Partners of Rpb8p, a Small Subunit Shared by Yeast RNA Polymerases I, II, and III

Author:

Briand Jean-François1,Navarro Francisco1,Rematier Peggy1,Boschiero Claire1,Labarre Sylvie1,Werner Michel1,Shpakovski George V.12,Thuriaux Pierre1

Affiliation:

1. Service de Biochimie and Génétique Moléculaire, CEA/Saclay, F-91191 Gif-sur-Yvette, France, 1 and

2. Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, 117871 Moscow GSP-7 V437, Russia2

Abstract

ABSTRACT Rpb8p, a subunit common to the three yeast RNA polymerases, is conserved among eukaryotes and absent from noneukaryotes. Defective mutants were found at an invariant GGLLM motif and at two other highly conserved amino acids. With one exception, they are clustered on the Rpb8p structure. They all impair a two-hybrid interaction with a fragment conserved in the largest subunits of RNA polymerases I (Rpa190p), II (Rpb1p), and III (Rpc160p). This fragment corresponds to the pore 1 module of the RNA polymerase II crystal structure and bears a highly conserved motif (P.I.KP..LW.GKQ) facing the GGLLM motif of Rpb8p. An RNA polymerase I mutant ( rpa190-G728D ) at the invariant glycyl of P.I.KP..LW. G KQ provokes a temperature-sensitive defect. Increasing the gene dosage of another common subunit, Rpb6p, suppresses this phenotype. It also suppresses a conditional growth defect observed when replacing Rpb8p by its human counterpart. Hence, Rpb6p and Rpb8p functionally interact in vivo. These two subunits are spatially separated by the pore 1 module and may also be possibly connected by the disorganized N half of Rpb6p, not included in the present structure data. Human Rpb6p is phosphorylated at its N-terminal Ser2, but an alanyl replacement at this position still complements an rpb6 -Δ null allele. A two-hybrid interaction also occurs between Rpb8p and the product of orphan gene YGR089w . A ygr089- Δ null mutant has no detectable growth defect but aggravates the conditional growth defect of rpb8 mutants, suggesting that the interaction with Rpb8p may be physiologically relevant.

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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