Blm10 and PI31 comprise a failsafe mechanism for proteasome inhibition
Abstract
Blm10 (PA200 in mammals) is an evolutionarily conserved regulator of the proteasome’s core particle (CP), a barrel-shaped complex that houses six individual protease subunits. Despite decades of study, Blm10’s function has remained unresolved. Here, we provide structural, biochemical, and genetic evidence that yeast Blm10 inhibits the proteasome and that it does so in cooperation with a second proteasome inhibitor, PI31 (also known as Fub1). Both proteins are highly enriched in CPs with abnormal subunit composition, suggesting that Blm10 and PI31 may function to neutralize aberrant proteasomes. We report an unexpected proteasome configuration in which Blm10’s dome-like structure completely encases PI31’s N-terminal domain, which sits outside and atop the CP, while PI31’s C-terminal domain is present inside the CP, simultaneously inhibiting all six active sites. These Blm10/PI31-bound CP are strongly deficient in degradation of both proteins and small peptides, and loss of both proteins results in strongly synergistic genetic phenotypes in vivo. These data suggest that Blm10 and PI31 constitute a partially redundant failsafe system for proteasome inhibition.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (8)
Darlene Fung
Department of Pathology, Harvard Medical School and Brigham and Women’s Hospital
Shaun Rawson
Harvard Cryo-Electron Microscopy Center for Structural Biology, Harvard Medical School
Richard M. Walsh
Harvard Cryo-Electron Microscopy Center for Structural Biology, Harvard Medical School
Erignacio Fermin Perez
Department of Pathology, Harvard Medical School and Brigham and Women’s Hospital
Urte Venclovaite
Department of Pathology, Harvard Medical School and Brigham and Women’s Hospital
Tamayanthi Rajakumar
Department of Pathology, Harvard Medical School and Brigham and Women’s Hospital
Benjamin Velez
Department of Pathology, Harvard Medical School and Brigham and Women’s Hospital
John Hanna