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Sulfate assimilation regulates hydrogen sulfide production independent of lifespan and reactive oxygen species under methionine restriction condition in yeast

机译:在蛋氨酸限制条件下酵母中硫酸盐同化作用可调节硫化氢的产生而不受其寿命和活性氧的影响

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摘要

Endogenously produced hydrogen sulfide was proposed to be an underlying mechanism of lifespan extension via methionine restriction. However, hydrogen sulfide regulation and its beneficial effects via methionine restriction remain elusive. Here, we identified the genes required to increase hydrogen sulfide production under methionine restriction condition using genome-wide high-throughput screening in yeast strains with single-gene deletions. Sulfate assimilation-related genes, such as MET1, MET3, MET5, and MET10, were found to be particularly crucial for hydrogen sulfide production. Interestingly, methionine restriction failed to increase hydrogen sulfide production in mutant strains; however, it successfully extended chronological lifespan and reduced reactive oxygen species levels. Altogether, our observations suggested that increased hydrogen sulfide production via methionine restriction is not the mechanism underlying extended yeast lifespan, even though increased hydrogen sulfide production occurred simultaneously with yeast lifespan extension under methionine restriction condition.
机译:内源性产生的硫化氢被认为是通过蛋氨酸限制延长寿命的潜在机制。然而,硫化氢调节及其通过蛋氨酸限制的有益作用仍然难以捉摸。在这里,我们使用具有单基因缺失的酵母菌株,通过全基因组高通量筛选,鉴定了在蛋氨酸限制性条件下增加硫化氢产量所需的基因。硫酸盐同化相关的基因,例如MET1,MET3,MET5和MET10,被发现对于硫化氢的生产特别重要。有趣的是,限制蛋氨酸不能增加突变菌株中硫化氢的产生。但是,它成功地延长了时间寿命并降低了活性氧的含量。总的来说,我们的观察结果表明,尽管在蛋氨酸限制条件下,硫化氢产量增加与酵母寿命延长同时发生,但通过蛋氨酸限制增加硫化氢产量并不是延长酵母寿命的根本机制。

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