Proteolysis of Mutant Huntingtin Produces an Exon 1 Fragment That Accumulates as an Aggregated Protein in Neuronal Nuclei in Huntington Disease

Christian Landles, Kirupa Sathasivam, Andreas Weiss, Ben Woodman, Hilary Moffitt, Steve Finkbeiner, Banghua Sun, Juliette Gafni, Lisa M. Ellerby, Yvon Trottier, William G. Richards, Alex Osmand, Paolo Paganetti, Gillian P. Bates

Research output: Contribution to journalArticlepeer-review

260 Citations (Scopus)

Abstract

Huntingtin proteolysis has been implicated in the molecular pathogenesis of Huntington disease (HD). Despite an intense effort, the identity of the pathogenic smallest N-terminal fragment has not been determined. Using a panel of anti-huntingtin antibodies, we employed an unbiased approach to generate proteolytic cleavage maps of mutant and wild-type huntingtin in the HdhQ150 knock-in mouse model of HD. We identified 14 prominent N-terminal fragments, which, in addition to the full-length protein, can be readily detected in cytoplasmic but not nuclear fractions. These fragments were detected at all ages and are not a consequence of the pathogenic process. We demonstrated that the smallest fragment is an exon 1 huntingtin protein, known to contain a potent nuclear export signal. Prior to the onset of behavioral phenotypes, the exon 1 protein, and possibly other small fragments, accumulate in neuronal nuclei in the form of a detergent insoluble complex, visualized as diffuse granular nuclear staining in tissue sections. This methodology can be used to validate the inhibition of specific proteases as therapeutic targets for HD by pharmacological or genetic approaches.
Original languageEnglish
Pages (from-to)8808 - 8823
Number of pages16
JournalJournal of Biological Chemistry
Volume285
Issue number12
DOIs
Publication statusPublished - 19 Mar 2010

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