Department of Chemical Engineering, University of California Santa Barbara, Rm 3357 Engineering II, Santa Barbara, CA, 93106, USA.
J Ind Microbiol Biotechnol. 2019 Oct;46(9-10):1427-1433. doi: 10.1007/s10295-019-02188-0. Epub 2019 May 14.
Anaerobic gut fungi are biomass degraders that form syntrophic associations with other microbes in their native rumen environment. Here, RNA-Seq was used to track and quantify carbohydrate active enzyme (CAZyme) transcription in a synthetic consortium composed of the anaerobic fungus Anaeromyces robustus with methanogen Methanobacterium bryantii. Approximately 5% of total A. robustus genes were differentially regulated in co-culture with M. bryantii relative to cultivation of A. robustus alone. We found that 105 CAZymes (12% of the total predicted CAZymes of A. robustus) were upregulated while 29 were downregulated. Upregulated genes encode putative proteins with a wide array of cellulolytic, xylanolytic, and carbohydrate transport activities; 75% were fused to fungal dockerin domains, associated with a carbohydrate binding module, or both. Collectively, this analysis suggests that co-culture of A. robustus with M. bryantii remodels the transcriptional landscape of CAZymes and associated metabolic pathways in the fungus to aid in lignocellulose breakdown.
厌氧肠道真菌是生物质降解者,它们在其原生瘤胃环境中与其他微生物形成共生关系。在这里,使用 RNA-Seq 跟踪和量化由厌氧真菌 Anaeromyces robustus 与产甲烷菌 Methanobacterium bryantii 组成的合成群落中的碳水化合物活性酶 (CAZyme) 转录。与单独培养 A. robustus 相比,在与 M. bryantii 共培养时,A. robustus 中约有 5%的总基因受到差异调节。我们发现,105 种 CAZymes(A. robustus 总预测 CAZymes 的 12%)上调,而 29 种下调。上调的基因编码具有广泛的纤维素、木聚糖和碳水化合物转运活性的假定蛋白;75%与真菌 dockerin 结构域融合,与碳水化合物结合模块相关或两者兼有。总的来说,这项分析表明,A. robustus 与 M. bryantii 的共培养重塑了真菌中 CAZymes 及其相关代谢途径的转录景观,以帮助木质纤维素的分解。