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形态工程——渗透压及其对黑曲霉形态和生产力的影响。

Morphology engineering--osmolality and its effect on Aspergillus niger morphology and productivity.

机构信息

Institute of Biochemical Engineering, Technische Universität Braunschweig, Gaußstraße 17, 38106 Braunschweig, Germany.

出版信息

Microb Cell Fact. 2011 Jul 29;10:58. doi: 10.1186/1475-2859-10-58.

Abstract

BACKGROUND

The filamentous fungus Aspergillus niger is a widely used strain in a broad range of industrial processes from food to pharmaceutical industry. One of the most intriguing and often uncontrollable characteristics of this filamentous organism is its complex morphology, ranging from dense spherical pellets to viscous mycelia depending on culture conditions. Optimal productivity correlates strongly with a specific morphological form, thus making high demands on process control.

RESULTS

In about 50 2L stirred tank cultivations the influence of osmolality on A. niger morphology and productivity was investigated. The specific productivity of fructofuranosidase producing strain A. niger SKAn 1015 could be increased notably from 0.5 to 9 U mg(-1) h(-1) around eighteen fold, by increasing the culture broth osmolality by addition of sodium chloride. The specific productivity of glucoamylase producing strain A. niger AB1.13, could be elevated using the same procedure. An optimal producing osmolality was shown to exist well over the standard osmolality at about 3.2 osmol kg(-1) depending on the strain. Fungal morphology of all cultivations was examined by microscope and characterized by digital image analysis. Particle shape parameters were combined to a dimensionless Morphology number, which enabled a comprehensive characterization of fungal morphology correlating closely with productivity. A novel method for determination of germination time in submerged cultivations by laser diffraction, introduced in this study, revealed a decelerated germination process with increasing osmolality.

CONCLUSIONS

Through the introduction of the versatile Morphology number, this study provides the means for a desirable characterization of fungal morphology and demonstrates its relation to productivity. Furthermore, osmolality as a fairly new parameter in process engineering is introduced and found to affect fungal morphology and productivity. Osmolality might provide an auspicious and reliable approach to increase the productivity in industrial processes. Because of the predictable behavior fungal morphology showed in dependence of osmolality, a customization of morphology for process needs seems feasible.

摘要

背景

丝状真菌黑曲霉是一种在从食品到制药工业等广泛领域的工业过程中广泛使用的菌株。这种丝状生物最有趣且常常不可控的特征之一是其复杂的形态,根据培养条件的不同,其形态范围从密集的球形颗粒到粘性菌丝体不等。最佳生产力与特定的形态形式密切相关,因此对过程控制提出了很高的要求。

结果

在大约 50 个 2L 搅拌罐培养中,考察了渗透压对黑曲霉形态和生产力的影响。通过添加氯化钠将发酵液渗透压提高,可使产果聚糖酶的黑曲霉 SKAn 1015 的比生产力从 0.5 提高到 9 U mg(-1) h(-1),提高了约 18 倍。使用相同的方法,可以提高产葡糖淀粉酶的黑曲霉 AB1.13 的比生产力。结果表明,存在一个最佳的生产渗透压,其值远高于标准渗透压,约为 3.2 osmol kg(-1),具体取决于菌株。通过显微镜检查了所有培养物的真菌形态,并通过数字图像分析对其进行了表征。将颗粒形状参数组合成无量纲的形态数,该形态数能够全面地描述与生产力密切相关的真菌形态。本研究中引入了一种通过激光衍射测定浸没培养中发芽时间的新方法,该方法表明随着渗透压的增加,发芽过程会减速。

结论

通过引入多功能形态数,本研究提供了一种理想的真菌形态描述方法,并证明了其与生产力的关系。此外,渗透压作为过程工程中的一个新参数,被发现会影响真菌形态和生产力。渗透压可能是提高工业过程生产力的一种有前途且可靠的方法。由于真菌形态在渗透压依赖性方面表现出可预测的行为,因此似乎可以根据工艺需要对其形态进行定制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/19dd/3178489/57114c37a9cf/1475-2859-10-58-1.jpg

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