Proteomics identify disease-associated variants in patients with rare diseases undiagnosed after genome sequencing

生物 错义突变 蛋白质组学 遗传学 基因 基因组 外显子组测序 计算生物学 候选基因 DNA测序 疾病 等位基因 生物信息学 全基因组测序 基因组学 人类基因组 蛋白质组 全基因组关联研究 外显子组 次等位基因频率 DNA微阵列 遗传变异 表型 参考基因组 桑格测序 选择性拼接 医学诊断 基因定位
作者
Julia Carrasco-Zanini,Jorge Andrade,Maik Pietzner,Athanasios Kousathanas,Julius O.B. Jacobsen,Jenny Lord,Narasimha Swamy Telugu,Sebastian Diecke,Michael Mülleder,Dominik Bierbaum,Letizia Vestito,Peter N. Robinson,Markus Ralser,Diana Baralle,Nicholas J. Wareham,Greg Elgar,Michael Potente,Matthew A. Brown,Mark J. Caulfield,Damian Smedley
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:18 (866): eaeb1331-eaeb1331
标识
DOI:10.1126/scitranslmed.aeb1331
摘要

Despite the introduction of genome sequencing (GS) for rare disease diagnostics, a genetic cause is not identified in most patients. Here, we explored the potential of proteomics to improve the diagnostic yield in 424 patients with rare diseases from the 100,000 Genomes Project (100kGP) without a genetic diagnosis. Serum proteomic profiling was performed using the Olink Explore 1536 assay ( N = 1463 proteins). For 13 patients without genetic diagnoses, detection of lower serum protein “outliers” ( z -score < −2) led to confirmed genetic diagnoses by resolving variants of uncertain significance or prioritizing genes for targeted GS reanalysis. For 23 additional patients without genetic diagnoses (64% of findings), we identified candidate gene-disease links and variants through convergent evidence from lower protein outliers and variants ranked through the variant prioritization tool Exomiser. For example, we identified a candidate heterozygous missense variant [Genome Aggregation Database (gnomAD) minor allele frequency = 0.006%] in tyrosine kinase with immunoglobulin-like and epidermal growth factor homology domains 1 ( TIE1 ) that was only present in a patient with lower TIE1 serum abundance ( z -score = −5.12) and their father, both of whom were affected by the same monogenic cardiac disorder, but in no other individuals from the 100kGP. Missense (52.5%) and splice region (27.5%) variants accounted for most diagnostic or candidate variants prioritized. This proof-of-principle study demonstrated that serum proteomics can support rare disease diagnosis and identify disease-causing genes in patients undiagnosed after GS, although successful implementation will likely depend on tissue specificity of protein expression, detectability in blood, proteomic platform coverage, and sensitivity.
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