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Fcγ蛋白及其同源物在修饰的杂环嘧啶碱基分解代谢中的作用。

Role of Fcy Proteins and Their Homologs in the Catabolism of Modified Heterocyclic Pyrimidine Bases.

作者信息

Urbonavičius Jaunius, Vepštaitė-Monstavičė Iglė, Lukša-Žebelovič Juliana, Servienė Elena, Tauraitė Daiva

机构信息

Department of Chemistry and Bioengineering, Faculty of Fundamental Sciences, Vilnius Gediminas Technical University (VILNIUS TECH), Saulėtekio al. 11, 10223 Vilnius, Lithuania.

Laboratory of Genetics, State Scientific Research Institute Nature Research Centre, Akademijos Str. 2, 08412 Vilnius, Lithuania.

出版信息

Microorganisms. 2025 Jun 27;13(7):1506. doi: 10.3390/microorganisms13071506.

Abstract

The synthesis of various heterocyclic base modifications of nucleic acids has been thoroughly investigated; however, much less is known about their catabolism. Also, little is known about the transport of such compounds across the microbial cell membranes. Using the single-gene deletion library, we performed genome-wide screening for genes affecting the growth of yeast in minimal media supplemented with -acetylcytosine as a source of uracil. We found that Fcy1, Fcy21, Bud16, Gnd1, and Fur4 proteins are required for efficient growth in the tested medium. Additionally, we used several heterocyclic pyrimidine bases and Fcy homolog mutants to test their growth in respective minimal media. We found that tested permeases differently affect the growth of yeast that is dependent on the heterocyclic pyrimidine bases used as a source of uracil. The most pronounced effect was observed for the ∆ mutant, which was growing much slower than the corresponding wild-type strain in the media supplemented with -acetylcytosine, 4-methylthiouracil, -methylcytosine, ,-dimethylcytosine, 2-thiouracil, or 4-thiouracil. We suggest that Fur4 protein is the major yeast transporter of modified heterocyclic pyrimidine bases. Our observations might be helpful when investigating the actions of various heterocyclic base-based antifungal, anticancer, and antiviral drugs.

摘要

核酸各种杂环碱基修饰的合成已得到深入研究;然而,关于它们的分解代谢却知之甚少。此外,对于这类化合物跨微生物细胞膜的转运也了解甚少。利用单基因缺失文库,我们在以β-乙酰胞嘧啶作为尿嘧啶来源的基本培养基中,对影响酵母生长的基因进行了全基因组筛选。我们发现,Fcy1、Fcy21、Bud16、Gnd1和Fur4蛋白是在测试培养基中高效生长所必需的。此外,我们使用了几种杂环嘧啶碱基和Fcy同源突变体来测试它们在各自基本培养基中的生长情况。我们发现,所测试的通透酶对依赖用作尿嘧啶来源的杂环嘧啶碱基的酵母生长有不同影响。在Δ突变体中观察到最显著的影响,在补充有β-乙酰胞嘧啶、4-甲基硫代尿嘧啶、β-甲基胞嘧啶、α,β-二甲基胞嘧啶、2-硫代尿嘧啶或4-硫代尿嘧啶的培养基中,其生长速度比相应的野生型菌株慢得多。我们认为Fur4蛋白是修饰杂环嘧啶碱基的主要酵母转运蛋白。我们的观察结果可能有助于研究各种基于杂环碱基的抗真菌、抗癌和抗病毒药物的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e155/12299217/123154053387/microorganisms-13-01506-g001.jpg

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