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1.
为了获得表达量高、稳定性好及染料脱色效率高的细菌漆酶,通过PCR扩增出短小芽孢杆菌LC01的漆酶基因并构建重组表达载体pPICZαA-lac,转化毕赤酵母菌株SMD1168H后利用甲醇诱导培养重组菌获得重组漆酶,纯化并分析了重组漆酶的性质。重组菌株产漆酶活性在第7天达到最高,为1 390 U/L。纯化的重组漆酶分子量为65 kD,以丁香醛连氮为底物的最适反应温度和pH分别为70℃和6.8。在pH 9.0放置10 d活性没有下降,在70℃保温10 h后仍保留36%的酶活。Al~(3+)、Fe~(3+)和Mn~(2+)完全抑制漆酶活性。在介体乙酰丁香酮参与下该漆酶能够有效脱色RB亮蓝、活性黑5和靛红,在pH 9.0时6 h的脱色率达到了90%以上,表明该重组漆酶能有效应用于染料废水的脱色处理。  相似文献   

2.
疣孢漆斑菌具有生长周期短,分泌漆酶酶活高等特点。利用已分离得到的疣孢漆斑菌GH-01(Myrothecium verrucaria GH-01)发酵产生粗酶液。进而通过分级沉淀、透析和层析的方法对漆酶粗酶液进行纯化。SDS-PAGE和Native-PAGE结果表明纯化可获得具有漆酶活性的单体蛋白。酶学性质研究表明,该漆酶催化最适温度为40℃,在底物ABTS存在条件下的最适p H值为4.0,且在低温及碱性条件具有较好的稳定性。此外通过漆酶对4大类染料脱色能力的研究,发现该漆酶对偶氮类的橙黄Ⅰ和蒽醌类的茜素红脱色有较好的脱色效果,反应1 h脱色率达80%以上;对三苯甲烷类的碱性品红脱色能力较弱,脱色率只能达到20%左右;脱色率最差的是杂环类的亚甲基蓝。在含10 U漆酶的体系中,对50 mg/L的染料降解效果相对最佳。  相似文献   

3.
[目的]分离获得产漆酶的细菌菌株,研究漆酶的酶学性质并应用于染料脱色.[方法]利用含铜的富集培养基筛选产漆酶细菌;通过形态特征、生理生化试验及16SrDNA序列分析等方法进行鉴定;以丁香醛连氮为底物测定漆酶的酶学性质;通过测定染料在最大吸收波长下吸光值的变化评价漆酶对染料的脱色效果.[结果]从森林土壤中筛选到一株漆酶高产菌株LS05,初步鉴定为解淀粉芽孢杆菌(Bacillus amyloliquefaciens);菌株LS05的芽孢漆酶以丁香醛连氮为底物的最适pH为6.6,最适温度为70℃;该酶具有较好的稳定性,经70℃处理10h或在pH 9.0条件下放置10d后可保留活性.对抑制剂SDS和EDTA具有一定的抗性,在碱性条件下可有效脱色不同的工业染料,RB亮蓝、活性黑和靛红1h内的脱色率达93%以上.[结论]Bacillus amyloliquefaciens LS05的芽孢漆酶在高温和碱性条件下稳定性强,相对于真菌漆酶具有更好的工业应用特性,可有效用于工业染料废水的处理.  相似文献   

4.
毛木耳漆酶纯化及其部分漆酶特性的研究   总被引:7,自引:1,他引:6  
对毛木耳AuriculariapolytrichaAP4的粗酶液进行PAGE电泳后发现含有三种漆酶同工酶,并且通过运用NativeSDS-PAGE获得三种漆酶的分子量大小分别约为:LacA(110kD);LacB(84kD);LacC(65kD)。对漆酶粗酶液通过硫酸铵分级沉淀和离子交换柱层析进行纯化,用SDS-PAGE证明获得纯化的单一漆酶LacB。LacB漆酶的反应的最适温度为30℃,最适pH为3.0。此酶氧化ABTS的Km值为6.64×10-mmol/L,金属离子对酶活的影响很大,其中5Ca2+,Mg2+,Zn2+,Na2+,Ag2+对漆酶LacB有明显的激活作用;Co2+,Hg2+,Fe3+,Fe2+,Ba2+等对酶活有明显的抑制作用。LacB和其它真菌漆酶一样具有底物专一性不强的特点,并且LacB对RB亮兰染料有很好的脱色作用。  相似文献   

5.
一株产漆酶真菌新月弯孢霉JQH-100在染料脱色中的应用   总被引:2,自引:0,他引:2  
从感染叶斑病的玉米叶片中分离、纯化得到一株高产漆酶的新月弯孢霉Curvularia lunata JQH-100菌株。液体培养Curvularia lunata JQH-100可产漆酶且活性较高,产酶高峰出现在第3天;以ABTS为底物粗酶液的最适反应温度是30℃,最适反应pH是2.8;染料脱色的研究表明,共培养体系对茜素红的脱色率达到了92.6%,对中性红和刚果红的脱色率也都在80%以上;Curvularia lunata JQH-100所产漆酶经纯化后对染料茜素红和刚果红有较高的脱色率,分别为82.1%和81.2%。研究结果显示Curvularia lunata JQH-100在染料废水处理中有较大应用潜力。  相似文献   

6.
姚英  于存 《菌物学报》2019,38(2):272-280
一色齿毛菌Cerrena unicolor是分离自野外的一株能够降解木质素的白腐真菌。为明确一色齿毛菌对染料的脱色能力及脱色前后染料毒性的变化,本研究利用一色齿毛菌对固体条件下4种染料进行脱色能力的检测,筛选出较易脱色的染料后,对该染料的脱色条件进行优化,并以3种豆类发芽率为指标测定该染料脱色前后的毒性变化。结果表明,一色齿毛菌对4种染料均可脱色,其中对刚果红的脱色效果最为明显;一色齿毛菌对刚果红脱色条件的优化结果为:20g/L麦芽糖,1g/L硝酸铵,1mmol/L硫酸镁,接种9块直径1cm菌饼,10mg/L染料浓度,pH 7时脱色效果最好;刚果红染料脱色前后毒性测试结果显示:染料脱色前发酵液毒性>染料脱色后发酵液毒性>清水处理毒性,表明刚果红染料存在一定的毒性,但在被一色齿毛菌脱色后,染料毒性有所降低。本研究为一色齿毛菌在染料废水脱色方面的应用及降低染料废水毒性提供一定的参考依据。  相似文献   

7.
一种pH稳定的黄色漆酶的快速纯化和性质特征   总被引:1,自引:0,他引:1  
通过丙酮沉淀和 DEAE- cellulose DE52 柱层析, 快速、有效地从一株白腐菌 Trametes sp. SQ01 的发酵液中纯化了漆酶。纯化的漆酶并非传统漆酶那样呈现蓝色, 而是一种黄色蛋白。以 ABTS 为底物时, 该酶的最适 pH 和温度分别是 pH 4.5 和 70°C, Km 为 0.029 mmol/L。T. SQ01 漆酶在 pH 3.0~11.0时, 酶活相对稳定, 在 pH 5.0 时最为稳定, 是目前报道的 pH 稳定性最好的漆酶。低浓度的金属离子(1 mmol/L) Cu2+、Mg2+ 、Ca2+ 和Co2+ 对漆酶有促进作用, 而高浓度(5 mmol/L)的Co2+、Zn2+、 Mn2+、Mg2+ 却抑制漆酶酶活。SDS 对该酶有激活作用, 当其浓度为1 mmol/L时, 漆酶相对酶活达到128%。DTT对漆酶强烈抑制, 即使是浓度为1 mmol/L, 亦可完全抑制漆酶酶活。纯化后的漆酶对亮蓝(RBBR) (100 mg/L)的脱色能力显著, 0.5 U/mL 的漆酶在 10 min内即可达到 80%的脱色率。T. sp. SQ01 漆酶的快速纯化以及高效脱色的能力表明该酶在染料脱色降解方面有着广阔的应用前景。  相似文献   

8.
黑木耳漆酶研究可为漆酶的进一步分离纯化、基因克隆表达和大规模生产应用奠定基础。对黑木耳"黑29"菌株漆酶粗酶液进行硫酸铵分级沉淀后,通过Native SDS-PAGE电泳检测,存在3种漆酶LacA、LacB、LacC,分子量分别为60,34,19 kD。经硫酸铵分级沉淀和DEAE-Sephacel柱层析技术分离得一纯化成分LacC,纯化倍数7.60,酶活性回收4.28%。对LacC的pH、温度、金属离子和Km值等部分酶学性质进行研究发现,该酶氧化ABTS的Km值为1.18×10-6mol/L,催化氧化底物ABTS的最适pH为3.8,在pH 3.0~4.6表现出较强的稳定性;最适反应温度为55℃,低于50℃时有较好的热稳定性;金属离子Ag+对漆酶有激活作用,而Fe3+、Mn2+、Co2+则有抑制作用。  相似文献   

9.
灵芝漆酶催化阳离子红2GL脱色的研究   总被引:6,自引:1,他引:5  
真菌漆酶在纺织物染料脱色及其废水净化等领域有着巨大的应用潜力。阳离子红2GL是使用广泛又难以处理的一种染料,现有的方法治理效果差。本研究优化了灵芝漆酶催化阳离子红2GL脱色的主要工艺参数:最适pH、温度、ABTS用量、漆酶用量和染料浓度分别为4.5、20℃、0.083mmol/L、10U/mL和50mg/L。在所得的最优条件下反应30min,阳离子红2GL的脱色率可达90.3%;反应24h,脱色率达100.0%。  相似文献   

10.
Ganoderma lucidum U-281漆酶催化偶氮染料活性黑5脱色   总被引:1,自引:0,他引:1  
漆酶在纺织染料脱色及印染废水处理领域有着广阔的应用前景。活性黑5是纺织印染中应用广泛的偶氮类活性染料,结构复杂,生物降解性低。以灵芝菌Ganoderma lucidum U-281所产漆酶对活性黑5进行氧化脱色,采用单因素逐一优化方法得到了U-281漆酶催化活性黑5脱色的工艺参数:染料初始浓度25mg/L、漆酶用量2.0U/mL、铜离子添加量40mmol/L、pH 6.0、40℃。在优化条件下,4h可使RB5脱色62.34%,24h可完成90%以上的脱色效果。  相似文献   

11.
Dye decolorizing potential of the white rot fungus Ganoderma lucidum KMK2 was demonstrated for recalcitrant textile dyes. G. lucidum produced laccase as the dominant lignolytic enzyme during solid state fermentation (SSF) of wheat bran (WB), a natural lignocellulosic substrate. Crude enzyme shows excellent decolorization activity to anthraquinone dye Remazol Brilliant Blue R (RBBR) without redox mediator whereas diazo dye Remazol Black-5 (RB-5) requires a redox mediator. Polyacrylamide gel electrophoresis (PAGE) of crude enzyme confirms that the laccase enzyme was the major enzyme involved in decolorization of either dyes. Native and SDS-PAGE indicates that the presence of single laccase with molecular weight of 43 kDa. N-Hydroxybenzotriazole (HBT) at a concentration of 1 mM was found as the best redox mediator. RB-5 (50 mg l−l) was decolorized by 62% and 77.4% within 1 and 2 h, respectively by the crude laccase (25 U ml−1). RBBR (50 mg l−l) was decolorized by 90% within 20 h, however, it was more efficient in presence of HBT showing 92% decolorization within 2 h. Crude laccase showed high thermostability and maximum decolorization activity at 60 °C and pH 4.0. The decolorization was completely inhibited by the laccase inhibitor sodium azide (0.5 mM). Enzyme inactivation method is a good method which averts the undesirable color formation in the reaction mixture after decolorization. High thermostability and efficient decolorization suggest that this crude enzyme could be effectively used to decolorize the synthetic dyes from effluents.  相似文献   

12.
In this study crude laccases from the white‐rot fungi Cerrena unicolor and Trametes hirsuta were tested for their ability to decolorize simulated textile dye baths. The dyes used were Remazol Brilliant Blue R (RBBR) (100 mg/L), Congo Red (12.5 mg/L), Lanaset Grey (75 mg/L) and Poly R‐478 (50 mg/L). The effect of redox mediators on dye decolorization by laccases was also assessed. C. unicolor laccase was able to decolorize all the dyes tested. It was especially effective towards Congo Red and RBBR with 91 and 80% of color removal in 19.5 h despite the fact that simulated textile dye baths were used. Also Poly R‐478 and Lanaset Grey were partially decolorized (69 and 48%, respectively). C. unicolor laccase did not need any mediators for removing the dyes. However, T. hirsuta laccase was only able to decolorize simulated Congo Red and RBBR dye baths (91 and 45%, respectively) in 19.5 h without mediators. When using mediators the decolorization capability was enhanced substantially, e.g. Poly R‐478 was decolorized by 78% in 25.5 h. On the whole, both laccases showed potential to be used in industrial applications.  相似文献   

13.
In vitro transgenic hairy root cultures provide a rapid system for physiological, biochemical studies and screening of plants for their phytoremediation potential. The hairy root cultures of Brassica juncea L. showed 92% decolorization of Methyl orange within 4 days. Out of the different redox mediators that were used to achieve enhanced decolorization, 2, 2′-Azinobis, 3-ethylbenzothiazoline-6-sulfonic acid (ABTS) was found to be the most efficient. Laccase activity of 4.5 U mg−1 of protein was observed in hairy root cultures of Brassica juncea L., after the decolorization of Methyl orange. Intracellular laccase produced by B. juncea root cultures grown in MS basal medium was purified up to 2.0 fold with 6.62 U mg−1 specific activity using anion-exchange chromatography. Molecular weight of the purified laccase was estimated to be 148 kDa by sodium dodecyl sulfate polyacrylamide gel electrophoresis. The purified enzyme efficiently oxidized ABTS which was also required for oxidation of the other tested substrates. The pH and temperature optimum for laccase activity were 4.0 and 40°C, respectively. The purified enzyme was stable up to 50°C and was stable in the pH range of 4.0–6.0. Laccase activity was strongly inhibited by sodium azide, EDTA, dithiothreitol and l-cysteine. The purified enzyme decolorized various textile dyes in the presence of ABTS as an efficient redox mediator. These findings contribute to a better understanding of the enzymatic process involved in phytoremediation of textile dyes by using hairy roots.  相似文献   

14.
Phloroglucinol, thymol, and violuric acid (VIO) were selected as laccase mediators after screening 14 different compounds with indigo carmine (indigoid dye) as a substrate. With the presence of these three mediators, a nearly complete decolorization (90-100%) was attained in 1 h. Thus, these three compounds were used as mediators for the decolorization of other four dyes. The results indicated that VIO was effective mediator in decolorization of Remazol brilliant blue R (RBBR, anthraquinoid dye) and Coomassie brilliant blue G-250 (CBB, triphenylmethane dyes), and Acid red (diazo dye). In presence of VIO, the four dyes described above attained 70% decolorization. Thymol was able to mediate decolorization of RBBR and Azure A (heterocyclic dye). Phloroglucinol has no mediating capability in decolorization of the four dyes analyzed. Mediator concentration, pH, and copper ion have an effect on the decolorization of the RBBR. Our data suggested that the decolorization capabilities of laccase/mediator system were related to the types of mediator, the dye structure and decolorization condition.  相似文献   

15.
During dye decoloration by Trametes versicolor ATCC 20869 in modified Kirk’s medium, manganese peroxidase (MnP) and laccase were produced, but not lignin peroxidase, cellobiose dehydrogenase or manganese-independent peroxidase. Purified MnP decolorized azo dyes [amaranth, reactive black 5 (RB5) and Cibacron brilliant yellow] in Mn2+-dependent reactions but did not decolorize an anthraquinone dye [Remazol brilliant blue R (RBBR)]. However, the purified laccase decolorized RBBR five to ten times faster than the azo dyes and the addition of a redox mediator, 2,2′-azino-bis(3-ethylbenzthiazoline-6-sulfonic acid), did not alter decoloration rates. Amaranth and RB5 were decolorized the most rapidly by MnP since they have a hydroxyl group in an ortho position and a sulfonate group in the meta position relative to the azo bond. During a typical batch decoloration with the fungal culture, the ratio of laccase:MnP was 10:1 to 20:1 (based on enzyme activity) and increased to greater than 30:1 after decoloration was complete. Since MnP decolorized amaranth about 30 times more rapidly than laccase per unit of enzyme activity, MnP should have contributed more to decoloration than laccase in batch cultures.  相似文献   

16.
Laccase from Coriolopsis gallica UAMH8260 was immobilized on activated agarose and tested for repeated decolorization of industrial dyes. Immobilized enzyme retained 85% of the initial activity after 10 cycles, and 70% after 3 months of intermittant use in the decolorization of Reactive Blue 198 dye. Free laccase decolorized 13 of 38 industrial dyes tested but, in the presence of 1 mM 1-hydroxybenzotriazole as a free radical mediator, the enzyme decolorized 26 of the 38 dyes increasing both the range and rate of decolorization. Immobilized laccase showed a higher thermal stability at 70 °C than free enzyme but no increased resistance to organic solvents.  相似文献   

17.
An extracellular laccase was isolated and purified from Pleurotus sajor-caju grown in submerged culture in a bioreactor, and used to investigate its ability to decolorize three azo dyes. The extracellular laccase production was enhanced up to 2.5-fold in the medium amended with xylidine (1 mM). Purification was carried out using ammonium sulfate (70% w/v), DEAE-cellulose, and Sephadex G-100 column chromatography. The enzyme was purified up to 10.3-fold from the initial protein preparation with an overall yield of 53%. The purified laccase was monomeric with an apparent molecular mass of 61.0 kDa. The purified enzyme exerted its optimal activity with 2,2-azino–bis(3-ethylbenzo-thiazoline-6-sulfonate (ABTS) and oxidized various lignin-related phenols. The catalytic efficiencies k cat/K m determined for ABTS and syringaldazine were 9.2×105 and 8.7×105, respectively. The optimum pH and temperature for the purified enzyme was 5.0 and 40 °C, respectively. Sodium azide completely inhibited the laccase activity. The absorption spectrum revealed type 1 and type 3 copper signals. The purified enzyme decolorized azo dyes such as acid red 18, acid Black 1, and direct blue 71 up to 90, 87, and 72%, respectively. Decolorization ability of P. sajor-caju laccase suggests that this enzyme could be used for decolorization of industrial effluents.  相似文献   

18.
Trametes trogii BAFC 463 culture fluids (containing 110 U ml−1 laccase; 0.94 U ml−1 manganese peroxidase), as well as its purified laccase were capable of decolorizing azoic, indigoid, triphenylmethane, anthraquinonic and heterocyclic dyes, in the absence of redox mediators. Six dyes: RBBR, Indigo Carmine, Xylidine, Malachite Green, Gentian Violet and Bromophenol Blue were almost completely degraded (more than 85% decolorization after 1 d) by either laccase or T. trogii itself in culture, proving the role of the enzyme in dye decolorization. The purified laccase also decolorized 65% of Fast Blue RR and 30% of Azure B and Methylene Blue after 24 h. The use of redox mediators significantly increased the decolorization rates (90% decolorization of Azure B after 1 h). 1-hydroxybenzotriazole resulted the best redox mediator, but the natural mediator p-hydroxybenzoic acid also demonstrated its efficiency for dye decolorization. Due to their ability to decolorize recalcitrant dyes without addition of redox mediators, high laccase activities, high thermostability and efficient decolorization at 70 °C and pH 7.0, even in the presence of high concentrations of heavy metals (100 mM Cu+2, Pb+2 or Cd+2) or in a synthetic dyebath, T. trogii culture fluids could be effectively used to decolorize synthetic dyes from effluents.  相似文献   

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