TDP-43-dependent mis-splicing of KCNQ2 triggers intrinsic neuronal hyperexcitability in ALS/FTD

TDP-43依赖的KCNQ2错误剪接引发ALS/FTD中的内在神经元过度兴奋。

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作者:Brian J Joseph # ,Kelly A Marshall #,Peter Harley #,Jacob R Mann,Francesco Alessandrini,Carlos G Vanoye,Wanhao Chi,Mercedes Prudencio,Dina Simkin,Tzu-Ting Kao,Reshma R Desai,Matthew J Keuss,Simone Barattucci,Matteo Zanovello,Puja R Mehta,Jean-Marc DeKeyser,Francesco Limone,Jonathan Lee,Anna-Leigh Brown,Marcel F Leyton-Jaimes,Leslie A Nash,Irune Guerra San Juan,Eleonora Aronica,Brian J Wainger,Mala Shah,Anand Goswami,Neil A Shneider,Dennis W Dickson,Juan Burrone,Chaolin Zhang,Hynek Wichterle,Leonard Petrucelli,Jonathan K Watts,Alfred L George Jr,Pietro Fratta,Kevin Eggan,Evangelos Kiskinis

Abstract

Motor neuron hyperexcitability is a broadly observed yet poorly understood feature of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). Nuclear depletion and cytoplasmic aggregation of the RNA splicing protein TAR DNA-binding protein 43 (TDP-43) are observed in most ALS and FTD patients. Here we show that TDP-43 dysfunction causes mis-splicing of KCNQ2, which encodes a voltage-gated potassium channel (Kv7.2) that regulates neuronal excitability. Using iPSC-derived neurons and postmortem ALS/FTD brain and spinal cord tissue we find widespread, disease-specific and TDP-43-specific skipping of an exon encoding the KCNQ2 pore domain. The mis-spliced mRNA escapes degradation and is translated into a nonfunctional protein with severely reduced ion conductance that aggregates in the endoplasmic reticulum and causes intrinsic hyperexcitability in ALS neuronal models. This event, which correlates with higher phosphorylated TDP-43 levels and earlier age of disease onset in patients, can be rescued by splice-modulating antisense oligonucleotides that dampen hyperexcitability in induced pluripotent stem cell cortical neurons and spinal motor neurons with TDP-43 depletion. Our work reveals that nuclear TDP-43 maintains the fidelity of KCNQ2 expression and function and provides a mechanistic link between established excitability disruption in ALS/FTD patients and TDP-43 dysfunction.

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