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1.
瘤胃微生物对纤维素的降解及其应用   总被引:4,自引:0,他引:4  
瘤胃微生物主要包括细菌、真菌和原生动物。其中,瘤胃细菌和瘤胃真菌能分泌纤维素酶,对纤维素有较强的降解能力,主要介绍了瘤胃微生物对纤维素的降解作用及其广阔的应用前景。  相似文献   

2.
瘤胃中木质纤维素降解菌及降解酶基因的研究进展   总被引:1,自引:0,他引:1  
摘要:反刍动物瘤胃是公认的木质纤维素高效降解的天然反应器,对瘤胃微生物的研究成为开发生物能源的热点领域之一。其研究手段已经从传统的依赖分离培养从瘤胃中获得木质纤维素降解菌,并对降解菌中的木质纤维素降解酶逐一分析,发展到通过基因组/元基因组技术,直接从瘤胃中发现获得大量新的木质纤维素降解酶基因/基因簇,进而探讨其降解的分子机理。已有的研究结果表明,瘤胃微生物降解木质纤维素的过程非常复杂,其中涉及到大量不同种类的微生物、酶及基因/基因簇,随着新分析技术的建立和完善,对这些微生物、酶和基因的研究已取得了诸多进展。本论文综述报道了近期有关该方向的研究进展。  相似文献   

3.
目的初步筛选牛瘤胃中纤维素降解菌。方法分别采用基本培养基(牛肉膏蛋白胨培养基、马丁培养基),利用好氧、兼性和厌氧3种不同的培养方法进行初选,初步分离牛瘤胃中的细菌与真菌,再通过复选培养基(加入微晶纤维素),筛选降解纤维素的菌种。结果筛选分离出降解纤维素的1株厌氧细菌和1株厌氧真菌。结论此实验方法简单易行,能够有效地从牛瘤胃中筛选出生长良好的纤维素降解菌。  相似文献   

4.
广西水牛瘤胃中的细菌多样性   总被引:1,自引:0,他引:1  
[目的]了解广西水牛瘤胃中细菌的组成及其可能的降解纤维素细菌的主要类群。[方法]提取水牛瘤胃内容物和高效降解滤纸的水牛瘤胃内容物的富集培养物的宏基因组DNA,以宏基因组DNA为模板,扩增16S rRNA基因序列,构建该两种样品的细菌的16S rRNA基因文库。通过对16S rRNA基因序列的分析,了解这两种样品的细菌群体种类及数量。 [结果] 水牛瘤胃内容物与其富集培养物中均主要含有LGCGPB (low G+C Gram-Positive Bacteria)、CFB (Cytophaga-Flexibacter-Bacteroides)两大类菌群和少数的螺旋体菌(Spirochaetes),且LGCGPB所占的比例都是最高的,LGCGPB在水牛瘤胃内容物细菌中的比例为56.66%,而在富集培养物细菌中的比例升高为73.33%。在水牛瘤胃内容物中,丝状杆菌(Fibrobacteres)占3.33%,但在富集培养物中未被检测到。而在富集培养物中占13.33%的变形杆菌(Proteobacteria),在水牛瘤胃内容物中未被检测到。本研究还发现了分类地位尚未明确的一菌群(R46)。[结论]细菌类群LGCGPB、Proteobacteria可能在水牛瘤胃中的纤维素降解过程中起重要作用。此外,水牛瘤胃中的细菌组成和牦牛、牛、羊瘤胃中的细菌组成较相似但比例有所不同。  相似文献   

5.
木质纤维素的微生物降解   总被引:1,自引:0,他引:1  
木质纤维素广泛存在于自然界中,因结构复杂,其高效降解需要多种微生物的协同互作,由于参与木质纤维素降解的微生物种类繁多,其协同降解机理尚不完全明确。随着微生物分子生物学和组学技术的快速发展,将为微生物协同降解木质纤维素机制的研究提供新的方法和思路。笔者前期研究发现,细菌复合菌系在50℃下表现出强大的木质纤维素降解能力,菌系由可分离培养和暂时不可分离培养细菌组成,但是可分离培养细菌没有降解能力。通过宏基因组和宏转录组研究表明,与木质纤维素降解相关的某些基因表达量发生显著变化,通过组学方法有可能更加深入解释微生物协同降解木质纤维素的微生物学和酶学机理。文中从酶、纯培养菌株和复合菌群三个方面综述了木质纤维素微生物降解研究进展,着重介绍了组学技术在解析复合菌群作用机理方面的现状和应用前景,以期为探索微生物群落协同降解木质纤维素的机理提供借鉴。  相似文献   

6.
反刍动物瘤胃是公认的木质纤维素高效降解的天然反应器,对瘤胃微生物的研究已成为开发生物能源的热点领域之一。目前的研究手段已经从传统的依赖分离培养从瘤胃中获得木质纤维素降解菌,并对降解菌中的木质纤维素降解酶逐一分析,发展到通过基因组/元基因组学技术,直接从瘤胃中发现并获得大量新的木质纤维素降解酶基因/基因簇,进而探讨其降解的分子机理。已有的研究结果表明,瘤胃微生物降解木质纤维素的过程非常复杂,涉及大量不同种类的微生物及基因/基因簇,随着新分析技术的建立和完善,对这些微生物和基因的研究已取得了诸多进展。本论文综述了近期有关该方向的研究进展。  相似文献   

7.
王璨  东秀珠 《微生物学报》2012,52(9):1069-1074
居瘤胃解纤维素菌(Cellulosilyticum ruminicola)H1是本实验室分离自青海牦牛瘤胃的一株新的纤维素降解细菌。前期研究发现,菌株H1在滤纸纤维素上连续传代数次后无法生长,只有在纤维素降解产物纤维二糖中培养后方能继续在纤维素中生长,并恢复其纤维素降解活性。这与纤维素酶合成受"代谢产物抑制"的传统认识相悖。【目的】证明菌株H1的纤维素酶合成受细胞密度调控。【方法】检测菌株H1的纤维素酶活和转录水平在高和低密度细胞培养物中差异,并检测高密度细胞培养物中的寡肽对低密度细胞纤维素酶活和转录水平的促进作用。【结果】菌株H1的高密度细胞培养物的纤维素酶活和转录水平比低密度细胞的高3-10倍;并且高密度细胞培养液能显著提高低密度细胞纤维素酶活和转录水平。【结论】居瘤胃解纤维素菌(Cellulosilyticum ruminicola)H1纤维素酶的合成受细胞密度调控。  相似文献   

8.
【目的】了解瘤胃细菌第48家族糖苷水解酶基因(GH48)多样性,为木质纤维素高效降解提供新的基因资源。【方法】通过基因序列比对,设计gh48的简并引物;同时提取两个瘤胃样品的总DNA和总RNA,并将总RNA逆转录成cDNA。以总DNA和cDNA为模板,通过PCR扩增分别建立克隆文库并对克隆文库进行测序;对所得序列进行out种类划分和聚类分析。【结果】本研究共得到了455条编码GH48家族蛋白的基因序列,核苷酸序列之间的相似性为58.65%-100%。对序列的进一步分析表明,89%可以作为区分其种类的界定标准。以此为依据确定所得到的基因序列分别编码66种不同的GH48家族蛋白,分别聚为5个相对独立的类群,其中新类群C中OTU65所代表的序列是cDNA克隆文库中的优势序列,分别占两个cDNA克隆文库的36.4%和19.5%。我们的结果揭示瘤胃细菌gh48基因具有丰富的多样性,同时,其中也存在优势表达的GH48家族蛋白。  相似文献   

9.
细菌几丁质酶结构、功能及分子设计的研究进展   总被引:1,自引:0,他引:1       下载免费PDF全文
几丁质是仅次于纤维素的第二大天然多糖,由N-乙酰-D-氨基葡萄糖聚合而成,具有重要的应用价值。自然界中几丁质可被细菌高效降解。细菌可分泌多种几丁质降解酶类,主要分布在GH18家族和GH19家族中。细菌中几丁质降解酶基因存在明显的基因扩增及多结构域组合现象,不同家族、不同作用模式的几丁质酶系协同作用打破复杂的抗降解屏障,完成结晶几丁质的高效降解。因此,深入分析细菌几丁质酶结构与功能,对几丁质高效降解与高值转化应用具有重要意义。本文介绍了细菌几丁质酶的分类、结构特点与催化作用机制;总结了不同细菌胞外几丁质降解酶系的协同降解模式;针对几丁质酶家族分子改造的研究进展,展望了以结构生物信息学及大数据深度学习为基础的蛋白质工程设计策略在今后改造中的作用,为几丁质酶的设计与理性改造提供新的视角与思路。  相似文献   

10.
木质纤维素降解菌及其绛解途径研究进展   总被引:3,自引:0,他引:3  
文中综述了已发现的降解纤维素和术质素的主要的天然微生物种类、相关酶类,并着重介绍了白腐真菌和细菌降解木质素的过程。  相似文献   

11.
By combining analyses of G + C content and patterns of codon usage and constructing phylogenetic trees, we describe the gene transfer of an endoglucanase (celA) from the rumen bacteria Fibrobacter succinogenes to the rumen fungi Orpinomyces joyonii. The strong similarity between different glycosyl hydrolases of rumen fungi and bacteria suggests that most, if not all, of the glycosyl hydrolases of rumen fungi that play an important role in the degradation of cellulose and other plant polysaccharides were acquired by horizontal gene transfer events. This acquisition allows fungi to establish a habitat within a new environmental niche: the rumen of the herbivorous mammals for which cellulose and plant hemicellulose constitute the main raw nutritive substrate.  相似文献   

12.
Several in situ studies have been conducted on maize silages to determine the effect of individual factors such as maturity stage, chop length and ensiling of maize crop on the rumen degradation but the information on the relationship between chemical composition and in situ rumen degradation characteristics remains scarce. The objectives of this study were to determine and describe relationships between the chemical composition and the rumen degradation characteristics of dry matter (DM), organic matter (OM), CP, starch and aNDFom (NDF assayed with a heat stable amylase and expressed exclusive of residual ash) of maize silages. In all, 75 maize silage samples were selected, with a broad range in chemical composition and quality parameters. The samples were incubated in the rumen for 2, 4, 8, 16, 32, 72 and 336 h, using the nylon bag technique. Large range was found in the rumen degradable fractions of DM, OM, CP, starch and aNDFom because of the broad range in chemical composition and quality parameters. The new database with in situ rumen degradation characteristics of DM, OM, CP, starch and aNDFom of the maize silages was obtained under uniform experimental conditions; same cows, same incubation protocol and same chemical analysis procedures. Regression equations were developed with significant predictors (P<0.05) describing moderate and weak relationships between the chemical composition and the washout fraction, rumen undegradable fraction, potentially rumen degradable fraction, fractional degradation rate and effective rumen degradable fraction of DM, OM, CP, starch and aNDFom.  相似文献   

13.
14.
复合菌系降解纤维素过程中微生物群落结构的变化   总被引:3,自引:0,他引:3  
为明确高效纤维素降解复合菌系降解过程中微生物群落结构的变化规律及关键的降解功能菌,利用该复合菌系对滤纸和稻秆进行生物处理,通过底物降解、微生物生长量、发酵液pH的变化情况,选择不同降解时期复合菌系提取的总DNA进行细菌16S rRNA基因扩增子高通量测序。通过分解特性试验确定在接种后培养第12、72、168 h分别作为降解初期、高峰期、末期。该复合菌系分别主要由1个门、2个纲、2个目、7个科、11个属组成。随着降解的进行,短芽胞杆菌属Brevibacillus、喜热菌属Caloramator的相对丰度逐渐降低;梭菌属Clostridium、芽胞杆菌属Bacillus、地芽胞杆菌属Geobacillus、柯恩氏菌属Cohnella的相对丰度逐渐升高;解脲芽胞杆菌属Ureibacillus、泰氏菌属Tissierella、刺尾鱼菌属Epulopiscium在降解高峰期时相对丰度最高;各时期类芽胞杆菌属Paenibacillus、瘤胃球菌属Ruminococcus的相对丰度无明显变化。上述11个主要菌属均属于厚壁菌门,具有嗜热、耐热、适应广泛pH、降解纤维素或半纤维素的特性。好氧型细菌是降解初期的主要优势功能菌,到中后期厌氧型细菌逐渐增多,并逐步取代好氧型细菌成为降解纤维素的主要细菌。  相似文献   

15.
针对秸秆处理不当影响全世界环境污染的问题,筛选多功能秸秆降解菌,旨在得到高效降解秸秆且具有促生作用的微生物菌种。结合纤维素钠-刚果红(CMC-Na)平板筛选,通过16S rRNA基因分析,进行菌株鉴定,得到一株具有纤维素降解效果的菌株XJ-132,经16S rRNA基因鉴定为枯草芽胞杆菌(Bacillus subtilis)。与单独施用秸秆处理相比,加入菌株XJ-132 60 d后,秸秆降解率提高21.0%,且对水稻生长促进作用显著,地上、下部鲜重分别增加17.8%和9.6%。水稻种子喷施菌株XJ-132发酵液,低浓度发酵液对种子萌发具有一定促进作用。结果表明,菌株XJ-132可能通过产吲哚乙酸(IAA)、产铁载体、产氨等多种有益物质,降解秸秆的同时促进水稻生长。筛选具有促生作用的秸秆降解菌能够更好地加速秸秆降解,具有广泛的开发利用前景。  相似文献   

16.
近年来,具有农业、能源和环保价值的昆虫微生物种类和基因得到了开发,昆虫肠道微生物展示了其巨大的应用潜力,本研究旨在从蟋蟀后肠分离和鉴定纤维素降解细菌。首先采用羧甲基纤维素钠液体培养基对蟋蟀后肠中的微生物进行富集培养,然后使用羧甲基纤维素钠固体培养基分离和筛选单菌落,再通过16S rRNA测序对纤维素降解细菌进行分子鉴定,最后通过刚果红染色来进一步分析细菌降解纤维素的能力。从蟋蟀后肠中共分离出20株纤维素降解细菌,16S rRNA基因测序结果显示来自肠杆菌属(Enterobacter)9株,不动杆菌属(Acinetobacter)7株,克雷伯氏菌属(Klebsiella)2株,鞘氨醇杆菌属(Sphingobacterium)1株和葡萄球菌属(Staphylococcus)1株。刚果红染色试验结果显示,克雷伯氏菌属两株PDSCDXS_2B和8B,鞘氨醇杆菌属PDSCDXS_7C和不动杆菌属PDSCDXS_12C具有较高的纤维素降解能力。这是首次从蟋蟀后肠分离和筛选出来具有纤维素降解能力的细菌,为昆虫源纤维素降解细菌的研究提供了微生物资源。  相似文献   

17.
Although Fibrobacter succinogenes S85 is one of the most proficient cellulose degrading bacteria among all mesophilic organisms in the rumen of herbivores, the molecular mechanism behind cellulose degradation by this bacterium is not fully elucidated. Previous studies have indicated that cell surface proteins might play a role in adhesion to and subsequent degradation of cellulose in this bacterium. It has also been suggested that cellulose degradation machinery on the surface may be selectively expressed in response to the presence of cellulose. Based on the genome sequence, several models of cellulose degradation have been suggested. The aim of this study is to evaluate the role of the cell envelope proteins in adhesion to cellulose and to gain a better understanding of the subsequent cellulose degradation mechanism in this bacterium. Comparative analysis of the surface (exposed outer membrane) chemistry of the cells grown in glucose, acid-swollen cellulose and microcrystalline cellulose using physico-chemical characterisation techniques such as electrophoretic mobility analysis, microbial adhesion to hydrocarbons assay and Fourier transform infra-red spectroscopy, suggest that adhesion to cellulose is a consequence of an increase in protein display and a concomitant reduction in the cell surface polysaccharides in the presence of cellulose. In order to gain further understanding of the molecular mechanism of cellulose degradation in this bacterium, the cell envelope-associated proteins were enriched using affinity purification and identified by tandem mass spectrometry. In total, 185 cell envelope-associated proteins were confidently identified. Of these, 25 proteins are predicted to be involved in cellulose adhesion and degradation, and 43 proteins are involved in solute transport and energy generation. Our results supports the model that cellulose degradation in F. succinogenes occurs at the outer membrane with active transport of cellodextrins across for further metabolism of cellodextrins to glucose in the periplasmic space and inner cytoplasmic membrane.  相似文献   

18.
Ruminant animals digest cellulose via a symbiotic relationship with ruminal microorganisms. Because feedstuffs only remain in the rumen for a short time, the rate of cellulose digestion must be very rapid. This speed is facilitated by rumination, a process that returns food to the mouth to be rechewed. By decreasing particle size, the cellulose surface area can be increased by up to 106-fold. The amount of cellulose digested is then a function of two competing rates, namely the digestion rate ( K d) and the rate of passage of solids from the rumen ( K p). Estimation of bacterial growth on cellulose is complicated by several factors: (1) energy must be expended for maintenance and growth of the cells, (2) only adherent cells are capable of degrading cellulose and (3) adherent cells can provide nonadherent cells with cellodextrins. Additionally, when ruminants are fed large amounts of cereal grain along with fiber, ruminal pH can decrease to a point where cellulolytic bacteria no longer grow. A dynamic model based on stella ® software is presented. This model evaluates all of the major aspects of ruminal cellulose degradation: (1) ingestion, digestion and passage of feed particles, (2) maintenance and growth of cellulolytic bacteria and (3) pH effects.  相似文献   

19.
Rumen Fungi and Forage Fiber Degradation   总被引:17,自引:8,他引:9       下载免费PDF全文
The role of anaerobic rumen fungi in in vitro forage fiber degradation was determined in a two forage × two inoculum source × five treatment factorial design. Forages used as substrates for rumen microorganisms were Coastal bermuda grass and alfalfa; inoculum sources were rumen fluid samples from a steer fed Coastal bermuda grass hay or alfalfa hay; treatments were whole rumen fluid (WRF), WRF plus streptomycin (0.2 mg/ml of rumen fluid) and penicillin (1.25 mg/ml of fluid), WRF plus cycloheximide (0.5 mg/ml of fluid), WRF plus streptomycin, penicillin, and cycloheximide, and McDougall buffer. Populations of fungi as shown by sporangial development were greater on bermuda grass leaves than on alfalfa leaflets regardless of inoculum source. However, endogenous fungal populations were greater from the alfalfa hay inoculum. Cycloheximide inhibited the fungi, whereas streptomycin and penicillin, which inhibit bacterial populations, resulted in an increase in numbers of sporangia in the alfalfa inoculum, suggesting an interaction between bacteria and fungi. Bacteria (i.e., WRF plus cycloheximide) were equal to the total population in degrading dry matter, neutral-detergent fiber (NDF), acid-detergent fiber (ADF), and cellulose for both inocula and both forages. Degradation of dry matter, NDF, ADF, and cellulose by anaerobic fungi (i.e., WRF plus streptomycin and penicillin) was less than that due to the total population or bacteria alone. However, NDF, ADF, and cellulose digestion was 1.3, 2.4, and 7.9 percentage units higher, respectively, for bermuda grass substrate with the alfalfa versus bermuda grass inoculum, suggesting a slight benefit by rumen fungi. No substantial loss of lignin (72% H2SO4 method) occurred due to fungal degradation. The most active fiber-digesting population in the rumen was the bacteria, even when streptomycin and penicillin treatment resulted in an increase in rumen fungi over untreated WRF. The development of large numbers of sporangia on fiber may not indicate a substantial role as digesters of forage.  相似文献   

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