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真菌葡萄糖氧化酶(GOD)的改进策略、成本效益生产及潜在应用:最新进展

Improvement Strategies, Cost Effective Production, and Potential Applications of Fungal Glucose Oxidase (GOD): Current Updates.

作者信息

Dubey Manish K, Zehra Andleeb, Aamir Mohd, Meena Mukesh, Ahirwal Laxmi, Singh Siddhartha, Shukla Shruti, Upadhyay Ram S, Bueno-Mari Ruben, Bajpai Vivek K

机构信息

Laboratory of Mycopathology and Microbial Technology, Centre of Advanced Study in Botany, Institute of Science, Banaras Hindu UniversityVaranasi, India.

Laboratory of Molecular Biology, Department of Botany, Dr. Hari Singh Gour UniversitySagar, India.

出版信息

Front Microbiol. 2017 Jun 13;8:1032. doi: 10.3389/fmicb.2017.01032. eCollection 2017.

DOI:10.3389/fmicb.2017.01032
PMID:28659876
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5468390/
Abstract

Fungal glucose oxidase (GOD) is widely employed in the different sectors of food industries for use in baking products, dry egg powder, beverages, and gluconic acid production. GOD also has several other novel applications in chemical, pharmaceutical, textile, and other biotechnological industries. The electrochemical suitability of GOD catalyzed reactions has enabled its successful use in bioelectronic devices, particularly biofuel cells, and biosensors. Other crucial aspects of GOD such as improved feeding efficiency in response to GOD supplemental diet, roles in antimicrobial activities, and enhancing pathogen defense response, thereby providing induced resistance in plants have also been reported. Moreover, the medical science, another emerging branch where GOD was recently reported to induce several apoptosis characteristics as well as cellular senescence by downregulating gene expression. These widespread applications of GOD have led to increased demand for more extensive research to improve its production, characterization, and enhanced stability to enable long term usages. Currently, GOD is mainly produced and purified from and species, but the yield is relatively low and the purification process is troublesome. It is practical to build an excellent GOD-producing strain. Therefore, the present review describes innovative methods of enhancing fungal GOD production by using genetic and non-genetic approaches in-depth along with purification techniques. The review also highlights current research progress in the cost effective production of GOD, including key advances, potential applications and limitations. Therefore, there is an extensive need to commercialize these processes by developing and optimizing novel strategies for cost effective GOD production.

摘要

真菌葡萄糖氧化酶(GOD)广泛应用于食品工业的不同领域,用于烘焙产品、干蛋粉、饮料和葡萄糖酸生产。GOD在化学、制药、纺织和其他生物技术产业中也有其他一些新的应用。GOD催化反应的电化学适用性使其成功应用于生物电子器件,特别是生物燃料电池和生物传感器。GOD的其他关键方面,如补充GOD饮食后提高的摄食效率、在抗菌活性中的作用以及增强病原体防御反应,从而在植物中提供诱导抗性,也有报道。此外,在医学科学这一新兴分支中,最近有报道称GOD通过下调基因表达诱导多种细胞凋亡特征以及细胞衰老。GOD的这些广泛应用导致对更广泛研究的需求增加,以改进其生产、表征和增强稳定性,从而实现长期使用。目前,GOD主要从 和 物种中生产和纯化,但产量相对较低,纯化过程也很麻烦。构建优良的GOD生产菌株是可行的。因此,本综述深入描述了通过遗传和非遗传方法提高真菌GOD产量的创新方法以及纯化技术。该综述还强调了GOD经济高效生产的当前研究进展,包括关键进展、潜在应用和局限性。因此,迫切需要通过开发和优化经济高效生产GOD的新策略来实现这些工艺的商业化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca29/5468390/670a407f815f/fmicb-08-01032-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca29/5468390/d2b5d12c99f5/fmicb-08-01032-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca29/5468390/670a407f815f/fmicb-08-01032-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca29/5468390/d2b5d12c99f5/fmicb-08-01032-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca29/5468390/670a407f815f/fmicb-08-01032-g0002.jpg

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