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首页> 外文期刊>Eukaryotic cell >Characterization of KlGRR1 and SMS1 Genes, Two New Elements of the Glucose Signaling Pathway of Kluyveromyces lactis
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Characterization of KlGRR1 and SMS1 Genes, Two New Elements of the Glucose Signaling Pathway of Kluyveromyces lactis

机译:KlGRR1和SMS1基因的表征,乳酸克鲁维酵母的葡萄糖信号通路的两个新元素。

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The expression of the major glucose transporter gene, RAG1, is induced by glucose in Kluyveromyces lactis. This regulation involves several pathways, including one that is similar to Snf3/Rgt2-ScRgt1 in Saccharomyces cerevisiae. We have identified missing key components of the K. lactis glucose signaling pathway by comparison to the same pathway of S. cerevisiae. We characterized a new mutation, rag19, which impairs RAG1 regulation. The Rag19 protein is 43% identical to the F-box protein ScGrr1 of S. cerevisiae and is able to complement an Scgrr1 mutation. In the K. lactis genome, we identified a single gene, SMS1 (for similar to Mth1 and Std1), that encodes a protein showing an average of 50% identity with Mth1 and Std1, regulators of the ScRgt1 repressor. The suppression of the rag4 (glucose sensor), rag8 (casein kinase I), and rag19 mutations by the Δsms1 deletion, together with the restoration of RAG1 transcription in the double mutants, demonstrates that Sms1 is a negative regulator of RAG1 expression and is acting downstream of Rag4, Rag8, and Rag19 in the cascade. We report that Sms1 regulates KlRgt1 repressor activity by preventing its phosphorylation in the absence of glucose, and that SMS1 is regulated by glucose, both at the transcriptional and the posttranslational level. Two-hybrid interactions of Sms1 with the glucose sensor and KlRgt1 repressor suggest that Sms1 mediates the glucose signal from the plasma membrane to the nucleus. All of these data demonstrated that Sms1 was the K. lactis homolog of MTH1 and STD1 of S. cerevisiae. Interestingly, MTH1 and STD1 were unable to complement a Δsms1 mutation.
机译:葡萄糖诱导乳酸克鲁维酵母中主要的葡萄糖转运蛋白基因 RAG1 的表达。该调控涉及多种途径,包括与酿酒酵母中的Snf3 / Rgt2-ScRgt1类似的途径。我们已经确定了 K缺少的关键组件。与 S的相同途径相比,乳酸葡萄糖信号传导途径。啤酒酵母。我们表征了一个新的突变 rag19 ,它会破坏 RAG1 调控。 Rag19蛋白与 S的F-box蛋白ScGrr1具有43%的同一性。酿酒酵母,并能够补充Sc grr1 突变。在 K中。乳酸基因组,我们鉴定了一个单一基因 SMS1 (与 M th1和 S s > td1),该蛋白编码的蛋白质与ScRgt1阻遏物的调节子Mth1和Std1具有平均50%的同一性。 rag4 (葡萄糖传感器), rag8 (酪蛋白激酶I)和 rag19 突变通过Δ sms1 缺失以及 RAG1 转录在双突变体中的恢复,表明Sms1是 RAG1 表达的负调控子,并在Rag4,Rag8和级联中的Rag19。我们报告说,Sms1通过在不存在葡萄糖的情况下防止其磷酸化来调节KlRgt1阻遏物的活性,而 SMS1 在转录和翻译后水平上均受葡萄糖的调节。 Sms1与葡萄糖传感器和KlRgt1阻遏物的两种杂交相互作用表明Sms1介导了从质膜到细胞核的葡萄糖信号。所有这些数据证明Sms1是 K。 MTH1 S的 STD1 的乳酸同系物。啤酒酵母。有趣的是, MTH1 STD1 无法补充Δ sms1 突变。

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