进行性核上麻痹
陶氏病
生物
遗传学
单倍型
转录因子
神经退行性变
翻译(生物学)
发病机制
神经科学
基因沉默
细胞生物学
表型
TCF4型
生物信息学
基因
疾病
计算生物学
遗传异质性
作者
Christian Lessard,Diego Rubio Rubio,Samantha G Tolton,Marangelie Criado-Marrero,Sakthivel Ravi,Tristyn N. Garza,John Koren,J. Philips,Pritha Bagchi,Karen N. McFarland,Deepak Chhangani,Todd E. Golde,Benoit I. Giasson,Jada Lewis,Paramita Chakrabarty,Matthew J. LaVoie,David Borchelt,Nicholas T Seyfried,Stefan Prokop,Diego E. Rincón-Limas
标识
DOI:10.1523/jneurosci.1727-25.2026
摘要
The unfolded protein response (UPR) sensor PERK exists in haplotypes A and B. PERK-B confers increased risk for tauopathies like progressive supranuclear palsy (PSP), but the mechanisms distinguishing its function from PERK-A and contributing to its association with tauopathy remain unknown. Here, we developed a controlled cellular model for a pair-wise comparison of the two PERK haplotypes, finding their UPR functions nearly indistinguishable. Puromycin-based proteomics highlighted a subset of mRNA translation events that was permissible under the PERK-B-dependent, but not the PERK-A-dependent, UPR. One of the targets that escaped PERK-B suppression was the transcription factor DLX1, which is genetically linked to PSP risk. We found that DLX1 solubility shifted to a detergent-insoluble fraction in the human brain tissue from male and female PSP donors. Furthermore, silencing the fly homolog of DLX1 was sufficient to decrease tau-induced toxicity in vivo. Our results detail the haplotype-specific PERK-B/DLX-1 pathway as a novel driver of tau pathology in cells, flies, and likely the human brain, revealing new insights into PSP pathogenesis and potential therapeutic targets.
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