乳制品加工中酶固定化的创新方法:进展和工业应用
Mati Ullah Khan1, Anum Farid1, Shuang Liu1
1School of Agriculture Engineering and Food Science, Shandong University of Technology, Zibo, P.R. China.
Critical reviews in food science and nutrition
|January 22, 2025
概括
酶固定化通过提高酶的可重复使用性和稳定性来增强乳制品加工. 这种可持续技术提高了效率和产品质量,同时降低了牛奶生产的成本和环境影响.
科学领域:
- 食品科学与技术 食品科学与技术
- 生物技术是生物技术.
- 化学工程是化学工程的重要组成部分.
背景情况:
- 乳制品行业正在采用先进的酶技术,以优化工艺和提高产品质量.
- 酶固定是一种关键的创新,提供诸如可重复使用性,稳定性和可持续性等好处.
研究的目的:
- 审查乳制品加工酶固定化技术的最新进展.
- 探索乳制品行业中固定酶的工业应用和益处.
主要方法:
- 审查各种固定化策略:吸附,亲和结合,离子/共价结合,捕获,封装和交叉链接.
- 对关键乳制品酶的影响分析:乳酶,脂酶,蛋白酶和转谷氨酸酶.
- 检查经济和生态优势.
主要成果:
- 固定化技术显著提高了乳制品应用中的酶性能和稳定性.
- 降低生产成本和环境足迹是主要的好处.
- 通过优化酶活性来保持或提高产品质量.
结论:
- 酶固定化正在通过创新的方法改变牛奶加工.
- 持续的研发对于满足全球乳制品市场需求至关重要.
- 未来的方向包括探索新的固定方法和扩大工业应用.
相关概念视频
Microbes in Food Production
Microbial fermentation is central to food biotechnology, enhancing flavor, texture, preservation, and stability. Fermentative microorganisms metabolize carbohydrates into organic acids, alcohols, and other metabolites that inhibit spoilage organisms and improve digestibility while contributing distinctive sensory qualities.In baking, amylases naturally present in flour hydrolyze starch into monosaccharides such as glucose, which Saccharomyces cerevisiae ferments anaerobically. Through...
Bioreactor Controls-III
Strain improvement is a foundational strategy in industrial microbiology aimed at maximizing microbial productivity, particularly because natural isolates typically yield commercially valuable products in very low concentrations. Although optimizing the culture medium and environmental conditions can improve yields, these adjustments are inherently limited by the organism’s genetic potential. As a result, the focus shifts toward genetic modifications to enhance biosynthetic capacity. The...
Upstream Processing
Upstream processing represents a critical phase in biomanufacturing, wherein biological systems such as microorganisms, mammalian cells, or insect cells are cultivated to produce therapeutic proteins, vaccines, enzymes, or other biologically derived products. This phase encompasses all steps from the selection and genetic manipulation of the production organism to the cultivation of cells in bioreactors under tightly controlled environmental conditions.Host Selection and Genetic OptimizationThe...
Production of Organic Acids
Lactic acid, an important organic acid extensively applied in food, pharmaceutical, and biodegradable polymer industries, is primarily produced via microbial fermentation. This method is favored over chemical synthesis due to its environmental sustainability and capacity for enantiomerically pure product formation. Among various microbial processes, the fermentation of starch-based substrates stands out due to the abundance and renewability of raw materials like corn and potatoes.Hydrolysis of...
Production of Antibiotics
Penicillin, one of the earliest and most widely used antibiotics, is produced industrially by the filamentous fungus Penicillium chrysogenum. Large stirred-tank bioreactors ranging from tens to hundreds of thousands of liters maintain tightly controlled temperature, pH, and dissolved oxygen conditions to support fungal metabolism and maximize antibiotic yield. Penicillin is a secondary metabolite, synthesized primarily during the stationary growth phase, which requires a carefully managed...
Production of Pharmaceuticals
Industrial insulin production uses genetically engineered E. coli expressing a proinsulin gene controlled by a tryptophan promoter and containing a methionine linker for later cleavage. The cells also carry ampicillin resistance for selective growth. Seed cultures are stored at −80 °C and production begins by thawing a small amount to inoculate starter cultures, which are progressively scaled to a 50,000-L bioreactor. In the bioreactor, E. coli grow in nutrient-rich media under sterile, tightly...


