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优化豆科植物根际相关解淀粉芽孢杆菌 B-CM18 产几丁质酶的培养基成分。

Optimization of media components for chitinase production by chickpea rhizosphere associated Lysinibacillus fusiformis B-CM18.

机构信息

National Bureau of Agriculturally Important Microorganisms, Mau, Uttar Pradesh, India -275101.

出版信息

J Basic Microbiol. 2013 May;53(5):451-60. doi: 10.1002/jobm.201100590. Epub 2012 Jun 26.

Abstract

Chitinase producing strain B-CM18 was isolated from chickpea rhizosphere and identified as Lysinibacillus fusiformis B-CM18. It showed in vitro antifungal activity against a wide range of fungal plant pathogens and was found to produce several PGPR activities. Further, a multivariate response surface methodology was used to evaluate the effects of different factors on chitinolytic activity and optimizing enzyme production. A central composite design was employed to achieve the highest chitinase production at optimum values of the process variables, viz., temperature (20-45 °C), sodium chloride (2-7%), starch (0.1-1%) and yeast extract (0.1-1%), added in the minimal medium supplemented with colloidal chitin (1-10%; w:w). The fit of the model (R(2)  = 0.5692) was found to be significant. The production medium to achieve the highest chitinase production (101 U ml(-1) ) was composed of the minimal medium composed of chitin (6.09%), NaCl (4.5%), starch (0.55%) and yeast extract (0.55%) with temperature (32.5 °C). The results show that the optimization strategy led to an increase in chitinase production by 56.1-fold. The molecular mass of the chitinase was estimated to be 20 kDa by anion exchange and gel filtration chromatography. Further, purified chitinase showed strong antifungal activity against test pathogens. Overall, these results may serve as a base line data for enhancing the chitinolytic potential of bacterial antagonists for bio-management of chickpea pathogens.

摘要

从鹰嘴豆根际分离到产几丁质酶菌株 B-CM18,并鉴定为溶杆菌 B-CM18。它表现出对广泛的真菌植物病原体的体外抗真菌活性,并且被发现产生几种 PGPR 活性。此外,使用多元响应面法来评估不同因素对几丁质酶活性的影响,并优化酶的生产。采用中心复合设计,在最佳工艺变量(温度为 20-45°C、氯化钠为 2-7%、淀粉为 0.1-1%和酵母提取物为 0.1-1%)下实现最高的几丁质酶产量,这些变量添加到最小培养基中,并用胶体几丁质(1-10%;w/w)补充。该模型(R²=0.5692)的拟合度被发现是显著的。为了获得最高的几丁质酶产量(101 U ml(-1)),生产培养基由最小培养基组成,其中包含几丁质(6.09%)、NaCl(4.5%)、淀粉(0.55%)和酵母提取物(0.55%),温度为 32.5°C。结果表明,优化策略使几丁质酶产量增加了 56.1 倍。阴离子交换和凝胶过滤色谱法估计几丁质酶的分子量为 20 kDa。此外,纯化的几丁质酶对测试的病原体表现出强烈的抗真菌活性。总的来说,这些结果可以作为提高细菌拮抗剂几丁质酶潜力的基准数据,用于生物管理鹰嘴豆病原体。

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