Arntzen Magnus Ø, Várnai Anikó, Mackie Roderick I, Eijsink Vincent G H, Pope Phillip B
Faculty of Chemistry, Biotechnology and Food Science, Norwegian University of Life Sciences, Ås, Norway.
Institute for Genomic Biology, and Department of Animal Sciences, University of Illinois at Urbana-Champaign, IL, USA.
Environ Microbiol. 2017 Jul;19(7):2701-2714. doi: 10.1111/1462-2920.13770. Epub 2017 May 29.
Fibrobacter succinogenes is an anaerobic bacterium naturally colonising the rumen and cecum of herbivores where it utilizes an enigmatic mechanism to deconstruct cellulose into cellobiose and glucose, which serve as carbon sources for growth. Here, we illustrate that outer membrane vesicles (OMVs) released by F. succinogenes are enriched with carbohydrate-active enzymes and that intact OMVs were able to depolymerize a broad range of linear and branched hemicelluloses and pectin, despite the inability of F. succinogenes to utilize non-cellulosic (pentose) sugars for growth. We hypothesize that the degradative versatility of F. succinogenes OMVs is used to prime hydrolysis by destabilising the tight networks of polysaccharides intertwining cellulose in the plant cell wall, thus increasing accessibility of the target substrate for the host cell. This is supported by observations that OMV-pretreatment of the natural complex substrate switchgrass increased the catalytic efficiency of a commercial cellulose-degrading enzyme cocktail by 2.4-fold. We also show that the OMVs contain a putative multiprotein complex, including the fibro-slime protein previously found to be important in binding to crystalline cellulose. We hypothesize that this complex has a function in plant cell wall degradation, either by catalysing polysaccharide degradation itself, or by targeting the vesicles to plant biomass.
琥珀酸丝状杆菌是一种厌氧细菌,天然定殖于食草动物的瘤胃和盲肠中,在那里它利用一种神秘机制将纤维素分解为纤维二糖和葡萄糖,这些糖作为其生长的碳源。在此,我们证明琥珀酸丝状杆菌释放的外膜囊泡(OMV)富含碳水化合物活性酶,并且完整的OMV能够解聚多种线性和支链半纤维素以及果胶,尽管琥珀酸丝状杆菌无法利用非纤维素(戊糖)糖进行生长。我们推测,琥珀酸丝状杆菌OMV的降解多功能性用于通过破坏植物细胞壁中与纤维素缠绕在一起的紧密多糖网络来启动水解作用,从而增加宿主细胞对目标底物的可及性。这一推测得到以下观察结果的支持:天然复合底物柳枝稷经OMV预处理后,商业纤维素降解酶混合物的催化效率提高了2.4倍。我们还表明,OMV含有一种假定的多蛋白复合物,包括先前发现对结合结晶纤维素很重要的纤维粘液蛋白。我们推测,这种复合物在植物细胞壁降解中发挥作用,要么通过自身催化多糖降解,要么通过将囊泡靶向植物生物质。