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1.
细菌纤维素在医学方面的应用   总被引:1,自引:0,他引:1  
细菌纤维素是由木葡糖酸醋杆菌等细菌合成的纤维素,在化学组成、分子结构上与植物纤维素相近,但具有传统的纤维素所无法比拟的优势,如高亲水性、持水性、生物适应性、可调控性以及高纯度、高透明度等,因而在医学上显示出了巨大的应用潜力。细菌纤维素可用作人造皮肤、外科敷料、人造血管、软骨组织、震动膜、缓释载体等,是最有前途的生物聚合材料之一。  相似文献   

2.
细菌纤维素在生物医学材料中应用的研究进展   总被引:5,自引:0,他引:5  
细菌纤维素是一种天然的生物高聚物,具有生物活性、生物可降解性、生物适应性,具有独特的物理、化学和机械性能,例如高的结晶度、高的持水性、超细纳米纤维网络、高抗张强度和弹性模量等,因而成为近来国际上新型生物医学材料的研究热点。本文概括了细菌纤维素的性质、研究历史以及在生物医学材料上的应用,重点阐述了细菌纤维素在组织工程支架、人工血管、人工皮肤和治疗皮肤损伤方面的应用以及当前研究现状。  相似文献   

3.
细菌纤维素研究新进展   总被引:18,自引:0,他引:18  
杨礼富   《微生物学通报》2003,30(4):95-98
综述细菌纤维素的结构和性质、生物合成和分泌的过程与调控以及影响合成的因素。细菌纤维素的化学构成与天然纤维素相近 ,但又有其特殊性。参与纤维素合成的酶有 8种 ,其中纤维素合成酶是合成纤维素的关键酶和特征酶 ,环二鸟苷酸系统是研究得比较透彻的纤维素合成调节系统。培养基组成、发酵工艺和设备都会影响细菌纤维素的产量。深入研究细菌纤维素的合成和调节机制有助于揭示植物纤维素的生物合成机理和促进细菌纤维素的大规模商业化应用。  相似文献   

4.
反刍动物瘤胃是自然界中最有效的纤维素降解系统,其纤维素降解能力主要源于寄居于其中的纤维素降解细菌、真菌和原虫。其中,瘤胃纤维素降解细菌因数量庞大、种类繁多以及代谢途径丰富,在木质纤维素降解及利用方面发挥着重要作用。本文综述了国内外瘤胃纤维素降解细菌的种类,分析了瘤胃纤维素降解细菌的特性;阐述了瘤胃纤维素降解细菌通过纤维小体对纤维素的降解过程,以及瘤胃微生物之间的相互作用和相互制约关系;简述宏组学技术在开发新纤维素降解菌和新纤维素酶方面的应用,旨在为进一步研究纤维素降解细菌的降解机理,开发新的纤维素菌种和酶资源提供新的思路。  相似文献   

5.
细菌纤维素是一种天然的生物质高分子聚合物。相较于植物纤维素,其具有更高的纯度和优异的力学性能。有望作为一种绿色的新型高分子材料被广泛应用。细菌纤维素合酶作为合成细菌纤维素的关键酶,其主导细菌纤维素的合成过程。因此,对其合成机理的探索有助于实现细菌纤维素大量生产和广泛应用。本文从细菌纤维素合酶的基本特性出发,综述了菌种筛选、提升产量和合酶的细胞定位等内容;围绕纤维素合酶的作用机理阐述了体外合成方法的影响因素,以及利用该方法探究各亚基相关作用的现状。以此探究细菌纤维素合酶的合成机制,并提出了当前研究中存在的问题。同时,展望了该领域未来的研究方向,以期通过对合成机理的探讨为细菌纤维素的大规模应用提供理论基础。  相似文献   

6.
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   

7.
细菌纤维素是一种新型高分子材料,因其三维结构独特、机械强度高、吸水率锁水率高、生物相容性良好等优势,现已被广泛应用于医学、食品、化妆品、纺织等众多领域。本文阐述了近年来关于细菌纤维素发酵生产的菌种、发酵原料和发酵条件的研究进展,以期为日后提升发酵工艺、提高产量的相关工作提供参考。  相似文献   

8.
细菌纤维素的研究进展   总被引:13,自引:0,他引:13  
细菌纤维素是由醋酸杆菌属、根瘤菌属、土壤杆菌属、八叠球菌属等的某些细菌在一定条件下产生的,其中最有代表性的细菌是木醋杆菌。与传统植物纤维素相比,细菌纤维素具有很高的化学纯度。主要介绍细菌纤维素性质、生物合成的方法及其在食品工业、造纸工业和作为一种生物材料在医学工程等方面的应用。  相似文献   

9.
【目的】微生物土壤结皮(Microbial soil crusts, MSCs)对于遏制土壤荒漠化、恢复荒漠地区生态环境起着重要作用。MSCs中的微生物, 特别是纤维素降解菌, 起着稳固、修复生态环境的功能。外源纤维素诱导是全面认识MSCs中纤维素降解细菌的多样性及其在MSCs形成和发展中的作用的重要途径。【方法】通过对微生物土壤结皮分别添加小麦秸杆(麦秸)、锯末木屑两类纤维素材料进行诱导, 以PCR-DGGE方法分析细菌群落变化。【结果】外源纤维素, 特别是麦秸的添加会迅速提高MSCs中细菌丰富度及多样性, 将细菌丰富度提高约66.7%, Shannon-Weiner指数提高约15.8%; 相同处理的样品聚类位置较近, 说明纤维素对于MSCs细菌菌群变化起主导作用; 细菌群落结构组成在添加纤维素诱导后发生了变化, 麦秸诱导样品与同时期对照样品差异最大, 但各样品中Firmieutes和Alphaproteobacteria始终为优势类群; 所得DGGE条带序列中有13条与纤维素降解菌序列同源性相近, 他们所代表的细菌很可能具有纤维素降解能力, 其中厌氧性的梭菌属(Clostridium)所占比例最大, 约为46.1%, 其次为芽孢杆菌属(Bacillus), 约占30%; 纤维素降解过程中, 诱导增加了MSCs发育有重要作用的一些类群如Microcoleus vaginatus和一些Alphaproteobacteria类群细菌等的丰度和多样性, 它们中有的可通过分泌多糖物质等增强土壤颗粒黏结、有的可以其固碳或固氮等能力提高土壤营养水平。【结论】为认识外源纤维素诱导MSCs细菌群落结构的变化规律, MSCs中纤维素降解细菌的多样性及纤维素降解细菌对MSCs形成和发展的作用提供了基础, 同时也为恢复荒漠生态系统实践方法提供了理论依据。  相似文献   

10.
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   

11.
A novel method of manufacturing rigid and robust natural fiber preforms is presented here. This method is based on a papermaking process, whereby loose and short sisal fibers are dispersed into a water suspension containing bacterial cellulose. The fiber and nanocellulose suspension is then filtered (using vacuum or gravity) and the wet filter cake pressed to squeeze out any excess water, followed by a drying step. This will result in the hornification of the bacterial cellulose network, holding the loose natural fibers together.Our method is specially suited for the manufacturing of rigid and robust preforms of hydrophilic fibers. The porous and hydrophilic nature of such fibers results in significant water uptake, drawing in the bacterial cellulose dispersed in the suspension. The bacterial cellulose will then be filtered against the surface of these fibers, forming a bacterial cellulose coating. When the loose fiber-bacterial cellulose suspension is filtered and dried, the adjacent bacterial cellulose forms a network and hornified to hold the otherwise loose fibers together.The introduction of bacterial cellulose into the preform resulted in a significant increase of the mechanical properties of the fiber preforms. This can be attributed to the high stiffness and strength of the bacterial cellulose network. With this preform, renewable high performance hierarchical composites can also be manufactured by using conventional composite production methods, such as resin film infusion (RFI) or resin transfer molding (RTM). Here, we also describe the manufacturing of renewable hierarchical composites using double bag vacuum assisted resin infusion.  相似文献   

12.
Intact and partially acid hydrolyzed cellulose from Acetobacter xylinum were used as model substrates for cellulose hydrolysis by 1,4-beta-D-glucan-cellobiohydrolase I (CBH I) and 1,4-beta-D-endoglucanase I (EG I) from Trichoderma reesei. A high synergy between CBH I and EG I in simultaneous action was observed with intact bacterial cellulose (BC), but this synergistic effect was rapidly reduced by acid pretreatment of the cellulose. Moreover, a distinct synergistic effect was observed upon sequential endo-exo action on BC, but not on bacterial microcrystalline cellulose (BMCC). A mechanism for endo-exo synergism on crystalline cellulose is proposed where the simultaneous action of the enzymes counteract the decrease of activity caused by undesirable changes in the cellulose surface microstructure.  相似文献   

13.
Utilization of -xylose as carbon source for production of bacterial cellulose was studied. Seventeen strains of acetic acid bacteria were screened for their cellulose productivity in -glucose, -xylose, and -xylose/ -xylulose mixed media, respectively. -Xylose was not well metabolized by any bacterial strains that exhibited high cellulose production in -glucose medium. Consequently, bacterial cellulose production in -xylose medium was unsuccessful. -Xylose, however, became utilizable substrate for bacterial strains if xylose-isomerase was added to the medium. Acetobacter xylinus IFO 15606 was the best cellulose producer in -xylose/ -xylulose mixed medium, so cultural conditions were studied for enhanced cellulose production. With pH controlled, the strain could produce cellulose at a yield exceeding 0.3 g per 100 ml of -xylose/ -xylulose mixed medium, which was comparable to the yields in -glucose medium by excellent producers in the literature.  相似文献   

14.
Cellulose producing bacterial strain was isolated from citrus fruit juice fungus. The isolated strain was identified as Gluconacetobacter sp. gel_SEA623-2 based on several morphological characteristics, biochemical tests, and 16S rRNA conducted. Culture conditions for bacterial cellulose production by SEA623-2 were screened in static trays. Conditions were extensively optimized by varying the kind of fruit juice, pH, sugar concentration, and temperature for maximum cellulose production. SEA623-2 has a high productive capacity in citrus processing medium, but not in other fruits. The optimal combination of the media constituents for bacterial cellulose production is as follows: 10% citrus juice, 10% sucrose, 1% acetic acid, and 1% ethanol at 30 °C, pH 3.5. Bacterial cellulose produced by SEA623-2 has soft physical properties, high tensile strength, and high water retention value. The cellulose produced by the selected bacteria is suitable as a cosmetic and medical material.  相似文献   

15.
利用滤纸培养基从象白蚁(Nasutitermes sp.)肠道中分离出一个具有纤维素降解能力,能够降解滤纸的混合菌群。在起始pH 6.5,37℃培养条件下培养6d可得到最高的纤维素酶(CMCase和FPase)活性。在优化条件下,混合菌群的滤纸降解率在第15d达到最大值66.3%,显示出较高的滤纸降解效率。酶谱活性染色分析显示,混合菌群在以滤纸为唯一碳源的生长过程中至少表达了8种内切葡聚糖酶和4种木聚糖酶。扫描电镜观察到该混合菌群包含短杆状和球形两种形态的细菌。基于16SrRNA基因的系统发育分析表明,该混合菌群中至少存在两种细菌,分别属于沙雷氏菌属(Serratia)和类芽胞杆菌属(Paenibacillus)。这两种细菌协同降解纤维素的机制值得进一步深入研究。  相似文献   

16.
Aims: Bacterial cellulose is an extracellular polysaccharide secreted by Acetobacter xylinum, which has become a novel material increasingly used in food and medical industries. However, its broad application is limited by its low yield and high cost. 1‐Methylcyclopropene (1‐MCP) is a potent inhibitor to either exogenous or endogenous ethylene during the biological senescence of plants, which has been broadly applied in commercial preservation of fruits and vegetables. The purpose of this study was to investigate the effects of 1‐MCP on both the growth of Acet.  xylinum and its cellulose production to demonstrate the potential enhancement of bacterial cellulose yield. Methods and Results: Three groups of samples were fermented under agitated culture with 125 rev min?1 rotational speed. To the culture media, 0·14 mg of 1‐MCP contained in 100 mg dextrose powder was added on assigned days or on the first culture day only. Results from the measurement of bacterial cell concentration and bacterial cellulose yield at the end of a 12‐day culture demonstrated that cultures excluding 1‐MCP displayed a higher cell concentration and a lower cellulose production, while cultures containing 1‐MCP produced 15·6% more cellulose (1‐MCP added on day 1) and 25·4% (1‐MCP added on each assigned day) with less biomass. Conclusions: 1‐MCP was able to affect the growth of Acet. xylinum cells and resulted in increasing bacterial cellulose yield up to 25·4% over controls, which did not contain 1‐MCP. Significance and Impact of the Study: This was the first study to use the growth inhibitor of plants to investigate its effects on bacterial growth and production. It also demonstrated a significant enhancement of bacterial cellulose yield by the addition of 1‐MCP during the common agitated culture of Acet. xylinum.  相似文献   

17.
Cellulose triacetate prepared from bacterial cellulose of Acetobacter xylinum subsp. sucrofermentans BPR3001A showed a higher degree of polymerization and higher mechanical strength than that from the cotton linter. The fine fibrils of bacterial cellulose required only a short time for acetylation which preserved the high degree of polymerization.  相似文献   

18.
大熊猫的主食竹类粗纤维含量很高,而大熊猫自身的消化系统不能降解纤维素。现已从大熊猫的肠道正常菌群中鉴定出涵盖7个菌门的22种菌,相关的研究证明大熊猫的肠道正常菌群能降解纤维素。大熊猫肠道中的假单胞菌产生的漆酶能对竹纤维中的木质素进行氧化,使纤维素得以暴露,梭菌属、淀粉芽胞杆菌等产生的纤维素酶将其降解成大熊猫可利用的糖类。其具体机制有待进一步研究。  相似文献   

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