Seeger M, Gordon C, Ferrell K, Dubiel W
Institute of Biochemistry, Humboldt-University Medical Faculty (Charité), Berlin, Germany.
J Mol Biol. 1996 Nov 1;263(3):423-31. doi: 10.1006/jmbi.1996.0586.
We have isolated the 26 S protease from the fission yeast Schizosaccharomyces pombe. The affinity-purified enzyme contains the two regulatory ATPases mts2+, a homolog of human S4, and CIM5, a homolog of human MSS1 = S7. We show that mts3+, a homolog of the budding yeast NIN1 protein and human S14, is a true component of the 19 S regulatory complex from the fission yeast. The 26 S proteases purified from two thermosensitive mutants, mts2-1 and mts3-1, which arrest in cell cycle at the restrictive temperature (37 degrees C), have been compared with the wild-type enzyme after growing cells at permissive (25 degrees C) and non-permissive temperatures. We demonstrate that mutated mts2 protein is integrated into the protease complex prepared from mts2 cells, whereas mutated mts3 is not present in the 19 S regulatory complex from mts3 cells. The two mutant 26 S proteases isolated after growing cells at 37 degrees C remain stable for two hours at 37 degrees C as measured by ATP-dependent cleavage of the fluorogenic peptide sucLLVY-MCA. At the restrictive temperature, the mutant 26 S proteases do not degrade ubiquitin-[125I]lysozyme conjugates in an ATP-dependent manner, indicating that mts2+ and mts3+ are essential for ubiquitin conjugate degradation. This explains the conditional lethality of the mutants and the cell-cycle arrest in metaphase to anaphase transition. In addition, our data demonstrate that the ATPases of the 26 S enzyme are not redundant.
我们已经从裂殖酵母粟酒裂殖酵母中分离出了26S蛋白酶。亲和纯化的酶含有两种调节性ATP酶,即与人类S4同源的mts2 +和与人类MSS1 = S7同源的CIM5。我们发现,与芽殖酵母NIN1蛋白和人类S14同源的mts3 +是裂殖酵母19S调节复合物的一个真正组成部分。从两个温度敏感突变体mts2-1和mts3-1中纯化得到的26S蛋白酶,在限制温度(37摄氏度)下细胞周期会停滞,将其与在允许温度(25摄氏度)和非允许温度下培养的细胞中的野生型酶进行了比较。我们证明,突变的mts2蛋白整合到了从mts2细胞制备的蛋白酶复合物中,而突变的mts3并不存在于mts3细胞的19S调节复合物中。通过荧光肽sucLLVY-MCA的ATP依赖性切割测定,在37摄氏度下培养细胞后分离得到的两种突变型26S蛋白酶在37摄氏度下可保持两小时稳定。在限制温度下,突变型26S蛋白酶不能以ATP依赖性方式降解泛素-[125I]溶菌酶缀合物,这表明mts2 +和mts3 +对于泛素缀合物的降解至关重要。这解释了突变体的条件致死性以及细胞周期在中期到后期转变时的停滞。此外,我们的数据表明26S酶的ATP酶并非冗余。