exome sequencing technology, Children, Genetic diseases, Diagnosis, Treatment, Single nucleotide variations, Copy number variations

中图分类号: 

  • R725.9
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