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Science (New York, N.Y.)
Published

Short RNA chaperones promote aggregation-resistant TDP-43 conformers to mitigate neurodegeneration

Authors

Katie E Copley, Jocelyn C Mauna, Helen L Danielson, Qizan Chen, Busra Ozguney, Marilyn Ngo, Longxin Xie, Ashleigh Smirnov, Matt Davis, Leland Mayne, Miriam Linsenmeier, Jack D Rubien, Cristian A Bergmann, Bede Portz, Bo Lim Lee, Hana M Odeh, Longsheng Lai, Yi-Wei Chang, Martina Hallegger, Jernej Ule, Piera Pasinelli, Yan Poon, Jeetain Mittal, Nicolas L Fawzi, Ben E Black, Christopher J Donnelly, Brigid K Jensen, James Shorter

Abstract

Science. 2026 May 7;392(6798):eadv3301. doi: 10.1126/science.adv3301. Epub 2026 May 7.

ABSTRACT

Aberrant aggregation of the prion-like RNA binding protein TDP-43 drives several fatal neurodegenerative proteinopathies, including amyotrophic lateral sclerosis (ALS). In this work, we define how short, specific RNAs solubilize TDP-43. These short RNAs engage and stabilize the TDP-43 RNA recognition motifs, which allosterically destabilizes a conserved helical region in the prion-like domain, thereby promoting aggregation-resistant conformers. Sequence-space mining identified short RNA chaperones with enhanced activity against TDP-43 and disease-linked variants. Enhanced short RNA chaperones mitigated aberrant TDP-43 phenotypes in optogenetic models and in ALS patient-derived and control motor neurons. In mice with cytoplasmic TDP-43 aggregation and motor neuron loss, an enhanced short RNA chaperone reduced pathological aggregation, restored TDP-43 function, and conferred neuroprotection. These results define a mechanistic and therapeutic framework for RNA-based strategies to counter TDP-43 proteinopathies.

PMID:42096556 | DOI:10.1126/science.adv3301

UK DRI Authors

Prof Jernej Ule

Centre Director & Research Division Lead

Deciphering the role of RNA in amyotrophic lateral sclerosis and frontotemporal dementia

Prof Jernej Ule