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Screening and characterization of amylase and cellulase activities in psychrotolerant yeasts

机译:抗精神病酵母菌中淀粉酶和纤维素酶活性的筛选和表征

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摘要

Amylases and cellulases have great potential for application in industries such as food, detergent, laundry, textile, baking and biofuels. A common requirement in these fields is to reduce the temperatures of the processes, leading to a continuous search for microorganisms that secrete cold-active amylases and cellulases. Psychrotolerant yeasts are good candidates because they inhabit cold-environments. In this work, we analyzed the ability of yeasts isolated from the Antarctic region to grow on starch or carboxymethylcellulose, and their potential extracellular amylases and cellulases. All tested yeasts were able to grow with soluble starch or carboxymethylcellulose as the sole carbon source; however, not all of them produced ethanol by fermentation of these carbon sources. For the majority of the yeast species, the extracellular amylase or cellulase activity was higher when cultured in medium supplemented with glucose rather than with soluble starch or carboxymethylcellulose. Additionally, higher amylase activities were observed when tested at pH 5.4 and 6.2, and at 30–37 °C, except for Rhodotorula glacialis that showed elevated activity at 10–22 °C. In general, cellulase activity was high until pH 6.2 and between 22–37 °C, while the sample from Mrakia blollopis showed high activity at 4–22 °C. Peptide mass fingerprinting analysis of a potential amylase from Tetracladium sp. of about 70 kDa, showed several peptides with positive matches with glucoamylases from other fungi. Almost all yeast species showed extracellular amylase or cellulase activity, and an inducing effect by the respective substrate was observed in a minor number of yeasts. These enzymatic activities were higher at 30 °C in most yeast, with highest amylase and cellulase activity in Tetracladium sp. and M. gelida, respectively. However, Rh. glacialis and M. blollopis displayed high amylase or cellulase activity, respectively, under 22 °C. In this sense, these yeasts are interesting candidates for industrial processes that require lower temperatures.
机译:淀粉酶和纤维素酶在食品,洗涤剂,洗衣,纺织,烘焙和生物燃料等行业中具有巨大的应用潜力。这些领域的共同要求是降低过程的温度,从而导致不断寻找分泌冷活性淀粉酶和纤维素酶的微生物。抗精神病的酵母菌是很好的候选者,因为它们栖息在寒冷的环境中。在这项工作中,我们分析了从南极地区分离的酵母在淀粉或羧甲基纤维素上生长的能力,以及它们潜在的细胞外淀粉酶和纤维素酶。所有测试的酵母都能够以可溶性淀粉或羧甲基纤维素作为唯一碳源生长。然而,并非所有人都通过这些碳源的发酵产生乙醇。对于大多数酵母菌种,当在添加了葡萄糖而不是可溶性淀粉或羧甲基纤维素的培养基中培养时,细胞外淀粉酶或纤维素酶的活性较高。此外,在pH值5.4和6.2以及在30–37°C下进行测试时,观察到更高的淀粉酶活性,除了冰川红假单胞菌在10-22°C下显示出较高的活性。通常,纤维素酶的活性一直很高,直到pH值6.2和22-37°C之间,而毛Mr木的样品则在4-22°C时表现出高活性。 Tetracladium sp。潜在淀粉酶的肽质量指纹分析。约70 kDa的片段显示出与其他真菌的葡糖淀粉酶具有正匹配的几种肽。几乎所有酵母菌种都显示出细胞外淀粉酶或纤维素酶活性,并且在少数酵母菌中观察到了各自底物的诱导作用。在大多数酵母中,这些酶的活性在30°C时较高,在Tetracladium sp中具有最高的淀粉酶和纤维素酶活性。和M. gelida。但是,Rh。在22°C下,glacialis和blollopis分别显示出高淀粉酶或纤维素酶活性。从这个意义上讲,这些酵母是需要较低温度的工业过程的有趣候选物。

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