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功能化石墨烯对苯并[a]芘高效降解菌Paracoccus aminovorans HPD-2生长的促进作用 被引量:2
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作者 毛婷玉 任文杰 +1 位作者 刘方 滕应 《环境科学学报》 CAS CSCD 北大核心 2020年第1期251-259,共9页
研究石墨烯对微生物生长的影响,深入探讨石墨烯和微生物之间的相互作用,对科学评估石墨烯的生态安全性具有重要的现实意义.本文研究了两种功能化石墨烯(氧化石墨烯和磺化石墨烯)对苯并[a]芘高效降解菌Paracoccus aminovorans HPD-2生长... 研究石墨烯对微生物生长的影响,深入探讨石墨烯和微生物之间的相互作用,对科学评估石墨烯的生态安全性具有重要的现实意义.本文研究了两种功能化石墨烯(氧化石墨烯和磺化石墨烯)对苯并[a]芘高效降解菌Paracoccus aminovorans HPD-2生长的影响,并采用扫描电子显微镜(SEM)、拉曼光谱及红外光谱技术深入探讨了石墨烯与菌HPD-2之间的作用机制.结果表明,两种石墨烯对菌HPD-2生长的影响与培养体系中营养水平有关,石墨烯的种类和浓度也是重要影响因素.低浓度石墨烯(0~10 mg·L^-1)对菌HPD-2生长无影响,较高浓度石墨烯(100 mg·L^-1)能够显著促进菌HPD-2的生长(p<0.05).两种石墨烯均能促进菌HPD-2胞外聚合物的分泌.与菌HPD-2发生相互作用后,低浓度氧化石墨烯的D峰和G峰的相对强度比值(ID/IG)显著提高,结构无序性增加,较高浓度石墨烯与菌HPD-2发生了明显的相互作用,并在菌体表面存在一定程度的堆叠,细胞表面蛋白质、氨基酸和胞外多糖均参与了两者之间的相互作用;相比于氧化石墨烯,磺化石墨烯与菌HPD-2表面的作用较弱.研究结果有助于深入理解和科学评价石墨烯的微生物效应. 展开更多
关键词 多环芳烃 Paracoccus aminovorans 氧化石墨烯 磺化石墨烯 微生物生长
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一株1,4-二噁烷降解菌的分离及其降解性能解析
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作者 张玥 赵联芳 +3 位作者 田坤 江煜 马瑞 刘云 《生物工程学报》 CAS CSCD 北大核心 2024年第10期3722-3749,共28页
为应对水环境中潜在致癌物质1,4-二噁烷(1,4-dioxane)的污染,本研究从1,4-二噁烷污染的地下水中,通过富集驯化、分离得到一株1,4-二噁烷高效降解菌株DXTK-010。经过形态学观察、16S rRNA基因序列比对以及基于全基因组的物种分类研究,鉴... 为应对水环境中潜在致癌物质1,4-二噁烷(1,4-dioxane)的污染,本研究从1,4-二噁烷污染的地下水中,通过富集驯化、分离得到一株1,4-二噁烷高效降解菌株DXTK-010。经过形态学观察、16S rRNA基因序列比对以及基于全基因组的物种分类研究,鉴定该菌株为觧胺胺杆菌(Aminobacter aminovorans)。研究结果表明,该菌株具有较强的环境适应能力,在20-37℃及pH5.0-8.0下均能有效降解1,4-二噁烷。单因素实验表明,在30℃、pH 7.5条件下降解性能最佳。在优选条件下,该菌株能在24 h内完全降解200 mg/L的1,4-二噁烷,最大降解速率达9.367 mg/(L·h)。菌株DXTK-010对1,4-二噁烷的降解动力学采用Monod方程进行拟合,其最大比降解速率(V_(max))为0.224 mg 1,4-dioxane/(mg protein·h),半饱和浓度(K_(s))为41.350 mg/L,细胞产率(Y)为0.130 mg protein/(mg 1,4-dioxane),与已报道的降解菌相比,DXTK-010作为优异的降解菌株,扩充了生物修复1,4-二噁烷的菌株资源。全基因组测序揭示其完整基因组包括1条环状染色体和3个质粒。功能基因分析表明,丙烷单加氧酶基因簇和醇脱氢酶基因是其高效降解1,4-二噁烷的关键功能基因。本研究为DXTK-010实际应用于1,4-二噁烷污染修复提供了理论基础。 展开更多
关键词 1 4-二噁烷 觧胺胺杆菌(Aminobacter aminovorans) 单因素实验 降解动力学 全基因组测序
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A highly effective polycyclic aromatic hydrocarbon-degrading bacterium,Paracoccus sp.HPD-2,shows opposite remediation potential in two soil types 被引量:1
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作者 Wei CHEN Ying TENG +2 位作者 Wenjie REN Yongming LUO Yao YU 《Pedosphere》 SCIE CAS CSCD 2022年第5期673-685,共13页
Bioaugmentation is an efficient and eco-friendly strategy for the bioremediation of polycyclic aromatic hydrocarbons(PAHs).Since the degrading abilities of soils can greatly alter the abilities of PAH-degrading bacter... Bioaugmentation is an efficient and eco-friendly strategy for the bioremediation of polycyclic aromatic hydrocarbons(PAHs).Since the degrading abilities of soils can greatly alter the abilities of PAH-degrading bacteria,illustrating the potential and mechanism of highly efficient degrading bacteria in different soil environments is of great importance for bioremediation.A PAH-degrading bacterium,Paracoccus aminovorans HPD-2,and two soil types,red and paddy soils,with distinct PAH-degrading abilities,were selected for this study.A soil microcosm experiment was performed by adding pyrene(PYR)and benzo[a]pyrene(B[a]P).Illumina sequencing was used to examine bacterial community structure.The results showed that inoculation with HPD-2 significantly elevated PYR and B[a]P degradation rates by 44.7%and 30.7%,respectively,in the red soil,while it only improved the degradation rates by 1.9%and 11%,respectively,in the paddy soil.To investigate the underlying mechanism,the fate of strain HPD-2 and the response of the indigenous bacterial communities were determined.Strain HPD-2 occupied certain niches in both soils,and the addition of the bacterium changed the native community structure more noticeably in the red soil than in the paddy soil.The addition of PAHs and strain HPD-2 significantly changed the abundances of 7 phyla among the 15 detected phyla in the red soil.In the paddy soil,5 of the 12 dominant phyla were significantly affected by PAHs and the inoculation of HPD-2,while 6new phyla were detected in the low-abundance phyla(<0.1%).The abundances of Massilia,Burkholderia,and Rhodococcus genera with PAH degradation efficiency were significantly increased by the inoculation of HPD-2 in the red soil during 42 d of incubation.Meanwhile,in the paddy soil,the most dominant effective genus,Massilia,was reduced by HPD-2 inoculation.This research revealed the remediation ability and inherent mechanism of the highly effective PAH-degrading strain HPD-2 in two different soil types,which would provide a theoretical basis for the application of degrading bacteria in different soils. 展开更多
关键词 bacterial inoculation BENZO[A]PYRENE bioremediation organic contaminant paddy soil Paracoccus aminovorans PYRENE red soil
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