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生物活性肽的生产技术与功能特性

Production Technology and Functionality of Bioactive Peptides.

作者信息

Wen Qingmei, Zhang Lei, Zhao Feng, Chen Yilu, Su Yi, Zhang Xiaochun, Chen Pu, Zheng Tao

机构信息

Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou, 510640, China.

Business Department, University of Waterloo, 200 University Avenue West, Waterloo, Ontario, N2L3G1, Canada.

出版信息

Curr Pharm Des. 2023;29(9):652-674. doi: 10.2174/1381612829666230201121353.

Abstract

Bioactive peptides are specific protein fragments that prove health-promoting potential for humans. The bioactivities include antimicrobial, antioxidant, anticancer, immunomodulatory activities, etc. Hence, bioactive peptides' production technology and processes have attracted excessive attention, especially concerning peptides' synthesis, separation, identification, and functionality. This review summarizes the relevant investigations from the above four aspects. Among the production technology of bioactive peptides, biosynthesis, chemosynthesis, technology for separation and purification, and the interactions responsible for peptide-based nanostructures are emphasized. Here, the biosynthesis of peptides includes enzymatic hydrolysis, microbial fermentation, and recombinant DNA technology, and chemosynthesis consists of solution-phase peptide synthesis and solid-phase peptide synthesis (SPPS). The commonly used enzymes in enzymatic hydrolysis are investigated, including pepsin, trypsin, and alcalase. The commonly used microorganisms, typical processes, protein sources, and advantages of microbial fermentation are analyzed. Membrane separation (including ultrafiltration and nanofiltration), chromatography technology (including ion-exchange chromatography, gel filtration chromatography, affinity chromatography, and reverse-phase high-performance liquid chromatography (RP-HPLC)), and electrophoresis technology are detailed for the purification technology. Mass spectrometry (MS), its combination with the high-performance separation method, and nuclear magnetic resonance (NMR) are elucidated for the identification technology. The non-covalent interactions responsible for peptide-based nanostructures involve electrostatic force, hydrogen bonds, π-π stacking, hydrophobic interaction, and van der Waals force. Afterward, we detail the peptides' antihypertensive, antithrombotic, anticancer, antimicrobial, antioxidant, and immunomodulatory activities. The activity analysis mainly involves peptides' sources, structural features, mechanisms of action, and influencing factors. Based on the production and functionality elucidation, potential challenges for peptide application in biomedicine are given. The challenge is analyzed from the aspects of purification and identification technologies and influencing factors of peptides' bioactivities. Our work will elaborate on advances in the production technology of peptides and their bioactivities, which could promote and expand their industrial applications.

摘要

生物活性肽是对人类具有促进健康潜力的特定蛋白质片段。其生物活性包括抗菌、抗氧化、抗癌、免疫调节活性等。因此,生物活性肽的生产技术和工艺引起了广泛关注,尤其是在肽的合成、分离、鉴定和功能方面。本综述从上述四个方面总结了相关研究。在生物活性肽的生产技术中,重点介绍了生物合成、化学合成、分离纯化技术以及基于肽的纳米结构的相互作用。这里,肽的生物合成包括酶解、微生物发酵和重组DNA技术,化学合成包括溶液相肽合成和固相肽合成(SPPS)。研究了酶解中常用的酶,包括胃蛋白酶、胰蛋白酶和碱性蛋白酶。分析了微生物发酵中常用的微生物、典型工艺、蛋白质来源及其优势。详细介绍了用于纯化技术的膜分离(包括超滤和纳滤)、色谱技术(包括离子交换色谱、凝胶过滤色谱、亲和色谱和反相高效液相色谱(RP-HPLC))以及电泳技术。阐述了用于鉴定技术的质谱(MS)、其与高效分离方法的结合以及核磁共振(NMR)。基于肽的纳米结构的非共价相互作用包括静电力、氢键、π-π堆积、疏水相互作用和范德华力。随后,详细介绍了肽的降压、抗血栓、抗癌、抗菌、抗氧化和免疫调节活性。活性分析主要涉及肽的来源、结构特征、作用机制和影响因素。基于生产和功能的阐述,给出了肽在生物医学应用中的潜在挑战。从纯化和鉴定技术以及肽生物活性的影响因素方面分析了挑战。我们的工作将详细阐述肽生产技术及其生物活性的进展,这可能会促进和扩大它们的工业应用。

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