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bioRxiv · 10.1101/2025.09.04.673943

TDP-43 loss of function drives aberrant splicing in Parkinson's disease

Abstract

Introductory paragraphWhile mRNA splicing dysregulation is a well-established contributor to neurodegeneration in disorders such as amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD), its role in Parkinsons disease (PD) remains underexplored. Here, we analyse transcriptomic data from >500 post-mortem human brain samples from individuals with and without PD to show that splicing alterations are frequently detected. Differentially spliced genes were significantly more enriched for those causally-implicated in both PD and ALS than genes that were differentially expressed. Furthermore, we observed a strong association between these splicing alterations and dysfunction of the RNA-binding protein (RBP), TAR DNA-binding protein 43 (TDP-43). Strikingly, genes and exon junctions affected by TDP-43 knockdown overlapped significantly with those dysregulated across brain regions in PD. In brains from individuals with the LRRK2 c.6055G>A (p.G2019S) mutation, the most common genetic cause of PD, we also observed significant enrichment of TDP-43-dependent splicing changes. This finding was corroborated in human pluripotent stem cell-derived midbrain dopaminergic neurons and a LRRK2 p.G2019S knock-in mouse model, where reduced nuclear TDP-43 levels evidenced the well-recognised loss-of-function mechanism contributing to splicing dysregulation. By leveraging our RNA-based analyses we predicted TDP-43-dependent novel peptide sequences and validated their existence within human LRRK2 mutation mDNs, while also demonstrating an overall loss of protein and mRNA expression in mis-spliced genes. Collectively, our findings reveal that PD is marked by extensive splicing dysregulation dependent on TDP-43, making TDP-43 a promising new therapeutic target in PD.

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BibTeXRIS

Brenton, J. W., Follett, J., Nirujogi, R., Toomey, C. E., Lopez-Garcia, P., Evans, J. R., Lee, Y. J., Syed, K. M., Rocamora Perez, G., Fairbrother-Browne, A., D'Sa, K., Grant-Peters, M., Lachica, J., Hicks, A. R., Wagen, A. Z., O'Callaghan, B., Macpherson, H., Montgomery, K.-a., Busquets, O., Reynolds, R. H., Garcia Ruiz, S., Cao, T., Chen, Z., Plun-Favreau, H., Wong, P. C., Farrer, M., Lashley, T., Soldner, F., Hockemeyer, D., Alessi, D., Wood, N. W., Hardy, J., Rio, D. C., Jaunmuktane, Z., Gustavsson, E. K., Gandhi, S., Ryten, M.. 2025-09-09. TDP-43 loss of function drives aberrant splicing in Parkinson's disease. https://doi.org/10.1101/2025.09.04.673943

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