Evolutionary divergence and functional insights into the heteromeric cis-prenyltransferase of Paramecium tetraurelia.

IF 4.2
Agnieszka Onysk, Kamil Steczkiewicz, Mariusz Radkiewicz, Paweł Link-Lenczowski, Przemysław Surowiecki, Karolina Sztompka, Kariona A Grabińska, Jacek K Nowak, Liliana Surmacz
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Abstract

The biosynthesis of polyprenyl/dolichyl phosphate, an essential lipid carrier in protein glycosylation, occurs across all domains of life. Eukaryotic heteromeric enzymes involved in polyprenyl chain elongation consist of a highly conserved catalytic cis-prenyltransferase subunit (CPT-CS) and a less conserved CPT-accessory subunit (CPT-AS). Here, we present the first experimental evidence that dolichol biosynthesis in Paramecium tetraurelia is mediated by a heteromeric CPT complex. Using a multidisciplinary experimental approach, we identified two highly homologous catalytic CPT subunits, CPT1a and CPT1b, which exhibit high sequence similarity to other eukaryotic CPTs, along with a unique CPT-AS, named POC1 (partner of CPT1), which is a structural and functional relative of the human dehydrodolichyl diphosphate synthase complex subunit NUS1 (also known as NgBR) and yeast Nus1 CPT-AS. Despite low sequence similarity to other CPT-ASs, it retained a well-preserved C-terminal substrate-binding domain characteristic of its eukaryotic and prokaryotic counterparts. The loss of POC1 or CPT1a, but not CPT1b, results in a deficit in dolichol production, leading to a significant reduction in glycoprotein content and, ultimately, to the P. tetraurelia cell death. In a heterologous yeast system, both CPTs in complex with POC1 synthesized polyprenyl chains. The identification of a POC1 protein so distinct from other CPT-ASs may spark further efforts to uncover CPT-AS proteins in pathogenic protozoa, which have so far eluded detection despite phylogenetic evidences that CPT of Apicomplexa and Trichomonas sp. are heteromeric enzymes. Given their substantial sequence divergence from human NgBR and its animal orthologues, these protozoan CPT-ASs could represent highly specific targets for antiparasitic therapies.

四甲草履虫异聚体顺戊烯基转移酶的进化分化及其功能研究。
聚戊烯基/多酰基磷酸的生物合成是蛋白质糖基化的重要脂质载体,发生在生命的所有领域。参与聚戊烯基链延伸的真核异聚酶包括一个高度保守的催化顺式戊烯基转移酶亚基(CPT-CS)和一个不太保守的cpt -辅助亚基(CPT-AS)。在这里,我们提出了第一个实验证据,证明四虫草履虫的醇生物合成是由异聚CPT复合物介导的。利用多学科实验方法,我们鉴定了两个高度同源的催化CPT亚基CPT1a和CPT1b,它们与其他真核CPT具有高度的序列相似性,以及一个独特的CPT- as,称为POC1 (CPT1的伴侣),它是人类脱氢多羟基二磷酸合成酶复合物亚基NUS1(也称为NgBR)和酵母NUS1 CPT- as的结构和功能亲戚。尽管与其他CPT-ASs的序列相似性较低,但它保留了真核生物和原核生物的c端底物结合结构域特征。POC1或CPT1a的缺失,而CPT1b的缺失,会导致乙醇产生的缺陷,导致糖蛋白含量的显著降低,并最终导致p.a tetraurelia细胞死亡。在异源酵母系统中,两个CPTs与POC1复合物合成聚戊烯基链。POC1蛋白的鉴定与其他CPT- as蛋白的区别可能会进一步激发在致病性原生动物中发现CPT- as蛋白的努力,尽管系统发育证据表明顶复虫和毛滴虫的CPT是异质酶,但迄今为止尚未检测到CPT- as蛋白。考虑到它们与人类NgBR及其动物同源物的序列差异,这些原生动物CPT-ASs可能是抗寄生虫治疗的高度特异性靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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