Department of Civil and Environmental Engineering, Rice University, Houston, Texas 77005, United States.
Environ Sci Technol. 2012 Mar 20;46(6):3433-41. doi: 10.1021/es203485f. Epub 2012 Mar 5.
Little is known about the potential impacts of accidental or incidental releases of manufactured nanomaterials to microbial ecosystem services (e.g., nutrient cycling). Here, quantum dots (QDs) coated with cationic polyethylenimine (PEI) were more toxic to pure cultures of nitrogen-cycling bacteria than QDs coated with anionic polymaleic anhydride-alt-1-octadecene (PMAO). Nitrifying bacteria (i.e., Nitrosomonas europaea) were much more susceptible than nitrogen fixing (i.e., Azotobacter vinelandii, Rhizobium etli, and Azospirillum lipoferum) and denitrifying bacteria (i.e., Pseudomonas stutzeri). Antibacterial activity was mainly exerted by the QDs rather than by their organic coating or their released QD components (e.g., Cd and Zn), which under the near-neutral pH tested (to minimize QD weathering) were released into the bacterial growth media at lower levels than their minimum inhibitory concentrations. Sublethal exposure to QDs stimulated the expression of genes associated with nitrogen cycling. QD-PEI (10 nM) induced three types of nitrogenase genes (nif, anf, and vnf) in A. vinelandii, and one ammonia monooxygenase gene (amoA) in N. europaea was up-regulated upon exposure to 1 nM QD-PEI. We previously reported up-regulation of denitrification genes in P. stutzeri exposed to low concentrations of QD-PEI. (1) Whether this surprising stimulation of nitrogen cycling activities reflects the need to generate more energy to overcome toxicity (in the case of nitrification or denitrification) or to synthesize organic nitrogen to repair or replace damaged proteins (in the case of nitrogen fixation) remains to be determined.
关于生产纳米材料意外或偶然释放对微生物生态系统服务(例如养分循环)的潜在影响知之甚少。在这里,带正电荷的聚乙烯亚胺(PEI)涂层量子点(QD)比带负电荷的聚马来酸酐-alt-1-十八烯(PMAO)涂层 QD 对纯氮循环细菌培养物更具毒性。硝化细菌(即欧洲亚硝化单胞菌)比固氮菌(即固氮菌、根瘤菌和生脂固氮螺菌)和反硝化细菌(即假单胞菌)更敏感。抗菌活性主要是由 QD 产生的,而不是由其有机涂层或释放的 QD 成分(例如 Cd 和 Zn)产生的,在测试的近中性 pH 条件下(尽量减少 QD 风化),它们在细菌生长培养基中的释放水平低于最低抑菌浓度。亚致死浓度的 QD 暴露会刺激与氮循环相关的基因表达。QD-PEI(10 nM)诱导 A. vinelandii 中三种固氮酶基因(nif、anf 和 vnf)的表达,而 1 nM QD-PEI 暴露会诱导 N. europaea 中一个氨单加氧酶基因(amoA)的上调。我们之前报道了低浓度 QD-PEI 暴露会导致 P. stutzeri 中反硝化基因的上调。(1)这种对氮循环活性的惊人刺激是否反映了需要产生更多的能量来克服毒性(在硝化或反硝化的情况下),或者合成有机氮来修复或取代受损的蛋白质(在固氮的情况下),还有待确定。