Arisa Kubokawa, Ai Ohki, Risa Ono, Makoto Araki, Motoaki Yanaizu, Yoshihiro Kino
Neuronal Intranuclear Inclusion Disease (NIID) is caused by GGC repeat expansions in the 5' untranslated region of the notch 2 N-terminal like C (NOTCH2NLC) gene. An upstream open reading frame within the mutant transcript produces the NOTCH2NLC upstream open reading frame-derived polyglycine protein (uN2CpolyG) containing expanded polyglycine (polyG), which forms intranuclear inclusions. Although uN2CpolyG is thought to play a critical role in disease pathogenesis, the mechanisms underlying its toxicity and inclusion formation remain incompletely understood. In this study, we first expressed a pure GGC repeat encoding polyG in Neuro2a cells and identified aggregate-associated proteins by mass spectrometry. We then confirmed the formation of intracellular aggregates using both transient expression and drug-inducible expression systems for uN2CpolyG. Among the proteins identified by mass spectrometry, Calpain small subunit 1 (Capns1), the regulatory subunit of calpain, was found to be sequestered into uN2CpolyG aggregates. Notably, the N-terminus of Capns1 contains a glycine-rich sequence, which mediated its co-aggregation with uN2CpolyG. Furthermore, knockdown of Capns1 appeared to reduce the accumulation of uN2CpolyG aggregates. Collectively, these findings identify Capns1 as a potential modifier of NIID pathology.