State Key Laboratory of Pollution Control and Resource Reuse, School of Environmental Science and Engineering, Tongji University, 1239 Siping Road, Shanghai 200092, China.
State Key Laboratory of Pollution Control and Resource Reuse, School of Environmental Science and Engineering, Tongji University, 1239 Siping Road, Shanghai 200092, China; Key Laboratory for Urban and Ecological Restoration of Shanghai, School of Ecology and Environmental Sciences, East China Normal University, Shanghai 200241, China.
Sci Total Environ. 2018 Feb 1;613-614:1240-1249. doi: 10.1016/j.scitotenv.2017.09.193. Epub 2017 Sep 24.
Functionalized single-walled carbon nanotubes (f-SWNTs) are widely used in many fields due to the unique structure and the excellent properties. Although these nanomaterials have been reported to enable to cause negative effects on denitrifying bacteria once they enter the environment, the toxic behaviors and regulatory mechanisms of f-SWNTs to denitrification remain unclear. In this study, the denitrification performance of a model denitrifier exposed to pristine and functionalized SWNTs was investigated, and the global transcriptional responses were comprehensively explored by RNA-seq and weighted gene-coexpression network analysis (WGCNA). Although both hydroxyl SWNTs (SWNTs-OH) and carboxyl SWNTs (SWNTs-COOH) showed inhibitory effects on bacterial denitrification, the former more severely inhibited denitrification than the latter. Transcriptional profiles showed that compared with SWNTs-COOH, SWNTs-OH much more strongly influenced the expressions of the key genes related to signal transduction, substance transport, electron transfer and transcriptional regulation. Functional analysis further indicated that the genes associated with substrate transport, carbon source metabolism and electron transfer underwent dramatic down-regulation. Using WGCNA, 12 gene modules were established corresponding to various types of carbon nanotubes, and eigengene adjacency analysis revealed the key gene modules related to denitrification performance under different conditions. Hub gene network analysis revealed the key regulatory factors of bacterial denitrification induced by f-SWNTs. The results suggested that f-SWNTs modulated the key genes responsible for the glycerolipid/free fatty acid (GL/FFA) cycle, and thus disturb processes associated with denitrification, including signaling process, energy homeostasis, intracellular redox balance and transportation.
功能化单壁碳纳米管(f-SWNTs)由于其独特的结构和优异的性能而被广泛应用于许多领域。尽管这些纳米材料已被报道一旦进入环境就会对反硝化细菌造成负面影响,但 f-SWNTs 对反硝化作用的毒性行为和调控机制仍不清楚。在本研究中,考察了模型反硝化菌暴露于原始和功能化 SWNTs 时的反硝化性能,并通过 RNA-seq 和加权基因共表达网络分析(WGCNA)全面探讨了全局转录响应。尽管羟基化 SWNTs(SWNTs-OH)和羧基化 SWNTs(SWNTs-COOH)都对细菌反硝化表现出抑制作用,但前者比后者更严重地抑制了反硝化作用。转录谱表明,与 SWNTs-COOH 相比,SWNTs-OH 更强烈地影响与信号转导、物质转运、电子传递和转录调控相关的关键基因的表达。功能分析进一步表明,与底物转运、碳源代谢和电子传递相关的基因发生了明显下调。使用 WGCNA,建立了 12 个对应于不同类型碳纳米管的基因模块,特征基因邻接分析揭示了不同条件下与反硝化性能相关的关键基因模块。枢纽基因网络分析揭示了 f-SWNTs 诱导细菌反硝化的关键调控因子。结果表明,f-SWNTs 调节了负责甘油磷脂/游离脂肪酸(GL/FFA)循环的关键基因,从而干扰了与反硝化相关的过程,包括信号转导过程、能量稳态、细胞内氧化还原平衡和转运。