te Heesen S, Aebi M
Institut für Molekularbiologie I, Universität Zürich, Switzerland.
Eur J Biochem. 1994 Jun 1;222(2):631-7. doi: 10.1111/j.1432-1033.1994.tb18906.x.
The endoplasmic binding protein BiP and N-linked glycosylation are proposed to be essential components in the processing pathway of secreted protein. In Saccharomyces cerevisiae, BiP is encoded by the KAR2 gene; WBP1 encodes an essential component of the N-oligosaccharyltransferase complex. wbp1 mutations result in reduced oligosaccharyltransferase activity and a temperature-sensitive phenotype. We show that a combination of kar2 and wbp1 mutations results in a synthetic phenotype with a strongly reduced growth rate at the permissive temperature. To investigate the role of N-linked glycosylation in BiP function, the processing of non-glycosylated carboxypeptidase was followed in different kar2 strains at the permissive temperature. In all kar2 strains, the processing of non-glycosylated carboxypeptidase Y was drastically reduced. A specific BiP/non-glycosylated carboxypeptidase Y complex was detected in kar2-159 and kar2-203 cells whereas the kar2-1 mutation did not result in such a complex. Our data show that BiP and N-linked glycosylation are directly involved in the processing of secreted proteins. The results support the hypothesis that BiP stabilizes the folding-competent and assembly-competent state of a polypeptide, whereas N-linked oligosaccharides are structural components required in the folding process after the polypeptide is released from BiP.
内质网结合蛋白BiP和N-连接糖基化被认为是分泌蛋白加工途径中的重要组成部分。在酿酒酵母中,BiP由KAR2基因编码;WBP1编码N-寡糖基转移酶复合物的一个必需组分。wbp1突变导致寡糖基转移酶活性降低和温度敏感型表型。我们发现kar2和wbp1突变的组合会导致一种合成表型,在允许温度下生长速率大幅降低。为了研究N-连接糖基化在BiP功能中的作用,在允许温度下,在不同的kar2菌株中追踪非糖基化羧肽酶的加工过程。在所有kar2菌株中,非糖基化羧肽酶Y的加工过程都大幅减少。在kar2-159和kar2-203细胞中检测到一种特定的BiP/非糖基化羧肽酶Y复合物,而kar2-1突变并未产生这样的复合物。我们的数据表明,BiP和N-连接糖基化直接参与分泌蛋白的加工过程。这些结果支持了这样的假说:BiP稳定多肽的折叠能力和组装能力状态,而N-连接寡糖是多肽从BiP释放后折叠过程中所需的结构组分。