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丝状真菌黑曲霉中一种新型L-鼠李糖摄取转运蛋白的鉴定

Identification of a Novel L-rhamnose Uptake Transporter in the Filamentous Fungus Aspergillus niger.

作者信息

Sloothaak Jasper, Odoni Dorett I, Martins Dos Santos Vitor A P, Schaap Peter J, Tamayo-Ramos Juan Antonio

机构信息

Laboratory of Systems and Synthetic Biology, Wageningen University and Research, Stippeneng 4, Wageningen, The Netherlands.

LifeGlimmer GmbH, Markelstr. 38, 12163, Berlin, Germany.

出版信息

PLoS Genet. 2016 Dec 16;12(12):e1006468. doi: 10.1371/journal.pgen.1006468. eCollection 2016 Dec.

Abstract

The study of plant biomass utilization by fungi is a research field of great interest due to its many implications in ecology, agriculture and biotechnology. Most of the efforts done to increase the understanding of the use of plant cell walls by fungi have been focused on the degradation of cellulose and hemicellulose, and transport and metabolism of their constituent monosaccharides. Pectin is another important constituent of plant cell walls, but has received less attention. In relation to the uptake of pectic building blocks, fungal transporters for the uptake of galacturonic acid recently have been reported in Aspergillus niger and Neurospora crassa. However, not a single L-rhamnose (6-deoxy-L-mannose) transporter has been identified yet in fungi or in other eukaryotic organisms. L-rhamnose is a deoxy-sugar present in plant cell wall pectic polysaccharides (mainly rhamnogalacturonan I and rhamnogalacturonan II), but is also found in diverse plant secondary metabolites (e.g. anthocyanins, flavonoids and triterpenoids), in the green seaweed sulfated polysaccharide ulvan, and in glycan structures from viruses and bacteria. Here, a comparative plasmalemma proteomic analysis was used to identify candidate L-rhamnose transporters in A. niger. Further analysis was focused on protein ID 1119135 (RhtA) (JGI A. niger ATCC 1015 genome database). RhtA was classified as a Family 7 Fucose: H+ Symporter (FHS) within the Major Facilitator Superfamily. Family 7 currently includes exclusively bacterial transporters able to use different sugars. Strong indications for its role in L-rhamnose transport were obtained by functional complementation of the Saccharomyces cerevisiae EBY.VW.4000 strain in growth studies with a range of potential substrates. Biochemical analysis using L-[3H(G)]-rhamnose confirmed that RhtA is a L-rhamnose transporter. The RhtA gene is located in tandem with a hypothetical alpha-L-rhamnosidase gene (rhaB). Transcriptional analysis of rhtA and rhaB confirmed that both genes have a coordinated expression, being strongly and specifically induced by L-rhamnose, and controlled by RhaR, a transcriptional regulator involved in the release and catabolism of the methyl-pentose. RhtA is the first eukaryotic L-rhamnose transporter identified and functionally validated to date.

摘要

真菌对植物生物质的利用研究是一个备受关注的研究领域,因为它在生态学、农业和生物技术等方面具有诸多影响。为增进对真菌利用植物细胞壁的理解所做的大部分努力都集中在纤维素和半纤维素的降解以及它们组成单糖的运输和代谢上。果胶是植物细胞壁的另一个重要组成部分,但受到的关注较少。关于果胶构建模块的摄取,黑曲霉和粗糙脉孢菌中最近报道了用于摄取半乳糖醛酸的真菌转运蛋白。然而,在真菌或其他真核生物中尚未鉴定出单个L-鼠李糖(6-脱氧-L-甘露糖)转运蛋白。L-鼠李糖是一种存在于植物细胞壁果胶多糖(主要是鼠李半乳糖醛酸聚糖I和鼠李半乳糖醛酸聚糖II)中的脱氧糖,但也存在于多种植物次生代谢产物(如花色苷、黄酮类化合物和三萜类化合物)、绿藻硫酸化多糖岩藻聚糖以及病毒和细菌的聚糖结构中。在此,利用比较质膜蛋白质组学分析来鉴定黑曲霉中的候选L-鼠李糖转运蛋白。进一步的分析集中在蛋白质ID 1119135(RhtA)(JGI黑曲霉ATCC 1015基因组数据库)上。RhtA被归类为主要转运蛋白超家族中的第7家族岩藻糖:H⁺同向转运蛋白(FHS)。第7家族目前仅包括能够利用不同糖类的细菌转运蛋白。通过酿酒酵母EBY.VW.4000菌株在一系列潜在底物的生长研究中的功能互补,获得了其在L-鼠李糖运输中起作用的有力证据。使用L-[³H(G)]-鼠李糖的生化分析证实RhtA是一种L-鼠李糖转运蛋白。RhtA基因与一个假定的α-L-鼠李糖苷酶基因(rhaB)串联定位。rhtA和rhaB的转录分析证实这两个基因具有协调表达,受到L-鼠李糖的强烈且特异性诱导,并由参与甲基戊糖释放和分解代谢的转录调节因子RhaR控制。RhtA是迄今为止鉴定并功能验证的首个真核L-鼠李糖转运蛋白。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7476/5161314/f336910e4171/pgen.1006468.g001.jpg

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