Wenxuan Huang, Feng Wang, Xue Xia, Shiyu Fang, Xiaoshi Cheng, Aijuan Zhou, Leiyu Feng, Dongbo Wang and Jingyang Luo*,
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However, TA further modulated the soluble proteins structure by hydrogen bonding and hydrophobic interactions, resulting in the decrease of proteins bioavailability and consequential alteration of metabolic substrate feature. These changes reshaped the microbial community and stimulated adaptive regulatory systems in hydrolytic–acidogenic bacteria. The keystone species for carbohydrate metabolism (i.e., <i>Solobacterium</i> and <i>Erysipelotrichaceae</i>) were preferentially enriched. Also, the typical quorum sensing (i.e., enhancing substrate transport) and two-component systems (i.e., sustaining high metabolic activit<i>y</i>) were activated to promote the microbial networks connectivity and ecological cooperative behaviors in response to TA stress. 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引用次数: 0
摘要
厌氧发酵是实现废弃活性污泥(WAS)资源有效回收和利用的重要途径,但其整体效率通常受到不良干扰物(即化学脱水剂)的限制。这项研究揭示了生物脱水单宁酸(TA)对 WAS 厌氧发酵过程中挥发性脂肪酸(VFAs)生物合成的积极影响。在TA产生的系统中,乙酸盐和丁酸盐的富集使挥发性脂肪酸的总产量显著增加了15.6倍。TA 能够分解细胞外的高分子物质,从而促进有机物的整体释放。然而,TA 通过氢键和疏水作用进一步调节了可溶性蛋白质的结构,导致蛋白质生物利用率降低,代谢底物特征随之改变。这些变化重塑了微生物群落,刺激了水解产酸菌的适应性调节系统。碳水化合物代谢的关键物种(即 Solobacterium 和 Erysipelotrichaceae)优先富集。同时,典型的法定量感应(即加强底物运输)和双组分系统(即维持高代谢活性)也被激活,以促进微生物网络的连通性和生态合作行为,从而应对 TA 压力。此外,负责碳水化合物水解、跨膜运输和细胞内代谢以及 VFA 生物合成的代谢功能相对丰度增加,从而维持了 VFAs 生物合成的高微生物活性。这项研究强调了生物脱水技术在资源回收背景下处理 WAS 的优势,并破译了其中的互动机制。
Tannic Acid Modulation of Substrate Utilization, Microbial Community, and Metabolic Traits in Sludge Anaerobic Fermentation for Volatile Fatty Acid Promotion
Anaerobic fermentation is a crucial route to realize effective waste activated sludge (WAS) resource recovery and utilization, while the overall efficiency is commonly restrained by undesirable disruptors (i.e., chemical dewatering agents). This work unveiled the unexpectedly positive effects of biodewatering tannic acid (TA) on the volatile fatty acids (VFAs) biosynthesis during WAS anaerobic fermentation. The total VFAs yield was remarkably increased by 15.6 folds with enriched acetate and butyrate in TA-occurred systems. TA was capable to disintegrate extracellular polymeric substances to promote the overall organics release. However, TA further modulated the soluble proteins structure by hydrogen bonding and hydrophobic interactions, resulting in the decrease of proteins bioavailability and consequential alteration of metabolic substrate feature. These changes reshaped the microbial community and stimulated adaptive regulatory systems in hydrolytic–acidogenic bacteria. The keystone species for carbohydrate metabolism (i.e., Solobacterium and Erysipelotrichaceae) were preferentially enriched. Also, the typical quorum sensing (i.e., enhancing substrate transport) and two-component systems (i.e., sustaining high metabolic activity) were activated to promote the microbial networks connectivity and ecological cooperative behaviors in response to TA stress. Additionally, the metabolic functions responsible for carbohydrate hydrolysis, transmembrane transport, and intracellular metabolism as well as VFA biosynthesis showed increased relative abundance, which maintained high microbial activities for VFAs biosynthesis. This study underscored the advantages of biodewatering TA for WAS treatment in the context of resource recovery and deciphered the interactive mechanisms.
期刊介绍:
Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences.
Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.