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1.
细菌纤维素的研究进展   总被引:2,自引:0,他引:2  
细菌纤维素是一种新型微生物合成材料,在食品、医药、纺织、化工等方面有着巨大的应用潜力。简要介绍了细菌纤维素的性质和结构特点,系统阐述了细菌纤维素的生物合成途径及影响细菌纤维素产量的因素。  相似文献   

2.
细菌纤维素生产菌株的分离和菌种初步鉴定   总被引:13,自引:0,他引:13  
从长膜的醋醅中分离出一株发酵生产细菌纤维素产量较高且稳定的醋酸菌M12。根据《常见细菌系统鉴定手册》和《伯杰氏细菌鉴定手册》第九版,对醋酸菌M12进行了形态和生理生化特征的分析、测定了G+Cmol%含量,初步鉴定该菌为醋化醋杆菌木质亚种(Acetobacter xylinum subsp.xylinum,又称木醋杆菌)。  相似文献   

3.
不同培养方式对细菌纤维素产量和结构性质的影响   总被引:9,自引:0,他引:9  
考察了自行筛选的Acetobacter xylinum NUST4.2在静置培养和发酵罐培养获得的细菌纤维素(BC)的产量、基本结构和性能的差异。结果表明:静置培养时产纤维素7.5g/L,产率为0.052g/L/h,在机械搅拌发酵罐中培养3d产量达3.13g/L,产率达0.043g/L/h;SEM分析显示静置培养和发酵罐培养得到的纤维素均具有网状结构,但静置获得的纤维素丝带相互缠绕且层状重叠,更加致密,丝带更细;FT-IR分析知搅拌不改变纤维素的化学结构,但能减弱分子间氢键,和XRD结合分析可知静置培养的纤维素具有更高结晶指数,更高Iα含量和更大晶粒尺寸,但不改变晶型,仍为纤维素I型,说明搅拌会干扰纤维素初始纤丝的结晶,有利于形成更小的晶粒和较Iα稳定的Iβ。与棉纤维素相比,静置培养获得的纤维素的热稳定性更好,而发酵罐培养获得的纤维素则阻燃性更好。  相似文献   

4.
细菌纤维素的合成与调控进展   总被引:1,自引:0,他引:1  
细菌纤维素是1种天然的高纯度生物多聚物,与木质纤维素相比,其生产和加工过程更为方便和环保,因此已成为1种极有潜力的生物材料。葡糖酸醋杆菌是目前已知的产纤维素能力最高的菌株。综述了葡糖酸醋杆菌的细菌纤维素合成和调控机制以及为提高产量所进行的基因工程手段和培养方法。  相似文献   

5.
木葡糖酸醋杆菌(Gluconacetobacter xylinus)是细菌纤维素的主要生产菌株。在该菌中,BcsD是纤维素合酶的亚基之一,参与细菌纤维素的组装过程。利用CRISPR/dCas9系统调控bcsD基因的表达量,获得了一系列bcsD基因表达量不同的木葡糖酸醋杆菌。通过分析细菌纤维素的结构特征发现,细菌纤维素的结晶度和孔隙率随着木葡糖酸醋杆菌中bcsD表达量的变化而发生改变。其中孔隙率的变化范围在59.95%–84.05%之间,结晶度的变化范围在74.26%–93.75%之间,而细菌纤维素的产量并未因bcsD的表达量变化而发生显著下降。结果表明,bcsD的表达量低于55.34%后,细菌纤维素的孔隙率显著上升,并且细菌纤维素的结晶度与bcsD的表达量呈正相关。最终,通过干扰bcsD基因的表达,实现了一步发酵木葡糖酸醋杆菌获得了产量稳定且结构不同的细菌纤维素。  相似文献   

6.
醋酸杆菌发酵生产细菌纤维素的研究进展   总被引:10,自引:0,他引:10  
简要介绍醋酸杆菌发酵生产纤维素研究进展,内容包括:产纤维素的微生物、醋酸菌纤维素的结构特点、生物合成途径、一般提取处理及分析测定方法、商业用途、工业化发酵生产醋酸菌纤维素过程中存在的主要问题及发展前景。  相似文献   

7.
木醋杆菌纤维素合成操纵子的克隆及棉花转化   总被引:5,自引:0,他引:5  
革兰氏阴性菌木醋杆菌 (Acetobacterxylinum (Brown)Yamada)合成一种由纤维素微纤丝组成的胞外带状物。与高等植物纤维素相比 ,它具有独特的结构和机械性能。根据从木醋杆菌ATCC 5 35 82克隆的acs纤维素合成操纵子序列设计引物 ,用PCR的方法从木醋杆菌Ay2 0 1中克隆了ayacs纤维素合成操纵子的全部 4个基因。序列比较发现 ,两者高度同源。将连上CaMV 35S启动子的acsA、acsB克隆到植物表达载体pCAMBIA 130 1上 ,acsC、acsD克隆到pCOB30 2_3中。然后通过花粉管通道法转化棉花 (Gossypiumhirsutum)胚珠 ,收获的种子在含有卡那霉素和除草剂的双抗培养基上进行筛选。PCR检测发现 934粒种子中有 5棵植株含有全部 4个基因。这是首次将编码 4个功能蛋白的细菌操纵子成功地转入棉花  相似文献   

8.
革兰氏阴性菌木醋杆菌(Acetobacter xylinum (Brown) Yamada)合成一种由纤维素微纤丝组成的胞外带状物.与高等植物纤维素相比,它具有独特的结构和机械性能.根据从木醋杆菌ATCC 53582克隆的acs纤维素合成操纵子序列设计引物, 用PCR的方法从木醋杆菌Ay201中克隆了ayacs纤维素合成操纵子的全部4个基因.序列比较发现,两者高度同源.将连上CaMV 35S启动子的acsA、acsB克隆到植物表达载体pCAMBIA 1301上,acsC、acsD克隆到pCOB302-3中.然后通过花粉管通道法转化棉花(Gossypium hirsutum)胚珠,收获的种子在含有卡那霉素和除草剂的双抗培养基上进行筛选.PCR检测发现934粒种子中有5棵植株含有全部4个基因.这是首次将编码4个功能蛋白的细菌操纵子成功地转入棉花.  相似文献   

9.
木材本身就是一种燃料,用作新柴,在我国已有悠久历史。如何从那些废木料(木屑等)中所取洁净新能源?这是值得关注的问题。人们熟悉的乙醇,即是化工产品,又是液体燃料,配制成“乙醇汽油”(按一定比例)已在汽车行业被使用,大有发展之势。生产乙醇早有传统的生产工艺,通常用粮食(淀  相似文献   

10.
利用西瓜汁合成细菌纤维素的研究   总被引:2,自引:0,他引:2  
利用木醋杆菌为实验菌种,通过选择不同的种龄、接种量、发酵培养基液面积/液体积、初始pH值、培养温度和时间,对西瓜汁合成细菌纤维素的发酵务件进行研究,得到了最佳培养条件,并利用扫描电镜、红外光谱、元素分析等手段对合成细菌纤维素的微结构进行了观察分析.  相似文献   

11.
Cellulosic nanomaterials provide a novel and sustainable platform for the production of high performance materials enabled by nanotechnology. Bacterial cellulose (BC) is a highly crystalline material and contains pure cellulose without lignin and hemicellulose. BC offers an opportunity to provide control of the products’ properties in-situ, via specific BC production methods and culture conditions. The BC potential in advanced material applications are hindered by a limited knowledge of optimal BC production conditions, efficient process scale-up, separation methods, and purification methods. There is a growing body of work on the production of bacterial cellulose nanocrystals (BCNs) from BC fibers. However, there is limited information regarding the effect of BC fibers’ characteristics on the production of nanocrystals. This review describes developments in BC and BCNs production methods and factors affecting their yield and physical characteristics.  相似文献   

12.
Biomass acid hydrolysate of oleaginous yeast Trichosporon cutaneum after microbial oil extraction was applied as substrate for bacterial cellulose (BC) production by Komagataeibacter xylinus (also named as Gluconacetobacter xylinus previously) for the first time. BC was synthesized in static culture for 10 days, and the maximum BC yield (2.9?g/L) was got at the 4th day of fermentation. Most carbon sources in the substrate (glucose, mannose, formic acid, acetic acid) can be utilized by K. xylinus. The highest chemical oxygen demand (COD) removal (40.7?±?3.0%) was obtained at the 6th day of fermentation, and then the COD increased possibly due to the degradation of BC. The highest BC yield on COD consumption was 38.7?±?4.0% (w/w), suggesting that this is one efficient bioconversion for BC production. The BC structure was affected little by the substrate by comparison with that generated in classical HS medium using field-emission scanning electron microscope (FE-SEM), Fourier transform infrared, and X-ray diffraction. Overall, this technology can both solve the issue of waste oleaginous yeast biomass and produce valuable biopolymer (BC).  相似文献   

13.
Aims:  To determine the effect of carbon sources on cellulose produced by Gluconacetobacter xylinus strain ATCC 53524, and to characterize the purity and structural features of the cellulose produced.
Methods and Results:  Modified Hestrin Schramm medium containing the carbon sources mannitol, glucose, glycerol, fructose, sucrose or galactose were inoculated with Ga . xylinus strain ATCC 53524. Plate counts indicated that all carbon sources supported growth of the strain. Sucrose and glycerol gave the highest cellulose yields of 3·83 and 3·75 g l−1 respectively after 96 h fermentation, primarily due to a surge in cellulose production in the last 12 h. Mannitol, fructose or glucose resulted in consistent rates of cellulose production and yields of >2·5 g l−1. Solid state 13C CP/MAS NMR revealed that irrespective of the carbon source, the cellulose produced by ATCC 53524 was pure and highly crystalline. Scanning electron micrographs illustrated the densely packed network of cellulose fibres within the pellicles and that the different carbon sources did not markedly alter the micro-architecture of the resulting cellulose pellicles.
Conclusions:  The production rate of bacterial cellulose by Ga . xylinus (ATCC 53524) was influenced by different carbon sources, but the product formed was indistinguishable in molecular and microscopic features.
Significance and Impact of the Study:  Our studies for the first time examined the influence of different carbon sources on the rate of cellulose production by Ga . xylinus ATCC 53524, and the molecular and microscopic features of the cellulose produced.  相似文献   

14.
Rotating magnetic field (RMF) is an interesting alternative to conventional bacterial cellulose (BC) production methods. The BC synthesis processes may be affected by RMF, which facilitates the transfer of oxygen and nutrients from the media to the microbial cells. RMF may also directly influence the various physical and chemical properties of BC. The main aim of the present study was to evaluate the impact of the RMF on the BC in regard to its yield and material properties. The correlation between the efficiency of polymer production and the different time of exposure to the RMF was also analyzed to determine the conditions of lower energy consumption during the cellulose formation process. It was found that the Gluconacetobacter xylinus cultures exposed to the RMF for a half of the time of the entire cellulose production process (72 h), considering the results obtained in controls, synthesized BC more effectively than bacteria continuously exposed to the RMF for 144 h. Furthermore, the application of the RMF, regardless of the exposure mode, did not negatively affect the polymer material properties. It was concluded that the use of the RMF may provide a novel technique for altering cellulose biogenesis and may be used in multiple biotechnological applications.  相似文献   

15.
Bacterial cellulose (BC), which is produced by some bacteria, has unique structural, functional, physical and chemical properties. Thus, the mass production of BC for industrial application has recently attracted considerable attention. To enhance BC production, two aspects have been considered, namely, the engineering and genetic viewpoints. The former includes the reactor design, nutrient selection, process control and optimization; and the latter the cloning of the BC synthesis gene, and the genetic modification of the speculated genes for higher BC production. In this review, recent advances in BC production from the two viewpoints mentioned above are described, mainly using the bacteriumGluconacetobacter xylinus.  相似文献   

16.
AIMS: Gluconacetobacter xylinum is well known for its ability to produce large amounts of cellulose, however, little is known about its cell physiology. Our goal was to study the respiratory metabolism and components of the respiratory system of this bacterium in static cultures. To reach our goal, a medium formulation had to be designed to improve cell growth and cellulose production together with a novel method for the recovery of cells from cellulose pellicles. METHODS AND RESULTS: Successive modifications of a nutrient medium improved G. xylinum cell growth 4.5-fold under static culture conditions. A blender homogenization procedure for the releasing of cells from the cellulose matrix gave a high yield of cells recovered. Respiratory activities of purified cells were greatly stimulated by exogenous substrates and showed to be resistant to KCN. Unexpectedly, exogenous NADH was oxidized at high rates. Cytochromes a, b, c and d were identified after spectral analyses. CONCLUSIONS: Partial bioenergetic characterization of G. xylinum cells allowed us to propose a scheme for its respiratory system. In addition, the growth medium for biomass production and the procedure for the efficient recovery of cells from cellulose pellicles were significantly improved. SIGNIFICANCE AND IMPACT OF THE STUDY: This work provides the first-ever bioenergetic characterization of G. xylinum grown in static cultures. In addition, a novel methodology to obtain purified cells in suitable quantities for biochemical research is described.  相似文献   

17.
A recombinant Trichoderma reesei cellulase was used for the ultrasound‐mediated hydrolysis of soluble carboxymethyl cellulose (CMC) and insoluble cellulose of various particle sizes. The hydrolysis was carried out at low intensity sonication (2.4–11.8 W cm?2 sonication power at the tip of the sonotrode) using 10, 20, and 40% duty cycles. [A duty cycle of 10%, for example, was obtained by sonicating for 1 s followed by a rest period (no sonication) of 9 s.] The reaction pH and temperature were always 4.8 and 50°C, respectively. In all cases, sonication enhanced the rate of hydrolysis relative to nonsonicated controls. The hydrolysis of CMC was characterized by Michaelis‐Menten kinetics. The Michaelis‐Menten parameter of the maximum reaction rate Vmax was enhanced by sonication relative to controls, but the value of the saturation constant Km was reduced. The optimal sonication conditions were found to be a 10% duty cycle and a power intensity of 11.8 W cm?2. Under these conditions, the maximum rate of hydrolysis of soluble CMC was nearly double relative to control. In the hydrolysis of cellulose, an increasing particle size reduced the rate of hydrolysis. At any fixed particle size, sonication at a 10% duty cycle and 11.8 W cm?2 power intensity improved the rate of hydrolysis relative to control. Under the above mentioned optimal sonication conditions, the enzyme lost about 20% of its initial activity in 20 min. Sonication was useful in accelerating the enzyme catalyzed saccharification of cellulose. © 2013 American Institute of Chemical Engineers Biotechnol. Prog., 29:1448–1457, 2013  相似文献   

18.
A cellulose-producing strain isolated from rotten apples was identified asGluconace-tobacter hansenii based on its physiological properties and the 16S rDNA complete sequencing method, and specifically namedGluconacetobacter hansenii PJK. The amount of bacterial cellulose (BC) produced byG. hansenii PJK in a shaking incubator was 1.5 times higher than that produced in a static culture. The addition of ethanol to the medium during cultivation enhanced the productivity of bacterial cellulose, plus the supplementation of 1% ethanol into the culture medium made the produced BC aggregate into a big lump and thus protected the bacterial-cellulose-producingG. hansenii PJK cells in the shear stress field from being converted into noncellulose-producing (Cel) mutants. Cells subcultured three times in a medium containing ethanol retained their ability to produce BC without any loss in the production yield.  相似文献   

19.
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