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呼吸诱导的辅酶 Q 生物合成受 Cat5p/Coq7p 的磷酸化循环调控。

Respiratory-induced coenzyme Q biosynthesis is regulated by a phosphorylation cycle of Cat5p/Coq7p.

机构信息

Departamento de Fisiología, Anatomía y Biología Celular, Centro Andaluz de Biología del Desarrollo, Universidad Pablo de Olavide-CSIC, CIBERER Instituto de Salud Carlos III, Sevilla 41013, Spain.

出版信息

Biochem J. 2011 Nov 15;440(1):107-14. doi: 10.1042/BJ20101422.

Abstract

CoQ(6) (coenzyme Q(6)) biosynthesis in yeast is a well-regulated process that requires the final conversion of the late intermediate DMQ(6) (demethoxy-CoQ(6)) into CoQ(6) in order to support respiratory metabolism in yeast. The gene CAT5/COQ7 encodes the Cat5/Coq7 protein that catalyses the hydroxylation step of DMQ(6) conversion into CoQ(6). In the present study, we demonstrated that yeast Coq7 recombinant protein purified in bacteria can be phosphorylated in vitro using commercial PKA (protein kinase A) or PKC (protein kinase C) at the predicted amino acids Ser(20), Ser(28) and Thr(32). The total absence of phosphorylation in a Coq7p version containing alanine instead of these phospho-amino acids, the high extent of phosphorylation produced and the saturated conditions maintained in the phosphorylation assay indicate that probably no other putative amino acids are phosphorylated in Coq7p. Results from in vitro assays have been corroborated using phosphorylation assays performed in purified mitochondria without external or commercial kinases. Coq7p remains phosphorylated in fermentative conditions and becomes dephosphorylated when respiratory metabolism is induced. The substitution of phosphorylated residues to alanine dramatically increases CoQ(6) levels (256%). Conversely, substitution with negatively charged residues decreases CoQ(6) content (57%). These modifications produced in Coq7p also alter the ratio between DMQ(6) and CoQ(6) itself, indicating that the Coq7p phosphorylation state is a regulatory mechanism for CoQ(6) synthesis.

摘要

在酵母中,CoQ(6)(辅酶 Q(6))的生物合成是一个受到严格调控的过程,需要将晚期中间体 DMQ(6)(脱甲氧基-CoQ(6))最终转化为 CoQ(6),以支持酵母中的呼吸代谢。CAT5/COQ7 基因编码 Cat5/Coq7 蛋白,该蛋白催化 DMQ(6)转化为 CoQ(6)的羟化步骤。在本研究中,我们证明了在细菌中纯化的酵母 Coq7 重组蛋白可以使用商业 PKA(蛋白激酶 A)或 PKC(蛋白激酶 C)在预测的氨基酸 Ser(20)、Ser(28)和 Thr(32)处进行体外磷酸化。在 Coq7p 版本中,这些磷酸化氨基酸被丙氨酸取代时,完全没有磷酸化,在磷酸化测定中产生的磷酸化程度很高,并且保持饱和条件,这表明在 Coq7p 中可能没有其他假定的氨基酸被磷酸化。使用没有外部或商业激酶的纯化线粒体进行的磷酸化测定验证了体外测定的结果。在发酵条件下,Coq7p 保持磷酸化状态,当呼吸代谢被诱导时,Coq7p 去磷酸化。将磷酸化残基突变为丙氨酸会显著增加 CoQ(6)水平(256%)。相反,用带负电荷的残基取代会降低 CoQ(6)含量(57%)。Coq7p 中的这些修饰还改变了 DMQ(6)和 CoQ(6)本身之间的比例,表明 Coq7p 的磷酸化状态是 CoQ(6)合成的一种调节机制。

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