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1.
【目的】目前造纸法再造烟叶工艺已经成为我国重要的废烟叶处理和利用方式,该工艺中烟梗中高木质素的降解是个挑战性的需解决问题。从废次烟叶提取液(Tobacco waste extract,TWE)中筛选木质素的降解微生物用来直接处理烟梗或烟末提取液,可实现对木质素含量的调控。【方法】将废次烟叶提取液(TWE)浓缩液中分离出的Bacillus subtilis SM接种到以Kraft木质素为唯一碳源的无机盐培养基中,在pH 7.0、30°C培养基中培养4 d来检测菌株对木质素的降解效果。通过HPLC、TOC、GPC和色度来表征SM对木质素的降解,并采用烟梗无机盐培养基在pH 7.0、30°C培养4 d检测SM对烟梗木质素的降解。【结果】HPLC结果显示SM在以木质素磺酸钠为唯一碳源的无机盐培养基中可全部降解分子质量为534.5的木质素磺酸钠,而对Kraft木质素降解不明显,仅观察到组分的变化。脱色结果显示脱色率达到40.7%,但在对Kraft木质素矿化方面矿化率只能达到5.4%。SM在烟梗无机盐培养基中可使烟梗失重率分别达到50%以上(对照组为18.9%),烟梗中木质素含量减少了70%左右。【结论】来源于废次烟叶提取液(TWE)的Bacillus subtilis SM能够以Kraft木质素为唯一碳源生长,也能够有效降解烟梗中的木质素,可应用于烟草废弃物原料中木质素的降解。  相似文献   

2.
废烟叶提取液源尼古丁降解菌分离鉴定和特性   总被引:1,自引:0,他引:1  
【目的】目前造纸法再造烟叶工艺已经成为我国重要的废烟叶处理和利用方式,该工艺中尼古丁的调控是很重要的待解决问题。从废烟叶提取液(Tobacco waste extract,TWE)中筛选高耐受高活性降解尼古丁微生物用来直接处理烟梗或烟末提取液中的尼古丁,可实现对尼古丁指标的调控。【方法】以尼古丁为唯一碳氮源的基本培养基为筛选平板,从废烟叶提取液中筛选降解尼古丁菌株;对分离获得的菌株进行形态、生理生化和16S r RNA基因序列分析比对,鉴定其种属;获得的菌株分别在基本培养基和废烟叶提取液中考察其生长和尼古丁降解效果。【结果】从废烟叶提取液中获得了一株尼古丁降解活性和耐受力较好的降解菌株Pseudomonas sp.JY-Q,且在TWE中也有较强的降解能力。【结论】Pseudomonas sp.JY-Q可用于水体和TWE环境尼古丁的降解,但共存的葡萄糖对其有抑制作用,有待深入研究。  相似文献   

3.
【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   

4.
【目的】分离并鉴定1株具有尼古丁降解能力的细菌,研究其尼古丁降解特性并对其降解基因进行分析,为尼古丁微生物降解提供基础。【方法】从烟草种植地土壤中分离1株具有尼古丁降解能力的细菌,通过16S r RNA基因和生理生化特性对该菌株进行鉴定,检测该菌株尼古丁降解率与生长量的关系,并进一步对该菌株进行尼古丁浓度耐受性测定,采用高通量测序技术对菌株进行全基因组测序,BLAST比对分析尼古丁降解相关基因。【结果】筛选到1株具有尼古丁降解能力的细菌,经鉴定命名为根癌土壤杆菌(Agrobacterium tumerficience)SCUEC1菌株,根癌土壤杆菌SCUEC1菌株尼古丁降解率可达到94.81%,该菌株在尼古丁浓度为0.50–5.00 g/L范围内生长良好且有较高的尼古丁降解能力。对根癌土壤杆菌SCUEC1菌株全基因组序列进行BLAST比对分析,推测该菌株的尼古丁降解代谢途径与中间苍白杆菌SYJ1菌株的尼古丁降解途径相似。【结论】本研究揭示了Agrobacterium tumerficienceSCUEC1菌株具备尼古丁降解特性,初步推测出尼古丁降解相关基因和降解代谢途径,为尼古丁微生物降解提供基础。  相似文献   

5.
聚乙烯塑料的微生物降解   总被引:1,自引:0,他引:1  
王佳蕾  霍毅欣  杨宇 《微生物学通报》2020,47(10):3329-3341
聚乙烯(polyethylene,PE)是产量最大的通用塑料之一,通常被加工成一次性包装材料(包括塑料袋及容器)和农用薄膜等。PE塑料的广泛应用导致大量PE废弃物的累积,对生态环境造成严重的威胁。自20世纪70年代以来,一些研究陆续报道了PE塑料被微生物降解的现象,并从土壤、海洋、垃圾堆置点及昆虫肠道等生境中分离筛选到了若干种具有一定PE塑料降解能力的菌株,而且发现一些单加氧酶、过氧化物酶和漆酶等氧化还原酶对PE塑料具有氧化降解能力。这些研究为发展PE塑料废弃物生物降解处理技术提供了一定的依据。本文总结和分析了PE塑料降解微生物的分离和筛选方法,以及已报道的PE塑料降解微生物和降解酶的研究进展,以期为进一步研究PE塑料的微生物降解机理和处理技术提供参考。  相似文献   

6.
微生物代谢尼古丁的研究及其应用   总被引:1,自引:0,他引:1  
尼古丁是烟叶中最主要的生物碱,也是影响烟叶品质的重要因素,其含量过高不但影响吸食的安全性,而且对环境也会造成危害.有些微生物能在烟叶醇化过程中代谢尼古丁,降低尼古丁的含量,而不影响烟叶原有的品质,并降低其对人类健康的危害.因此,尼古丁降解微生物有着非常好的应用潜力.本文综述了国内外尼古丁代谢微生物的种类、代谢途径、酶学研究、遗传研究以及相关应用研究的进展情况,展示了微生物方法和技术在处理烤烟尼古丁中的应用前景.  相似文献   

7.
烟碱的微生物降解研究进展   总被引:12,自引:0,他引:12  
烤烟叶面微生物类群有细菌、放线菌、霉菌和酵母菌,它们在烟叶生长、调制、陈化、加工和贮存过程中对烟叶质量产生很大的影响。就烟草生长至加工过程中微生物菌群动态变化及微生物在降解烟叶烟碱上的应用作了概述,分析了微生物降烟碱的应用前景。  相似文献   

8.
难降解污染物喹啉微生物降解的国内研究进展   总被引:1,自引:0,他引:1       下载免费PDF全文
喹啉是一种难降解污染物,近年来,随着工业废水的增加对环境的负面影响已日益受到重视。从20世纪末开始,我国科研工作者对微生物降解喹啉开展了一系列研究,分离获得一批可在有氧条件下分解喹啉的细菌和真菌菌株,并进行了一些基础与应用研究。但国内外对喹啉在缺氧/无氧条件下分解的研究相对较少。本文对国内喹啉降解领域的工作进行了回顾与展望。  相似文献   

9.
低温秸秆降解微生物菌剂的研究进展   总被引:5,自引:0,他引:5  
秸秆的成分主要有纤维素、半纤维素和木质素等,降解秸秆的微生物包括细菌、放线菌和真菌。低温秸秆降解微生物的选育方法有直接从自然界中筛选、诱变育种、原生质体融合育种、基因工程育种等。目前,筛选获得的低温秸秆降解菌株的数量有限,降解秸秆的能力不高,低温条件下菌株的降解机理都需要进一步的研究。综述了低温条件下秸秆降解微生物菌剂的研究进展。  相似文献   

10.
为提高育苗基质中废弃物木质素降解速率,在废弃物堆腐生产育苗基质高温阶段取样,筛选耐高温木质素降解菌,并对菌种进行鉴定,同时测定其对秸秆木质素和菌糠木质素的降解效果。获得了1株较好的木质素高温降解菌HZ11,鉴定为解淀粉芽胞杆菌(Bacillus amyloliquefaciens),结果显示,该菌株对秸秆木质素和菌糠木质素降解效果较好,50 ℃条件下,20 d木质素降解率分别为46.7%和42.4%。菌株HZ11在降解秸秆和菌糠方面具有很好的应用潜力,为利用农业废弃物生产育苗基质提供更加丰富的菌种资源,具有重要的参考价值。  相似文献   

11.
Two novel nicotine-degrading bacterial strains were isolated from tobacco waste and identified as Acinetobacter sp. TW and Sphingomonas sp. TY based on morphology, physiological and biochemical tests, Biolog analysis and 16S rDNA sequencing. The 16S rDNA sequences have been deposited in GenBank under the accession numbers FJ753401 for TW and FJ754274 for TY. The best culture conditions for nicotine degradation were 25–37°C and pH 7.0–8.0 for strain TW and 25–30°C and pH 6.0–7.0 for strain TY. Under the best conditions, the cell growth and nicotine-degradation kinetics of the two isolates were assessed, and 1.0 g/l nicotine was completely degraded within 12 and 18 h for TW and TY, respectively. Moreover, the presence of four widely-used commercial neonicotinoid insecticides in the medium had no effects on nicotine degradation by TW; among the four tested neonicotinoids, only thiamethoxam significantly delayed nicotine degradation by TY. TW and TY were also able to degrade selected neonicotinoids. This is the first report of nicotine degradation by Acinetobacter sp. and Sphingomonas sp. This study showed that these two newly isolated bacteria may be suitable for the disposal of tobacco waste and the reduction of nicotine in tobacco leaves.  相似文献   

12.
Biodegradation of nicotine by a newly isolated Agrobacterium sp. strain S33   总被引:1,自引:0,他引:1  
Aims: To isolate and characterize bacteria capable of degrading nicotine from the rhizospheric soil of a tobacco plant and to use them to degrade the nicotine in tobacco solid waste. Methods and Results: A bacterium, strain S33, was newly isolated from the rhizospheric soil of a tobacco plant, and identified as Agrobacterium sp. based on morphology, physiological tests, Biolog MicroLog3 4·20 system and 16S rRNA gene sequence. Using nicotine as the sole source of carbon and nitrogen in the medium, it grew optimally with 1·0 g l?1 of nicotine at 30°C and pH 7·0, and nicotine was completely degraded within 6 h. The resting cells prepared from the glucose‐ammonium medium or LB medium could not degrade nicotine within 10 h, while those prepared from the nicotine medium could completely degrade 3 g l?1 of nicotine in 1·5 h at a maximal rate of 1·23 g nicotine h?1 g?1 dry cell. Using the medium containing nicotine, glucose and ammonium simultaneously to cultivate strain S33, the resting cells could degrade 98·87% of nicotine in tobacco solid waste with the concentration as 30 mg nicotine g?1 dry weight tobacco solid waste within 7 h at a maximal rate of 0·46 g nicotine h?1 g?1 dry cell. Conclusions: This is the first report that Agrobacterium sp. has the ability to degrade nicotine. Agrobacterium sp. S33 could use nicotine as the sole source of carbon and nitrogen. The use of resting cells of the strain S33 prepared from the nicotine–glucose–ammonium medium was an effective method to degrade nicotine and detoxify tobacco solid waste. Significance and Impact of the Study: Nicotine in tobacco wastes is both toxic and harmful to human health and the environment. This study showed that Agrobacterium sp. S33 may be suitable for the disposal of tobacco wastes and reducing the nicotine content in tobacco leaves.  相似文献   

13.
Nicotine is a key harmful component of tobacco and cigarettes, and the development of low-nicotine cigarettes is of increasing importance in the market. The objectives of this study are to isolate native nicotine-degrading strains and evaluate their feasibility for nicotine reduction during the aging (or fermentation) of tobacco leaves. A novel nicotine-degrading strain was isolated and identified as Pseudomonas stutzeri ZCJ based on its 16S rDNA sequence and morphological-biochemical characteristics. In submerged cultures, P. stutzeri ZCJ could tolerate 4.5 g/L nicotine and completely degrade 1.5 g/L nicotine within 24 h at 37°C and pH 7.4. The addition of glucose (1 g/L) could improve nicotine degradation by P. stutzeri ZCJ in submerged cultures. After submerged culturing, the cell suspension of P. stutzeri ZCJ could be utilized to improve nicotine reduction in tobacco leaves during solid-state fermentation. The nicotine content of tobacco leaves decreased by as much as 32.24% after 7 days of solid-state fermentation by P. stutzeri ZCJ, suggesting the industrial application potential of the native strain to enhance nicotine degradation during the aging of tobacco leaves.  相似文献   

14.
两株芽胞菌对烟草废料烟碱与绿原酸降解的研究   总被引:4,自引:0,他引:4  
为综合利用烟草废料,筛选得到能有效降解烟碱与绿原酸的两株芽胞菌,考察了所选菌株对烟碱与绿原酸的降解特性。实验结果表明,菌株Bacillus sp.X6表现出较高降解烟碱能力,培养36h可将含烟碱6.04mg/g烟草物料中的烟碱降解60.3%,72h降解率可达87.6%;对绿原酸降解效果最好的是菌株Bacillus sp.Xy,培养48h将含绿原酸10.57mg/g烟草物料中的绿原酸降解了50.5%,72h可将绿原酸降解62.2%,  相似文献   

15.
In this study, we isolated an endophytic quinclorac-degrading bacterium strain Q3 from the root of tobacco grown in quinclorac contaminated soil. Based on morphological characteristics, Biolog identification, and 16S rDNA sequence analysis, we identified strain Q3 as Bacillus megaterium. We investigated the effects of temperature, pH, inoculation size, and initial quinclorac concentration on growth and degrading efficiency of Q3. Under the optimal degrading condition, Q3 could degrade 93% of quinclorac from the initial concentration of 20 mg/L in seven days. We analyzed the degradation products of quinclorac using liquid chromatography–tandem mass spectrometry (LC-MS/MS). The major degradation products by Q3 were different from those of previously identified quinclorac degrading strains, which suggests that Q3 may employ new pathways for quinclorac degradation. Our indoor pot experiments demonstrated that Q3 can effectively alleviate the quinclorac phytotoxicity in tobacco. As the first endophytic microbial that is capable of degrading quinclorac, Q3 can be a good bioremediation bacterium for quinclorac phytotoxicity.  相似文献   

16.
Since polymeric materials do not decompose easily, disposal of waste polymers is a serious environmental concern. Widespread studies on the biodegradation of rubbers have been carried out in order to overcome the environmental problems associated with rubber waste. This report provides an overview on the microbial degradation of natural and synthetic rubbers. Rubber degrading microbes, bacteria and fungi, are ubiquitous in the environment especially soil. The qualitative data like plate assay, scanning electron microscopy (SEM), attenuated total reflectance-Fourier transform infrared spectroscopy (ATR-FTIR) and Sturm test indicated that both natural and synthetic rubbers can be degraded by microorganisms. It has confirmed that the enzymes latex clearing protein (Lcp) and rubber oxygenase A (RoxA) are responsible for the degradation of natural and synthetic rubbers. Lcp was obtained from Gram-positive bacterium Streptomyces sp. strain K30 and RoxA from Gram-negative bacterium Xanthomonas sp. strain 35Y. Analysis of degradation products of natural and synthetic rubbers indicated the oxidative cleavage of double bonds in polymer backbone. Aldehydes, ketones and other carbonyl groups were detected as degradation products from cultures of various rubber degrading strains. This review emphasizes the importance of biodegradation in environmental biotechnology for waste rubber disposal.  相似文献   

17.
微生物代谢尼古丁研究进展   总被引:8,自引:0,他引:8  
尼古丁是多种烟草的主要生物碱 ,它既是一种精神药品也是一种环境毒物 ,有效地控制卷烟和环境中的尼古丁含量 ,对于维护人类健康有着重要意义。一些微生物可以不同的途径代谢尼古丁 ,它们具有降低烟草中尼古丁含量和处理卷烟加工产生的有毒废物的潜力 ,综述了节杆菌属细菌和假单胞菌属细菌代谢尼古丁的分子生物学机理及可代谢尼古丁微生物在烟草陈化、尼古丁手性分离和含有尼古丁的废物处理等方面应用的研究进展。  相似文献   

18.
The composition of the volatile organic compounds (VOCs) of various leaf tobacco brands and their blends has been studied. The differences in the content of nicotine, solanone, tetramethyl hexadecenol, megastigmatrienones, and other compounds, determining the specific tobacco smell, have been revealed. A microbial consortium, which is able to deodorize simulated tobacco emissions and decompose nicotine, has been formed by long-term adaptation to the VOCs of tobacco leaves in a laboratory reactor, functioning as a trickle-bed biofilter. Such a biofilter eliminates 90% of the basic toxic compound (nicotine) and odor-active compounds; the filtration efficiency does not change for tobacco brands with different VOC concentrations or in the presence of foreign substances. The main strains, isolated from the formed consortium and participating in the nicotine decomposition process, belong to the genera Pseudomonas, Bacillus, and Rhodococcus. An examination of the biofilter trickling fluid has shown full decomposition of nicotine and odor-active VOCs. The compounds, revealed in the trickling fluid, did not have any odor and were nontoxic. The obtained results make it possible to conduct scaling of the biofiltration process to eliminate odor from air emissions in the tobacco industry.  相似文献   

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