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1.
β-甘露聚糖酶的结构生物学研究现状和展望   总被引:2,自引:0,他引:2  
摘要:β-甘露聚糖酶是一种半纤维素水解酶,广泛存在于动植物和微生物中,在造纸,纺织印染,洗涤,食品,饲料,医药和石油开采等工业中有着广阔的应用前景。β-甘露聚糖酶往往由催化域和非催化域两部分组成的。催化域折叠成TIM桶状结构,参与底物的结合和催化;碳水化合物结合域,作为最常见的一种非催化域,采用经典的β三明治结构,可以增强结合有纤维素的甘露糖水解能力。本文主要对组成β-甘露聚糖酶的各个模块三维结构特征和功能进行了系统的综述。  相似文献   

2.
天然来源的多糖底物上常存在乙酰基取代,特异性的乙酰酯酶能够切割这些底物上的乙酰基,从而有利于聚糖底物的进一步降解.对Bacillus sp. N16-5甘露聚糖利用基因簇上编码的乙酰酯酶AesA进行了基因克隆和异源表达,并对其酶学性质进行了研究.aesA基因长957bp,编码318个氨基酸,属于碳水化合物酯酶第7家族.AesA对4-甲基伞形酮乙酸酯(4-methylumbelliferyl-acetate)表现出较好的催化活性,金属离子Fe3+,Fe2+,Mn2+及Cu2+对AesA活性均有不同程度的促进作用.AesA与甘露聚糖酶ManA对乙酰化的甘露聚糖底物具有显著的协同作用.此项研究有助于理解嗜碱芽孢杆菌Bacillus sp.N16-5对甘露聚糖的水解机制,并且在甘露聚糖降解中具有潜在的应用前景.  相似文献   

3.
半纤维素是一类丰富可再生而又亟待开发利用的生物质资源,将半纤维素降解为糖类进而生产木糖醇及其它化学品是利用生物质资源的关键一步。乙酰木聚糖酯酶是降解半纤维素的一个重要酶,它能够水解乙酰化木聚糖中的木糖残基上的2位和3位的O 乙酰基,在工业、农业及食品业具有广阔的应用前景。综述了乙酰木聚糖酯酶的分类、酶学性质、催化机制、基因克隆和协同酶解等方面的研究进展,同时对该研究进行了展望。  相似文献   

4.
嗜酸热脂环酸杆菌中甘露聚糖酶活性位点的确立   总被引:1,自引:0,他引:1  
【目的】通过定点突变确定嗜酸热脂环酸杆菌中甘露聚糖酶的活性催化位点。【方法】根据序列比对和GH53家族的结构信息选择可能的催化活性位点,利用重叠PCR法构建定点突变体,采用薄层层析(TLC)法和3,5-二硝基水杨酸(DNS)法检测各酶蛋白活性。【结果】通过重叠PCR法成功构建了7个位点的突变体,其中第150和159位的氨基酸突变对活性改变甚少或几乎没有,而第151和231位谷氨酸的羧基基团的改变以及双位点突变体E2Q则导致其对各种底物催化活性的丧失,说明位于β4和β7折叠的C末端的E151和E231的羧基基团作为功能基团参与了催化反应。【结论】E151和E231分别是新型甘露聚糖酶AaManA的酸碱催化位点和亲核催化位点。  相似文献   

5.
诺卡氏菌形放线菌(Nocardioform actinomycetes)NA3-540产生的β-甘露聚糖酶(ManNA)能不同程度地水解槐豆胶、瓜胶、田菁胶和魔芋胶等甘露多聚糖为组分的植物胶,生成系列甘露寡糖;该酶只轻微地水解香豆胶,不能水解β-甘露聚糖、黄原胶、海藻胶;ManNA对槐豆胶、瓜胶和魔芋胶多糖的Km值和Vmax分别为1.75、6.13、3.9mg/mL和2485、1303、853μmol/(min/mg),表明槐豆胶是该酶的理想水解底物。ManNA水解几种植物胶的明显差异,表明甘露聚糖的糖链组成和空间结构明显地影响着β-甘露聚糖酶的水解活性。  相似文献   

6.
半乳甘露聚糖胶酶法改性研究进展   总被引:2,自引:0,他引:2  
由于半乳甘露聚糖的水溶液在低浓度下仍具高黏性以及它的凝胶性质,因此在工业上具有很多重要的应用。半乳甘露聚糖聚糖的酶法改性主要包括脱去支链和切断主链两种方式。相对于化学改性来说,酶法改性具有易控制、反应条件温和等很多优点,因此成为改变半乳甘露聚糖分子结构以获得所需特性的最具潜力的改性方法。α-半乳糖苷酶和 β-甘露聚糖酶是半乳甘露聚糖改性和水解中最常用的酶。简要介绍了有关这两种酶的来源和新型制备菌株的近期研究概况。在医药和食品等工业中,酶法改性后的半乳甘露聚糖具有很广阔的应用前景。  相似文献   

7.
[目的]β-甘露聚糖酶和木聚糖酶都属于半纤维素酶,它们已经同时运用于工农业生产的许多领域.构建β-甘露聚糖酶和木聚糖酶共表达菌株并进行相关评价.[方法]通过设计一个共同的酶切位点,将菌株Bacillus subtilis BE-91中的β-甘露聚糖酶和木聚糖酶基因串联到表达载体pET28a(+)上,转化大肠杆菌构建了一株能够共表达β-甘露聚糖酶和木聚糖酶的菌株B.pET28a-man-xyl.[结果]菌株诱导21h后,发酵液中β-甘露聚糖酶和木聚糖酶的酶活分别为713.34 U/mL和1455.83 U/mL,是胞内酶活的11.8倍和2.53倍.[结论]SDS-PAGE分析、水解圈活性检测和胞外酶与胞内酶酶活检测表明:两个酶均以功能蛋白独立分泌到胞外.此外,与β-甘露聚糖酶和木聚糖酶单独酶解半纤维素相比,复合酶的酶解效果更好.菌株的成功构建为复合酶制剂(半纤维素酶制剂)的研究和生产奠定基础.  相似文献   

8.
采用生物法提取草本纤维是纤维质产业的重要发展方向,而利用β-甘露聚糖酶降解非纤维素物质中的甘露聚糖是纤维生物提取技术中的关键环节.分析β-甘露聚糖酶降解和脱除非纤维素物质的机制,总结主要应用于生物脱胶和生物制浆领域的β-甘露聚糖酶及有关微生物的研究进展,提出草本纤维提取技术未来的重点研究方向,并对β-甘露聚糖酶的应用前景进行展望.  相似文献   

9.
[背景]芽胞杆菌源枯草杆菌蛋白酶(subtilisin carlsberg)、乙酰基木聚糖酯酶(acetyl xylan esterase)和头孢菌素乙酰水解酶(cephalosporin acetyl hydrolase)具有较高的过水解催化活性,有商业开发价值。[目的]挖掘芽胞杆菌菌株中具有过水解酶催化活性的水解酶蛋白基因,为后续制备过水解酶及酶法合成过氧乙酸奠定基础。[方法]利用定向筛选培养基,从植物根际及纳豆产品中筛选产蛋白酶芽胞杆菌候选菌株,并利用RFLP及16S rRNA基因对其进行鉴定。从蛋白酶高产芽胞杆菌菌株中克隆枯草杆菌蛋白酶、乙酰木聚糖醋酶和头孢菌素乙酰水解酶的全长基因。[结果]从植物根际土壤及纳豆产品中共分离到85个候选菌株,RFLP及16S rRNA基因鉴定结果表明候选菌株均为芽胞杆菌,分别属于Bacillus subtilis、Bacillus cereus、Bacillus pumilus和Bacillus megaterium四个类群。从B.subtilis NSYT-3克隆的枯草杆菌蛋白酶基因编码的多肽链全长381个氨基酸,从B.pumilus OSLJ-3克隆得到的乙酰基木聚糖酯酶基因编码的多肽链全长320个氨基酸,从B.subtilis NSYT-3克隆的头孢菌素乙酰水解酶基因编码的多肽链全长318个氨基酸,3D结构模拟表明这3个酶蛋白均具有α/β水解酶折叠家族蛋白结构特点。[结论]芽胞杆菌源具过水解催化活性水解酶基因的克隆,为后续开发酶法合成过氧乙酸工艺奠定了基础。  相似文献   

10.
纤维素和木聚糖的充分利用对于生物燃料的生产是非常重要的。文中利用PCR的方法从嗜热子囊菌Thermoascus crustaceus JCM12803中克隆到一个新颖的双功能木聚糖/纤维素酶基因Tcxyn10a,并将其在毕赤酵母Pichia pastoris GS115中实现高效异源表达。经过蛋白纯化和酶学性质研究分析,TcXyn10A的最适pH值和最适温度分别为5.0和65-70℃,能够在酸性至碱性(pH 3.0-11.0)条件下和60℃下保持稳定;对榉木木聚糖、小麦阿拉伯木聚糖、羧甲基纤维素钠和地衣多糖均有降解活性,比活分别为(1 480±26)U/mg、(2 055±28)U/mg、(7.4±0.2)U/mg和(10.9±0.4)U/mg;同源建模结构以及分子对接试验表明,双功能酶TcXyn10A只含有单一催化结构域,且木聚糖底物与纤维素底物共用一条催化通道。文中为探索双功能酶结构与其功能的关系提供了很好的素材。  相似文献   

11.
Cel5 from marine Hahella chejuensis is composed of glycoside hydrolase family-5 (GH5) catalytic domain (CD) and two carbohydrate binding modules (CBM6-2). The enzyme was expressed in Escherichia coli and purified to homogeneity. The optimum endoglucanase and xylanase activities of recombinant Cel5 were observed at 65 °C, pH 6.5 and 55 °C, pH 5.5, respectively. It exhibited K m of 1.8 and 7.1 mg/ml for carboxymethyl cellulose and birchwood xylan, respectively. The addition of Ca2+ greatly improved thermostability and endoglucanase activity of Cel5. The Cel5 retained 90 % of its endoglucanase activity after 24 h incubation in presence of 5 M concentration of NaCl. Recombinant Cel5 showed production of cellobiose after hydrolysis of cellulosic substrates (soluble/insoluble) and methylglucuronic acid substituted xylooligosaccharides after hydrolysis of glucuronoxylans by endo-wise cleavage. These results indicated that Cel5 as bifunctional enzyme having both processive endoglucanase and xylanase activities. The multidomain structure of Cel5 is clearly distinguished from the GH5 bifunctional glycoside hydrolases characterized to date, which are single domain enzymes. Sequence analysis and homology modeling suggested presence of two conserved binding sites with different substrate specificities in CBM6-2 and a single catalytic site in CD. Residues Glu132 and Glu219 were identified as key catalytic amino acids by sequence alignment and further verified by using site directed mutagenesis. CBM6-2 plays vital role in catalytic activity and thermostability of Cel5. The bifunctional activities and multiple substrate specificities of Cel5 can be utilized for efficient hydrolysis of cellulose and hemicellulose into soluble sugars.  相似文献   

12.
Various combinations of the four domains of the multifunctional mannanase from Caldicellosiruptor saccharolyticus have been cloned and expressed in Escherichia coli. The four domains comprise two catalytic domains (1 and 4), and two putative cellulose binding domains (2 and 3). Each of the six gene products (Man1, Man123, Man1234, Man23, Man234 and Man4) was partially purified by heat treatment.The enzymes Man1234, Man123 and Man1 exhibited activity on mannans, and Man1234, Man234 and Man4 exhibited activity on xylan and carboxymethylcellulose (CMC). For the complete enzyme (Man1234) all activities were of the same order of magnitude. Activities were additive against a mixture of mannan and xylan or mannan and CMC (but not xylan and CMC). The expression product Man23 exhibited activity on none of the substrates tested, nor did its presence influence thermostability or significantly reduce the Km value for any of the substrates. However, when expressed in combination with domains 1 or 4 it greatly increased their activity.We conclude that domain 1 catalyses mannan hydrolysis and domain 4 catalyses xylan and CMC hydrolysis at the same active site: domains 2 and 3 have no obvious function, since they do not reduce substrate Km nor affect thermostability. However, their effect on rates of substrate hydrolysis may indicate a role influencing the conformation of the adjacent catalytic domains.  相似文献   

13.
Microbial degradation of plant cell walls is a central component of the carbon cycle and is of increasing importance in environmentally significant industries. Plant cell wall-degrading enzymes have a complex molecular architecture consisting of catalytic modules and, frequently, multiple non-catalytic carbohydrate binding modules (CBMs). It is currently unclear whether the specificities of the CBMs or the topology of the catalytic modules are the primary drivers for the specificity of these enzymes against plant cell walls. Here, we have evaluated the relationship between CBM specificity and their capacity to enhance the activity of GH5 and GH26 mannanases and CE2 esterases against intact plant cell walls. The data show that cellulose and mannan binding CBMs have the greatest impact on the removal of mannan from tobacco and Physcomitrella cell walls, respectively. Although the action of the GH5 mannanase was independent of the context of mannan in tobacco cell walls, a significant proportion of the polysaccharide was inaccessible to the GH26 enzyme. The recalcitrant mannan, however, was fully accessible to the GH26 mannanase appended to a cellulose binding CBM. Although CE2 esterases display similar specificities against acetylated substrates in vitro, only CjCE2C was active against acetylated mannan in Physcomitrella. Appending a mannan binding CBM27 to CjCE2C potentiated its activity against Physcomitrella walls, whereas a xylan binding CBM reduced the capacity of esterases to deacetylate xylan in tobacco walls. This work provides insight into the biological significance for the complex array of hydrolytic enzymes expressed by plant cell wall-degrading microorganisms.  相似文献   

14.
【目的】筛选影响Ll.LtrB内含子编码蛋白(Intron encoded protein,IEP)反转录功能的关键催化位点,并获得无反转录活性的IEP突变体。【方法】首先,利用NCBI数据库,通过序列比对及同源建模方法筛选影响IEP反转录功能的关键氨基酸催化位点;然后,对筛选获得的关键催化位点进行定点突变,同时以Targetron载体为模板,构建无反转录功能的突变型Targetron打靶系统;最后,以大肠杆菌lacZ基因为例,体内验证IEP突变体的功能及其对Ⅱ型内含子"归巢"效率的影响。【结果】筛选到C164和G214两个位点是影响内含子编码蛋白反转录功能的关键氨基酸残基,并获得C164K和G214W两个突变体。体内功能分析表明,此两个位点突变完全失活了Ⅱ型内含子的"归巢"功能。【结论】筛选并获得了失活反转录功能的Ll.LtrB内含子编码蛋白突变体,为深入研究Ⅱ型内含子的结构和"归巢"机理奠定了基础。  相似文献   

15.
【目的】探索大肠埃希氏菌(Escherichia coli,E.coli)FtsZ(236-245)结构域两性螺旋特性对FtsZ组装和FtsZ-FtsA相互作用的影响。【方法】利用分子克隆和定点突变技术,构建FtsZ及其突变体表达载体,亲和纯化获得相应目标蛋白;通过同源重组和Pl转导构建QN23-QN29菌株;利用活细胞成像观察FtsZ及其突变体的胞内定位特点;膜蛋白分离和Western blot分析FtsZ突变体的膜结合特性变化;非变性胶分离和体外聚合分析检测定点突变对FtsZ单体组装特性的影响;免疫沉淀和Far Western blot实验检测FtsZ/FtsZ~*-FtsA间的相互作用。【结果】FtsZ~(E234A/K)和FtsZ~(E241A/K)突变体的功能活性降低、备突变体在E.coli内不能正确定位和形成功能性Z环;E237A/K和E241A/K位点突变致备突变体聚合能力降低、FtsZ*-FtsA的相互作用减弱和FtsZ的膜结合特性变化。【结论】E237和E241是影响FtsZ(236-245)区域两性螺旋特性和FtsZ组装及FtsZ-FtsA相互作用的重要氨基酸。  相似文献   

16.
Several hemicellulolytic microorganisms were screened for their capability of liberating acetyl side groups from native softwood galactoglucomannan. All the microorganisms tested were found to produce an extracellular acetyl glucomannan esterase(s). The highest activity was detected in Schizophyllum commune culture filtrate. However, the enzyme produced by Aspergillus oryzae was most efficient in long-term hydrolysis. Acting alone, the purified esterase of A. oryzae was able to liberate most of the acetic acid from galactoglucomannan. The addition of other galactoglucomannan-degrading enzymes did not affect the action of esterase. On the other hand, the addition of esterase clearly enhanced the action of mannanase and -galactosidase. The purified acetyl esterase of Trichoderma reesei was able to liberate acetic acid from short oligomers of glucomannan, whereas the acetyl xylan esterase of T. reesei was unable to act on glucomannan oligomers of any size. Correspondence to: M. Tenkanen  相似文献   

17.
Summary An endo-gb-1,4-mannanase cloned from caldocellum saccharolyticum and expressed in Escherichia coli was partially purified. The purification involved heat treatment, anion exchange and gel filtration. The mannanase was only active against mannan, glucomannans and galactoglucomannans and obeyed Michaelis-Menten kinetics on these substrates. The rate and extent of hydrolysis was dependent on the type of substrate. Galactomannans were not as readily depolymerized as the mannan and glucomannans investigated. The glucose content of the glucomannans did not affect the rate of hydrolysis and only slightly affected the extent. The molecular mass of the mannanase was estimated at 39 kDa. The pH and temperature optima were 6.5 and 80° C respectively. The mannanase was very thermostable with a half life of 48 min at 85° C and no loss in activity after 24 h at 70° C. Offprint request to: H. W. Morgan  相似文献   

18.
【目的】将嗜碱芽孢杆菌丙氨酸消旋酶OF4DadX的N-端结构域分别与多个不同种属的丙氨酸消旋酶C-端结构域重组,探究丙氨酸消旋酶C-端结构域功能。【方法】利用基因拼接构建丙氨酸消旋酶重组基因,通过镍亲和层析纯化酶蛋白,采用D-氨基酸氧化酶偶联法检测重组酶蛋白的酶学特性,借助分子筛和HPLC液相色谱分析其聚合状态及动力学参数。【结果】通过基因拼接构建了12个重组基因,经检测,表达、纯化获得的重组酶蛋白中只有OF4TtDadX240c具有催化活性,其活性仅为OF4DadX的60.54%,酶催化动力学结果显示OF4TtDadX240c催化反应速率Vmax/Km下降约10倍,但其稳定性大幅提高,半衰期比OF4DadX延长约5倍,耐热性提高较明显;聚合状态表明OF4DadX、OF4TMDadX226c和OF4TtDadX240c为二聚体结构,其他酶蛋白均为单体,但OF4TMDadX226c未检测到活性,推测可能是酶催化活性中心移位,未能形成质子转移而失去活性。【结论】丙氨酸消旋酶C-端折叠结构域对消旋酶低聚化、稳定性和酶催化功能具有重要作用。  相似文献   

19.
The non-catalytic, family 11 carbohydrate binding module (CtCBM11) belonging to a bifunctional cellulosomal cellulase from Clostridium thermocellum was hyper-expressed in E. coli and functionally characterized. Affinity electrophoresis of CtCBM11 on nondenaturing PAGE containing cellulosic polysaccharides showed binding with β-glucan, lichenan, hydroxyethyl cellulose and carboxymethyl cellulose. In order to elucidate the involvement of conserved aromatic residues Tyr 22, Trp 65 and Tyr 129 in the polysaccharide binding, site-directed mutagenesis was carried out and the residues were changed to alanine. The results of affinity electrophoresis and binding adsorption isotherms showed that of the three mutants Y22A, W65A and Y129A of CtCBM11, two mutants Y22A and Y129A showed no or reduced binding affinity with polysaccharides. These results showed that tyrosine residue 22 and 129 are involved in the polysaccharide binding. These residues are present in the putative binding cleft and play a critical role in the recognition of all the ligands recognized by the protein.  相似文献   

20.
【背景】随着代谢工程与合成生物学的快速发展,通过对异养微生物进行代谢改造,利用生物法进行二氧化碳固定成为一个新的趋势。生物代谢途径中存在着大量固碳酶,这些酶尚待挖掘与应用,不同的酶固碳效率之间也缺少比较。【目的】在体外和体内对固碳功能和效率进行评价。【方法】选取3种固碳酶,即核酮糖1,5-二磷酸羧化加氧酶(ribose 1,5-diphosphate carboxylation oxygenase, RuBisCo)、磷酸烯醇式丙酮酸羧激酶(phosphoenolpyruvate carboxykinase, PCK)和乙酰辅酶A羧化酶(acetyl coenzyme A carboxylase, ACC)在大肠杆菌中异源表达并纯化。测定纯酶的酶活,并建立无细胞催化实验-液质联用评价酶固碳能力的方法。在厌氧发酵条件下检测代谢指标,比较过表达固碳酶的地衣芽孢杆菌相较于原始菌的代谢差异。【结果】3种酶均实现可溶性表达,纯酶的比酶活分别为66.43、1.16和12.52 U/mg。通过体外无细胞催化实验,ACC在3种酶中表现出最高的固碳效率。分别过表达了PCK、ACC的重组地衣芽孢杆菌,厌氧发酵主产物乳酸的转化率从48.6%分别提升至58.1%和59.7%。【结论】可以通过体外、体内结合的方式对固碳酶的效率进行评价,该研究可为固碳酶在微生物遗传改造中理性、精准地应用提供参考。  相似文献   

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