Abstract
Abstract
The RNA exosome is an essential, evolutionarily conserved ribonuclease complex that processes and degrades many classes of RNA. The complex is composed of three structural cap subunits (EXOSC1-3/Csl4, Rrp4, Rrp40; H. sapiens/S. cerevisiae), six structural core subunits (EXOSC4-9/Rrp41,Rrp46,Mtr3,Rrp42,Rrp43,Rrp45), and a catalytic ribonuclease (DIS3 or DIS3L/Dis3). Cofactors that associate with the RNA exosome confer specificity to target specific RNAs for processing and/or decay. Missense mutations in genes encoding structural subunits of the RNA exosome have been linked to neurological diseases. Notably, several pathogenic mutations have been identified in EXOSC3 that are associated with pontocerebellar hypoplasia type 1b (PCH1b). These pathogenic alleles cause a broad spectrum of clinical severity, suggesting variant-specific functional consequences. Given the high degree of conservation between the human and budding yeast RNA exosome complexes, we performed a systematic analysis of eight pathogenic EXOSC3 variants modeled in budding yeast Rrp40. We find that two Rrp40 variants cause growth defects, show distinct negative genetic interactions with RNA exosome cofactor mutants, and impair RNA processing in budding yeast. One of these variants, EXOSC3-Y109N/Rrp40-Y64N, had not been previously characterized in any mechanistic studies. Computational stability predictions and immunoblot analyses indicate that most EXOSC3/Rrp40 variants display reduced steady-state protein levels, but decreased protein levels do not strictly correlate with phenotype or disease severity, suggesting that individual variants disrupt RNA exosome function through distinct mechanisms. Collectively, our studies suggest that pathogenic EXOSC3 variants alter RNA exosome function through distinct mechanisms and provide insight into the specific molecular defects that could underlie pathology.