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1.
【背景】深渊沉积物中存在丰富的微生物细胞和活跃的微生物碳周转,因此,分离培养微生物资源对于认识深渊中的物质循环、能量代谢具有重要意义。芳香化合物在环境中广泛存在,基于组学分析揭示了深渊中具有潜在的芳香化合物代谢菌株,然而深渊来源的芳香化合物降解微生物纯培养和相关的代谢机理研究仍然缺乏。【目的】从马里亚纳海沟沉积物样本中分离培养具有降解芳香化合物能力的微生物,对其代谢途径、中间产物和降解酶活力进行初步鉴定。【方法】以4-羟基苯甲酸为唯一碳源对马里亚纳海沟沉积物样本中的降解菌株进行分离培养,结合形态观察、16S rRNA基因扩增与序列分析对菌株进行鉴定,通过底物生长实验验证其降解能力,通过高效液相色谱和超高效液相色谱-飞行时间质谱联用仪初步鉴定全细胞生物转化中间产物,利用紫外分光光度计测定其粗酶液催化4-羟基苯甲酸的活力,进而推测菌株降解4-羟基苯甲酸的代谢途径。【结果】从深渊沉积物中分离培养获得一株好氧细菌,16SrRNA基因序列分析显示该菌株隶属于柠檬球菌属(Citricoccus),命名为Citricoccus sp. strain NyZ702。该菌株在LB固体培养基上经30°C培养4 d后呈柠檬黄色、不透明、表面光滑、边缘整齐、凸出于培养基表面、直径约为1-2 mm的圆形菌落。扫描电镜表明菌体呈球形,直径为0.4-0.6μm,无鞭毛结构。该菌株为耐盐菌,最适生长盐浓度范围为2%-8%(质量体积分数)。该菌株可利用4-羟基苯甲酸为唯一碳源进行生长,可转化4-羟基苯甲酸至中间产物原儿茶酸,推测该菌株通过原儿茶酸途径降解4-羟基苯甲酸。菌株NyZ702的粗酶液具有4-羟基苯甲酸单加氧酶活力,对4-羟基苯甲酸的催化反应需要还原型烟酰胺腺嘌呤二核苷酸磷酸(NADPH)作为辅因子。【结论】从深渊沉积物样本分离得到一株4-羟基苯甲酸降解菌Citricoccus sp. strain NyZ702,该菌株以原儿茶酸为中间代谢产物降解4-羟基苯甲酸,丰富了深渊来源的微生物菌种资源,为深渊中的芳香化合物降解研究提供了一定的理论基础。 相似文献
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【背景】烟草在生产和加工中会产生高浓度的尼古丁废弃物,对环境造成较大的污染。【目的】筛选降解尼古丁的微生物菌种并解析其降解尼古丁的代谢途径,理解微生物如何降解尼古丁。【方法】用常规分离筛选方法、结合形态学观察和分子鉴定手段分离和鉴定菌株类别,进而利用单因素试验方法,通过设置不同的尼古丁浓度、温度和pH确定菌株降解尼古丁的最适发酵条件和降解率,利用气相色谱-质谱联用技术检测菌株在尼古丁降解过程中的主要代谢产物。【结果】获得一株以尼古丁为唯一碳源和氮源的节杆菌属(Arthrobacter)菌株,编号为D4;该菌株降解尼古丁的最适温度和pH分别为30.0℃和7.0;在1 g/L的尼古丁浓度下具备较快的尼古丁降解速率,培养18 h时尼古丁降解率可达到90%以上;尼古丁浓度≥4 g/L时菌株生长受到明显抑制;与目前报道的节杆菌属降解途径不同,该菌株降解尼古丁过程中产生了新的终产物N-甲基吡咯烷酮、可替宁及中间产物麦斯明。【结论】本研究分离鉴定到一株具有较快尼古丁降解速率的节杆菌,该菌株很可能存在新的尼古丁降解途径。 相似文献
3.
食酸丛毛单胞菌AN3菌株降解苯胺代谢途径的研究 总被引:7,自引:0,他引:7
食酸丛毛单胞菌(\%Comamonas acidovorans\%)AN3菌株中降解苯胺的酶类均为诱导酶,在以苯胺为唯一碳、氮源和能源生长的细胞中,含有苯胺双加氧酶、邻苯二酚2,3双加氧酶、2羟基己二烯半醛酸脱氢酶、4草酰巴豆酸脱羧酶和4羟基2酮戊酸醛缩酶等。苯胺双加氧酶作用于苯胺的\%K\%m值和\%V\%\-\{max\}分别为292μmol/L和3.57μmol\5mg\+\{-1\}·min-1;邻苯二酚2,3双加氧酶作用于邻苯二酚的\%K\%m和\%V\%\-\{max\}分别为16.4 mol/L和15.2μmol\5mg\+\{-1\}\5min\+\{-1\}。根据实验结果,推测了该菌株降解苯胺的代谢途径。 相似文献
4.
【背景】糖精钠废水是一种难处理的高盐有机工业废水。【目的】为了提高糖精钠废水的生物降解效果,需要研究糖精钠废水降解菌的特性。【方法】采用纯培养技术从处理糖精钠废水的多级生物接触氧化系统内的活性污泥中分离筛选糖精钠废水降解菌,对分离菌株的形态特征、生理生化特性和16S rRNA基因序列进行分析,利用单因素实验和响应面法考察分离菌株降解糖精钠废水的最佳条件。【结果】筛选获得一株糖精钠废水降解菌A20,归属于盐单胞菌属(Halomonas),当糖精钠废水的盐分为5%,菌接种量为15%,pH值为8.0,温度为30°C时,菌株A20对糖精钠废水中的化学需氧量(chemical oxygen demand,CODcr)去除率在60%以上;通过响应面法优化,菌株A20降解糖精钠废水的最佳条件为:pH 8.0,温度为30.3°C,接种量为14.1%,其CODcr去除率为65.4%。【结论】分离到一株能高效降解糖精钠废水中有机物的耐盐菌Halomonas sp. A20,可为高盐、高浓度糖精钠废水的处理提供优良的微生物菌种资源。 相似文献
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β-酮己二酸途径的原儿茶酸分支在革兰氏阴性细菌中研究较多,但在革兰氏阳性细菌中的研究却很少.本研究表明谷氨酸棒杆菌能以原儿茶酸、4-羟基苯甲酸、香草醛和对甲酚作为惟一碳源和能源生长,并且生长时诱导表达原儿茶酸3,4-双加氧酶.对谷氨酸棒杆菌基因组分析表明,基因位点ncg12314~ncg12315可能编码原儿茶酸3,4-双加氧酶.通过PCR反应扩增了ncg12314~ncg12315,并克隆到表达载体pET21a上,获得质粒pET21aP34D;携带pET21aP34D的重组大肠杆菌经诱导表达原儿茶酸3,4-双加氧酶.敲除ncg12314~ncg12315后,谷氨酸棒杆菌突变株失去原儿茶酸3,4-双加氧酶活性,同时丧失了利用原儿茶酸、对甲酚、香草醛和4-羟基苯甲酸作为惟一碳源和能源的能力;通过基因互补,这些能力又可重新获得.这些结果证实ncg12314和ncg12315(pcaHG)编码原儿茶酸3,4-双加氧酶.进一步对谷氨酸棒杆菌基因组分析后鉴定到一个完整的编码原儿茶酸分支途径中相关酶的基因簇,该基因簇的独特组织方式为芳香化合物的降解研究提供了新的视点. 相似文献
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【目的】分离并鉴定精噁唑禾草灵高效降解菌株,为开发高效降解菌剂,强化精噁唑禾草灵原位修复,保证黄瓜产品安全提供菌株资源和理论依据。【方法】利用富集培养的方法分离降解菌株,并通过形态学、生理生化特征和16S rRNA基因进化分析进行鉴定;HPLC/MS鉴定菌株降解精噁唑禾草灵的中间产物,采用鸟枪法建库克隆降解过程中关键的水解酶基因,并进行异源表达,利用Michaelis-Menten双倒数曲线图测定酶动力学参数;通过正交试验确定菌株液态发酵参数,并通过对黄瓜灌根接种的方式,研究降解菌株对黄瓜根际土壤中精噁唑禾草灵的降解以及甘露醇对降解效率的强化作用。【结果】Rhodococcus sp. DSB-1在24 h内能将100 mg/L精噁唑禾草灵完全转化为精噁唑禾草灵酸,降解最适温度和pH分别为30℃和8.0。克隆得到一个精噁唑禾草灵水解酶基因,命名为pepE。水解酶PepE对精噁唑禾草灵的K_m为28.2μmol/L,k_(cat)/K_m为11.0 L/(μmol·s)。在发酵温度30℃、通气量1:0.4、搅拌速度200 r/min、培养时间48 h条件下,液态发酵所得菌剂对精噁唑禾草灵的降解效率最高。投加至黄瓜根际的菌株DSB-1可以在黄瓜根系定殖,12d内完全降解黄瓜根际环境中10mg/kg的精噁唑禾草灵。此外还发现添加甘露醇可强化菌株的修复能力,降解效率相对于未添加的处理提高14.8%。【结论】菌株DSB-1具有原位修复精噁唑禾草灵污染土壤的潜力。 相似文献
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六六六(HCH)降解菌Sphingomonas sp. BHC-A的分离与降解特性的研究 总被引:11,自引:0,他引:11
从长期受六六六污染的土壤中分离得到一株能以HCH为唯一碳源的高效降解菌株BHC-A。通过对其主要生理生化特征分析,以及16S rDNA序列的测定和同源性比较分析,将BHC-A鉴定为鞘氨醇单胞菌属(Sphingomonassp.)。BHC-A菌株在12h以内能够完全矿化浓度分别为5mg/L的α-、β-、γ-、δ-HCH4种异构体,特别是对β-HCH的降解在国际上也属少例。而前人所报道的γ-HCH降解菌Sphingomonas paucimobilisUT26菌株对β-HCH和δ-HCH不产生降解作用,即使经过24h的培养,对5mg/L的α-HCH的降解率也只有12.6%。在黄瓜的盆钵试验中发现,15d后BHC-A在土壤中对α、β-、γ-、δ-HCH4种异构体的降解率为84.3%,能够有效地消除土壤中六六六的污染,缓解植株受药害症状。 相似文献
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【目的】大量聚对苯二甲酸乙二醇酯(polyethylene terephthalate,PET)塑料作为废弃物被丢弃,严重危害生态健康。针对嗜热PET降解菌缺乏这一情况,本研究旨在获得能够降解PET的嗜热菌,并阐述其降解机制。【方法】采集云南腾冲热泉中的废弃PET瓶,分析其表面生物膜的微生物群落多样性,从中筛选能够以PET为营养源生长的嗜热菌,并基于16S rRNA基因序列加以鉴定;以菌株的定殖能力与生长曲线为指标,优选出降解能力较强的降解菌,并测定其最适pH、温度和NaCl浓度;降解能力较强的降解菌分别作用于PET及PET中间体双(羟乙基)对苯二甲酸酯[bis(hydroxyethyl)terephthalate,BHET]和对苯二甲酸单(2-羟乙基)酯[mono(2-hydroxyethyl)terephthalate,MHET],测定产物生成量与降解率;通过观察PET膜表面微观结构、活菌数、酯酶活性等探究降解菌与PET的互作过程。【结果】废弃PET瓶表面生物膜中的微生物群落多样性低;从生物膜中筛选出5株能够以PET为营养源生长的嗜热菌;其中,菌株JQ3以PET为唯一碳源生长最佳,作为降解能力较强的降解菌,被鉴定为嗜热淀粉芽孢杆菌(Bacillus thermoamylovorans),其最适生长pH为7.0、最适生长温度为50℃、最适生长NaCl浓度为0.5%;菌株JQ3以0.043 mg PET/d的速率降解PET,对苯二甲酸(terephthalic acid,TPA)产量在第7天达到峰值45.2 mmol/L;菌株JQ3对PET中间体降解效率显著,6 h可降解85.9%的BHET,60 h可降解50.1%的MHET。菌株JQ3能够定殖于PET表面并形成生物膜,侵蚀PET并造成开裂和剥落。【结论】B.thermoamylovorans JQ3作为一株嗜热PET降解菌,能够高温(60℃)降解PET及其中间体,为实现PET的有效降解提供了新策略。 相似文献
11.
An anaerobic, non-motile, rod shaped bacterium is described which cleaves the phenylether bonds of methoxylated aromatic substrates to give the corresponding hydroxy aromatic derivatives and mixed volatile fatty acids, chain length, C1, C2 and C4. The bacterium was isolated from an anaerobic digestor fed with contents from a wood fiber to alcohol fermentation plant, using anaerobic rolltube medium with ferulate as the carbon and energy source. Moles fatty acid produced per 100 mole of methoxyl group of aromatic substrate fermented were approximately: acetate, 14; butyrate, 18; and formate, 15. For the fermentation of equimolar amounts of methoxylated aromatic compounds, growth yields were proportional to the number of methoxylated groups per molecule, and the amount of cells per methoxyl group did not alter when phenylacrylate derivatives were used as substrates. The organism was unable to reduce the side-chain double bond of phenylacrylate derivatives. Coculture of the bacterium on ferulate with Methanospirillum hungatei, or Desulfovibrio in the presence of SO
4
=
resulted in no nett production of formate, and small quantities of methane and sulfide were produced respectively. The isolate utilized glucose, fructose, and lactate, but not methanol or H2–CO2 as growth substrates. Lactate, butyrate, acetate, formate and small quantities of H2 were produced from glucose fermentation. No reduction of SO
4
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or NO
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occurred during fermentation of glucose or methoxylated aromatics and no growth occurred in the presence of oxygen. 相似文献
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R. Sietmann R. Uebe E. Böer R. Bode G. Kunze F. Schauer 《Journal of applied microbiology》2010,108(3):789-799
Aim: To complete our study on tannin degradation via gallic acid by the biotechnologically interesting yeast Arxula adeninivorans as well as to characterize new degradation pathways of hydroxylated aromatic acids. Methods and Results: With glucose‐grown cells of A. adeninivorans, transformation experiments with hydroxylated derivatives of benzoic acid were carried out. The 12 metabolites were analysed and identified by high performance liquid chromatography and GC/MS. The yeast is able to transform the derivatives by oxidative and nonoxidative decarboxylation as well as by methoxylation. The products of nonoxidative decarboxylation of protocatechuate and gallic acid are substrates for further ring fission. Conclusion: Whereas other organisms use only one route of transformation, A. adeninivorans is able to carry out three different pathways (oxidative, nonoxidative decarboxylation and methoxylation) on one hydroxylated aromatic acid. The determination of the KM‐values for protocatechuate and gallic acid in crude extracts of cells of A. adeninivorans cultivated with protocatechuate and gallic acid, respectively, suggests that the decarboxylation of protocatechuate and gallic acid may be catalysed by the same enzyme. Significance and Impact of the Study: This transformation pathway of protocatechuate and gallic acid via nonoxidative decarboxylation up to ring fission is novel and has not been described so far. This is also the first report of nonoxidative decarboxylation of gallic acid by a eukaryotic micro‐organism. 相似文献
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【背景】多环芳烃(Polycyclic Aromatic Hydrocarbons,PAHs)是一类高毒性的有机污染物,在海洋环境尤其是沿海环境中广泛分布。海草床生态系统作为沿海环境的重要组成部分,深受环境污染等人类活动的影响而处于严重衰退的状态。微生物修复是修复环境中多环芳烃污染的重要途径,具有经济简便、环境友好和无二次污染等特点。【目的】从深圳市大亚湾的海草床沉积物中筛选获得高效多环芳烃降解菌,并分析其降解特性,从而探究海草床生态系统中多环芳烃污染物的微生物修复可行性。【方法】以多环芳烃菲为唯一碳源从海草床沉积物样品中筛选菌株,再通过形态学观察、生理生化实验和16SrRNA基因序列对筛选的菌株进行鉴定,并利用特定引物扩增多环芳烃降解的功能基因——双加氧酶(nidA)基因,最后通过培养实验分析该菌株对菲的降解特性。【结果】筛选出一株高效降解菲的菌株SCSIO 43702,经鉴定为玫瑰杆菌属(Roseovarius)的潜在新菌,并成功扩增得到双加氧酶相似(nidA like)基因;培养实验结果表明,玫瑰杆菌SCSIO 43702在10 d内对100 mg/L菲的降解率最高可达96%,而且其对菲的最适降解条件为:温度30°C、pH值7.5和8.0、盐度3%。【结论】玫瑰杆菌SCSIO 43702凭借其良好的菲降解能力和较强的环境适应性,具有进一步被开发为微生物菌剂以用于多环芳烃污染修复的巨大潜力,为海草床生态系统中多环芳烃污染的微生物修复研究提供了理论依据和可利用的微生物资源。 相似文献
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Isolation and characterization of a phorate degrading bacterium 总被引:1,自引:0,他引:1
Aims: To study the degradation of phorate by a bacterium isolated from phorate-contaminated sites.
Methods and Results: Ralstonia eutropha strain AAJ1 isolated from soil was found to degrade phorate (supplied as sole carbon source) upto 85% in 10 days in liquid medium. Half-life ( t½ ) of phorate in the liquid medium in control (uninoculated) and in experimental (inoculated with R. eutropha , strain AAJ1) samples was recorded as 36·49 and 6·29 days, respectively. Kinetics revealed that phorate degradation depends on time and the reaction follows the first order kinetics. Diethyl dithiophosphate was one of the degradation products, which is markedly less toxic than the parent compound; other degradation products included phorate sulfoxide and phorate sulfone. Release of inorganic phosphates and sulfates indicated the potential of the isolate to further degrade the above-mentioned metabolites to simpler forms. The strain was also found to posses phosphomonoesterase and phosphodiesterase enzymatic activity, which are involved in biodegradation of organophosphorus compounds.
Conclusions: Ralstonia eutropha AAJ1 could degrade and detoxify phorate upto 85% in 10 days in laboratory conditions.
Significance and Impact of the Study: The isolate has the potential to be utilized for remediation of phorate-contaminated water and soil. 相似文献
Methods and Results: Ralstonia eutropha strain AAJ1 isolated from soil was found to degrade phorate (supplied as sole carbon source) upto 85% in 10 days in liquid medium. Half-life ( t
Conclusions: Ralstonia eutropha AAJ1 could degrade and detoxify phorate upto 85% in 10 days in laboratory conditions.
Significance and Impact of the Study: The isolate has the potential to be utilized for remediation of phorate-contaminated water and soil. 相似文献
15.
Although the protocatechuate branch of the β-ketoadipate pathway in Gram− bacteria has been well studied, this branch is less understood in Gram+ bacteria. In this study,Corynebacterium glutamicum was cultivated with protocatechuate,p-cresol, vanillate and 4-hydroxybenzoate as sole carbon and energy sources for growth. Enzymatic assays indicated that growing
cells on these aromatic compounds exhibited protocatechuate 3,4-dioxygenase activities. Data-mining of the genome of this
bacterium revealed that the genetic locusncg12314-ncg12315 encoded a putative protocatechuate 3,4-dioxygenase. The genes,ncg12314 andncg12315, were amplified by PCR technique and were cloned into plasmid (pET21aP34D). RecombinantEscherichia coli strain harboring this plasmid actively expressed protocatechuate 3,4-dioxygenase activity. Further, when this locus was disrupted
inC. glutamicum, the ability to degrade and assimilate protocatechuate,p-cresol, vanillate or 4-hydroxybenzoate was lost and protocatechuate 3,4-dioxygenase activity was disappeared. The ability
to grow with these aromatic compounds and protocatechuate 3,4-dioxygenase activity ofC. glutamicum mutant could be restored by gene complementation. Thus, it is clear that the key enzyme for ring-cleavage, protocatechuate
3,4-dioxygenase, was encoded byncg12314 andncg12315. The additional genes involved in the protocatechuate branch of the β-ketoadipate pathway were identified by mining
the genome data publically available in the Gen Bank. The functional identification of genes and their unique organization
inC. glutamicum provided new insight into the genetic diversity of aromatic compound degradation. 相似文献
16.
深海多环芳烃降解菌新鞘氨醇杆菌H25的降解特性及降解基因 总被引:6,自引:1,他引:6
[目的]为了从深海环境中筛选新的多环芳烃降解菌,了解其降解基因及降解特性.[方法]以原油作为碳源从印度洋深海海水样品中富集筛选出降解能力较强的多环芳烃降解菌,并根据已报道的相关菌属的多环芳烃起始双加氧酶大亚基序列及侧翼序列设计兼并引物进行扩增.[结果]获得了1株能够高效降解原油、柴油及多种多环芳烃的菌株H25.经16S rDNA序列系统发育分析表明它属于新鞘氨醇杆菌属(Novosphingobium)(96%).并从该菌株中扩增获得2条相似度为91.0%双加氧酶基因片段.2条序列在NCBI上Blastn分析表明均与菌株N.aromaticivorans DSM12444T的降解质粒pNL1上的双加氧酶大亚基具有最高相似度,分别为99.6%和91.0%.根据pNL1上的双加氧酶序列设计引物获得了包含H25双加氧酶大亚基及上下游序列的2个基因片段H25 Ⅰ(2.9kb)和H25Ⅱ(4.5kb).另外,单碳降解实验表明H25对联苯、2-甲基萘、2,6-二甲基萘、菲、二苯并噻吩、二苯并呋喃等均有较好的降解能力.[结论]H25菌株是Novosphingobium属可能的新种.深海细菌在大洋环境多环芳烃污染的自然净化中起到一定作用,并在环境生物修复中有较大的应用前景. 相似文献
17.
芳香族L-氨基酸是合成许多药物、农药、精细化学品和食品添加剂的重要手性砌块(Chiral buildingblocks)。利用酶催化具有高活性和高立体选择性的特点合成手性砌块是目前不对称合成领域重要的研究方向。通过对不同来源转氨酶的进化分析,选择分别源自原核生物大肠杆菌Escherichia coli和真核生物酿酒酵母Saccharomyces cerevisia中的两种具有代表性Ⅰ型芳香族转氨酶TyrB和Aro8,比较研究了两种转氨酶通过平衡逆转不对称氨化催化合成芳香族L-氨基酸的反应过程和催化效率。重组转氨酶TyrB和Aro8都能有效地合成天然芳香族氨基酸苯丙氨酸和酪氨酸以及非天然氨基酸苯甘氨酸。手性HPLC分析表明,合成的氨基酸都是L-构型的,e.e值等于100%。L-丙氨酸是适宜的氨基供体,转氨酶TyrB和Aro8都不能利用D-型氨基酸作为氨基供体。反应体系中氨基供体L-丙氨酸和氨基受体芳香族α-酮酸的最适摩尔比为4∶1。底物芳香族α-酮酸分子结构中芳香环上的取代基以及脂肪酸碳链部分的长度都对酶催化的转氨效率有显著的影响。在制备规模试验中,TyrB催化不对称转氨反应合成L-苯甘氨酸、L-苯丙氨酸和L-酪氨酸的比生产速率为0.28 g/(g.h)、0.31 g/(g.h)和0.60 g/(g.h),Aro8催化上述反应的比生产速率分别为0.61 g/(g.h)、0.48 g/(g.h)和0.59 g/(g.h)。研究结果对利用转氨酶通过平衡逆转不对称催化合成芳香族L-氨基酸的工业化应用具有指导意义。 相似文献
18.
一株菊酯类农药降解菌的分离鉴定及其降解酶基因的克隆 总被引:8,自引:0,他引:8
摘要:【目的】筛选分离高效降解菊酯类农药的光合细菌,研究其降解特性,并对该菌株中降解酶基因进行克隆与初步分析。【方法】根据分离菌株的细胞形态结构、活细胞光吸收特征、生理生化特征及其16S rDNA序列系统发育分析鉴定降解菌,气相色谱法测定该菌株降解菊酯类农药的能力,PCR方法克隆降解酶基因。【结果】菌株PSB07-21属红假单胞菌属(Rhodopseudomonas sp.),其降解最佳条件为3000 lx、35℃、pH 7,在此条件下培养15 d对600 mg/L甲氰菊酯、氯氰菊酯、联苯菊酯降解率分别为 相似文献