Soto Teresa, Franco Alejandro, Padmanabhan S, Vicente-Soler Jero, Cansado Jose, Gacto Mariano
Department of Genetics and Microbiology, Facultad de Biología, University of Murcia, Spain.
Eur J Biochem. 2002 Aug;269(15):3847-55. doi: 10.1046/j.1432-1033.2002.03082.x.
Trehalose metabolism is an essential component of the stress response in yeast cells. In this work we show that the products of the principal genes involved in trehalose metabolism in Schizosaccharomyces pombe, tps1+ (coding for trehalose-6-P synthase, Tps1p), ntp1+ (encoding neutral trehalase, Ntp1p) and tpp1+ (that codes for trehalose-6-P phosphatase, Tpp1p), interact in vitro with each other and with themselves to form protein complexes. Disruption of the gene tps1+ blocks the activation of the neutral trehalase induced by heat shock but not by osmotic stress. We propose that this association may reflect the Tps1p-dependent requirement for thermal activation of trehalase. Data reported here indicate that following a heat shock the enzyme activity of trehalase is associated with Ntp1p dimers or trimers but not with either Ntp1p monomers or with complexes involving Tps1p. These results raise the possibility that heat shock and osmotic stress activate trehalase differentially by acting in the first case through an specific mechanism involving Tps1p-Ntp1p complexes. This study provides the first evidence for the participation of the catabolic enzyme trehalase in the structural framework of a regulatory macromolecular complex containing trehalose-6-P synthase in the fission yeast.
海藻糖代谢是酵母细胞应激反应的重要组成部分。在本研究中,我们发现裂殖酵母中参与海藻糖代谢的主要基因产物,即tps1⁺(编码海藻糖-6-磷酸合酶,Tps1p)、ntp1⁺(编码中性海藻糖酶,Ntp1p)和tpp1⁺(编码海藻糖-6-磷酸磷酸酶,Tpp1p),在体外相互作用并自身形成蛋白质复合物。tps1⁺基因的破坏阻断了热休克诱导的中性海藻糖酶的激活,但不影响渗透胁迫诱导的激活。我们认为这种关联可能反映了海藻糖酶热激活对Tps1p的依赖性需求。此处报道的数据表明,热休克后,海藻糖酶的酶活性与Ntp1p二聚体或三聚体相关,而与Ntp1p单体或涉及Tps1p的复合物无关。这些结果增加了一种可能性,即热休克和渗透胁迫通过在第一种情况下通过涉及Tps1p-Ntp1p复合物的特定机制起作用,从而以不同方式激活海藻糖酶。本研究首次证明了分解代谢酶海藻糖酶参与裂殖酵母中含有海藻糖-6-磷酸合酶的调节性大分子复合物的结构框架。