Shpakovski G V, Acker J, Wintzerith M, Lacroix J F, Thuriaux P, Vigneron M
Département de Biologie Moléculaire et Cellulaire, Commissariat à l'Energie Atomique (Saclay), Gif-sur-Yvette, France.
Mol Cell Biol. 1995 Sep;15(9):4702-10. doi: 10.1128/MCB.15.9.4702.
Four cDNAs encoding human polypeptides hRPB7.0, hRPB7.6, hRPB17, and hRPB14.4 (referred to as Hs10 alpha, Hs10 beta, Hs8, and Hs6, respectively), homologous to the ABC10 alpha, ABC10 beta, ABC14.5, and ABC23 RNA polymerase subunits (referred to as Sc10 alpha, Sc10 beta, Sc8, and Sc6, respectively) of Saccharomyces cerevisiae, were cloned and characterized for their ability to complement defective yeast mutants. Hs10 alpha and the corresponding Sp10 alpha of Schizosaccharomyces pombe can complement an S. cerevisiae mutant (rpc10-delta::HIS3) defective in Sc10 alpha. The peptide sequences are highly conserved in their carboxy-terminal halves, with an invariant motif CX2CX12RCX2CGXR corresponding to a canonical zinc-binding domain. Hs10 beta, Sc10 beta, and the N subunit of archaeal RNA polymerase are homologous. An invariant CX2CGXnCCR motif presumably forms an atypical zinc-binding domain. Hs10 beta, but not the archaeal subunit, complemented an S. cerevisiae mutant (rpb10-delta 1::HIS3) lacking Sc10 beta. Hs8 complemented a yeast mutant (rpb8-delta 1::LYS2) defective in the corresponding Sc8 subunit, although with a strong thermosensitive phenotype. Interspecific complementation also occurred with Hs6 and with the corresponding Dm6 cDNA of Drosophila melanogaster. Hs6 cDNA and the Sp6 cDNA of S. pombe are dosage-dependent suppressors of rpo21-4, a mutation generating a slowly growing yeast defective in the largest subunit of RNA polymerase II. Finally, a doubly chimeric S. cerevisiae strain bearing the Sp6 cDNA and the human Hs10 beta cDNA was also viable. No interspecific complementation was observed for the human hRPB25 (Hs5) homolog of the yeast ABC27 (Sc5) subunit.
克隆了四个编码人类多肽hRPB7.0、hRPB7.6、hRPB17和hRPB14.4(分别称为Hs10α、Hs10β、Hs8和Hs6)的cDNA,它们与酿酒酵母的ABC10α、ABC10β、ABC14.5和ABC23 RNA聚合酶亚基(分别称为Sc10α、Sc10β、Sc8和Sc6)同源,并对其互补缺陷酵母突变体的能力进行了表征。粟酒裂殖酵母的Hs10α和相应的Sp10α可以互补酿酒酵母中Sc10α缺陷的突变体(rpc10-Δ::HIS3)。这些肽序列在其羧基末端的一半中高度保守,具有一个不变的基序CX2CX12RCX2CGXR,对应于一个典型的锌结合结构域。Hs10β、Sc10β和古细菌RNA聚合酶的N亚基是同源的。一个不变的CX2CGXnCCR基序可能形成一个非典型的锌结合结构域。Hs10β,而非古细菌亚基,互补了缺乏Sc10β的酿酒酵母突变体(rpb10-Δ1::HIS3)。Hs8互补了相应Sc8亚基缺陷的酵母突变体(rpb8-Δ1::LYS2),尽管具有强烈的温度敏感表型。Hs6与黑腹果蝇相应的Dm6 cDNA之间也发生了种间互补。Hs6 cDNA和粟酒裂殖酵母的Sp6 cDNA是rpo21-4的剂量依赖性抑制子,rpo21-4是一个导致RNA聚合酶II最大亚基缺陷的生长缓慢的酵母突变。最后,携带Sp6 cDNA和人类Hs10β cDNA的双嵌合酿酒酵母菌株也是可行的。未观察到酵母ABC27(Sc5)亚基的人类hRPB25(Hs5)同源物的种间互补。