Mis-spliced transcripts generate de novo proteins in TDP-43–related ALS/FTD

外显子 生物 失智症 表型 转录组 基因 损失函数 遗传学 细胞生物学 分子生物学 基因表达 医学 病理 疾病 痴呆
作者
Sahba Seddighi,Yue Qi,Anna‐Leigh Brown,Oscar G. Wilkins,Colleen Bereda,Cédric Belair,Yong‐Jie Zhang,Mercedes Prudencio,Matthew J. Keuss,Aditya J Khandeshi,Sarah Pickles,Sarah E. Hill,James Hawrot,Daniel M. Ramos,Hebao Yuan,Jessica P. Roberts,Erika Kelmer Sacramento,Syed Islamuddin Shah,Mike A. Nalls,J Colon
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:16 (734): eadg7162-eadg7162 被引量:155
标识
DOI:10.1126/scitranslmed.adg7162
摘要

Functional loss of TDP-43, an RNA binding protein genetically and pathologically linked to amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD), leads to the inclusion of cryptic exons in hundreds of transcripts during disease. Cryptic exons can promote the degradation of affected transcripts, deleteriously altering cellular function through loss-of-function mechanisms. Here, we show that mRNA transcripts harboring cryptic exons generated de novo proteins in TDP-43-depleted human iPSC-derived neurons in vitro, and de novo peptides were found in cerebrospinal fluid (CSF) samples from patients with ALS or FTD. Using coordinated transcriptomic and proteomic studies of TDP-43-depleted human iPSC-derived neurons, we identified 65 peptides that mapped to 12 cryptic exons. Cryptic exons identified in TDP-43-depleted human iPSC-derived neurons were predictive of cryptic exons expressed in postmortem brain tissue from patients with TDP-43 proteinopathy. These cryptic exons produced transcript variants that generated de novo proteins. We found that the inclusion of cryptic peptide sequences in proteins altered their interactions with other proteins, thereby likely altering their function. Last, we showed that 18 de novo peptides across 13 genes were present in CSF samples from patients with ALS/FTD spectrum disorders. The demonstration of cryptic exon translation suggests new mechanisms for ALS/FTD pathophysiology downstream of TDP-43 dysfunction and may provide a potential strategy to assay TDP-43 function in patient CSF.
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