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Complementary function of two transketolase isoforms from Moniliella megachiliensis in relation to stress response

机译:巨型莫氏菌的两种转酮醇酶同工型与应激反应的互补功能

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Two transketolase isogenes, MmTKL1 and MmTKL2, isolated from Moniliella megachiliensis were investigated for their roles in stress response and erythritol biosynthesis. The encoded proteins were highly homologous in amino acid sequence and domain structure. Two stress response elements (STREs) were found upstream of MmTKL1, while no STRE was found upstream of MmTKL2. In contrast, two Ap-1 elements were present upstream of MmTKL2, but none were detected upstream of MmTKL1. MmTKL2 partially complemented the aromatic amino acid auxotrophy of a Saccharomyces cerevisiae tkl1 deletion mutant, suggesting that at least one of the MmTKLs functioned as a transketolase in vivo. In response to short-term osmotic stress (20% glucose or 1.2?M NaCl) in Moniliella cells, MmTKL1 expression increased rapidly through the first 40?min before subsequently decreasing gradually, while MmTKL2 expression showed no significant change. In contrast, short-term oxidative stress (0.15?mM menadione) induced considerable increases in MmTKL2, while MmTKL1 expression remained low under the same conditions. Long-term osmotic stress (20% glucose) yielded increased expression of both genes starting at 12?h and continuing through 72?h. During either osmotic or oxidative stress, intracellular erythritol accumulation could clearly be correlated with the pattern of expression of either MmTKL1 or MmTKL2. These results strongly suggested that MmTKL1 is responsible primarily for the response to osmotic stress, while MmTKL2 is responsible primarily for the response to oxidative stress. Thus, we postulate that the two transketolase isoforms of M. megachiliensis play distinct and complementary roles in coordinating erythritol production in response to distinct environmental stresses.
机译:研究了从巨型莫氏菌中分离出的两种转酮酶同工酶MmTKL1和MmTKL2在应激反应和赤藓糖醇生物合成中的作用。编码的蛋白质在氨基酸序列和结构域结构上高度同源。在MmTKL1的上游发现了两个应激反应元件(STRE),而在MmTKL2的上游没有发现STRE。相反,在MmTKL2的上游存在两个Ap-1元件,但在MmTKL1的上游未检测到任何一个。 MmTKL2部分补充了酿酒酵母tkl1缺失突变体的芳香族氨基酸营养缺陷型,提示至少有一个MmTKLs在体内起转酮酶的作用。响应于Moniliella细胞中的短期渗透胁迫(20%葡萄糖或1.2?M NaCl),MmTKL1表达在开始的40分钟内迅速增加,随后逐渐降低,而MmTKL2表达无明显变化。相比之下,短期氧化应激(0.15?mM甲萘醌)引起MmTKL2的显着增加,而MmTKL1的表达在相同条件下仍然很低。长期渗透压(20%葡萄糖)使这两个基因的表达都从12?h开始,一直持续到72?h。在渗透性或氧化性应激期间,细胞内赤藓糖醇的积累可能与MmTKL1或MmTKL2的表达模式明显相关。这些结果强烈表明,MmTKL1主要负责对渗透压力的响应,而MmTKL2主要负责对氧化压力的响应。因此,我们假设M. megachiliensis的两个转酮醇酶同工型在协调赤藓糖醇生产以应对不同的环境胁迫中发挥不同的互补作用。

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