Université de Lyon, Université Lyon 1, CNRS, UMR5557 d'Ecologie Microbienne, Villeurbanne, France.
ISME J. 2011 Dec;5(12):1871-80. doi: 10.1038/ismej.2011.67. Epub 2011 Jun 9.
Functional environmental genomics has the potential to identify novel biological functions that the systematic sequencing of microbial genomes or environmental DNA may fail to uncover. We targeted the functions expressed by soil eukaryotes using a metatranscriptomic approach based on the use of soil-extracted polyadenylated messenger RNA to construct environmental complementary DNA expression libraries. Functional complementation of a yeast mutant defective in di/tripeptide uptake identified a novel family of oligopeptide transporters expressed by fungi. This family has a patchy distribution in the Basidiomycota and Ascomycota and is present in the genome of a Saccharomyces cerevisiae wine strain. High throughput phenotyping of yeast mutants expressing two environmental transporters showed that they both displayed broad substrate specificity and could transport more than 60-80 dipeptides. When expressed in Xenopus oocytes one environmental transporter induced currents upon dipeptide addition, suggesting proton-coupled co-transport of dipeptides. This transporter was also able to transport specifically cysteine. Deletion of the two copies of the corresponding gene family members in the genome of the wine yeast strain severely reduced the number of dipeptides that it could assimilate. These results demonstrate that these genes are functional and can be used by fungi to efficiently scavenge the numerous, low concentration, oligopeptides continuously generated in soils by proteolysis.
功能环境基因组学有可能发现新的生物学功能,而系统测序微生物基因组或环境 DNA 可能无法揭示这些功能。我们使用基于土壤提取多聚腺苷酸化信使 RNA 构建环境 cDNA 表达文库的方法,针对土壤真核生物表达的功能进行了宏转录组学研究。通过对酵母中双/三肽摄取缺陷突变体的功能互补,鉴定了一类由真菌表达的新型寡肽转运蛋白家族。该家族在担子菌和子囊菌中分布不均,存在于酿酒酵母葡萄酒菌株的基因组中。对表达两种环境转运蛋白的酵母突变体进行高通量表型分析表明,它们都具有广泛的底物特异性,可以转运 60-80 多种二肽。当在非洲爪蟾卵母细胞中表达时,一种环境转运蛋白在添加二肽后会诱导电流,表明二肽的质子偶联共转运。该转运蛋白还能够特异性地转运半胱氨酸。在葡萄酒酵母菌株的基因组中删除两个拷贝的相应基因家族成员,严重减少了其可以同化的二肽数量。这些结果表明这些基因是功能性的,可以被真菌用来有效地从土壤中蛋白酶解连续产生的大量低浓度寡肽中进行有效吸收。