基于神经网络模型及遗传算法的贝莱斯芽孢杆菌发酵沙丁鱼下脚料抗氧化活性的条件优化
PDF下载 (170)曹亚玲,吴祖芳,沈 飚,翁佩芳,章潇伟.基于神经网络模型及遗传算法的贝莱斯芽孢杆菌发酵沙丁鱼下脚料抗氧化活性的条件优化[J].宁波大学学报(理工版),2024,37(1):13-19.DOI:10.20098/j.cnki.1001-5132.2022.1208
CAO Yaling,WU Zufang,SHEN Biao,WENG Peifang,ZHANG Xiaowei.Optimization of antioxidant activity of sardine discards fermented by Bacillus velezensis based on neural network model and genetic algorithm[J].Journal of Ningbo University(Natural Science & Engineering Edition),2024,37(1):13-19.DOI:10.20098/j.cnki.1001-5132.2022.1208
| Title: | Optimization of antioxidant activity of sardine discards fermented by Bacillus velezensis based on neural network model and genetic algorithm |
| 作者: | 曹亚玲, 吴祖芳, 沈 飚, 翁佩芳, 章潇伟 |
| Author(s): | CAO Yaling, WU Zufang, SHEN Biao, WENG Peifang, ZHANG Xiaowei |
| 关键词: | 沙丁鱼; 贝莱斯芽孢杆菌; 发酵; 神经网络; 遗传算法; 抗氧化 |
| Keywords: | sardines; Bacillus velezensis; fermentation; neural network; genetic algorithm; antioxidative |
| 分类号: | TS209 |
| DOI: | 10.20098/j.cnki.1001-5132.2022.1208 |
| 文献标识码: | A |
| 摘要: | 微生物发酵技术是提升海洋鱼产品加工副产物价值的一种重要而有效的途径, 而作为沙丁鱼加工副产物的鱼头是一种优质蛋白质和生物活性物质的绝佳来源. 本文拟利用从传统鱼露中分离筛选的具有多种蛋白酶活性的贝莱斯芽孢杆菌SW5发酵沙丁鱼下脚料鱼头制备抗氧化活性物质, 采用人工神经网络与遗传算法(ANN-GA)相结合方法, 以DPPH自由基清除率和蛋白水解度(DH)为考察指标, 确定最佳发酵条件. 结果表明, 沙丁鱼下脚料抗氧化物质最佳发酵条件为发酵时间42h, 发酵温度37℃, 接种量3%, 并在此条件下通过实验验证DPPH自由基清除率为91.26%. 研究结果可为SW5菌株在海洋蛋白质资源的有效利用及功能性海洋食品生产应用上提供数据参考. |
| Abstract: | Microbial fermentation technology is an important and effective way to enhance the value of marine fish processing by-products. Fish head, a by-product of sardine processing, is an excellent source of high-quality protein and bioactive compounds. Antioxidant components were prepared from Bacillus velezensis SW5 fermented sardine discards and fish heads with various protease activities isolated and screened from traditional fish sauce. The combination of artificial neural network and genetic algorithm (ANN-GA) was used to optimize the fermentation condition of antioxidant peptides production. The free radical scavenging rate and the degree of proteolysis were used as the indicators to determine the optimal fermentation conditions. The results showed that the optimal fermentation conditions for antioxidant components from sardine discards were fermentation time of 42h, fermentation temperature of 37℃, and inoculum volume of 3%. Under these conditions, the DPPH free radical scavenging rate was 91.26% through the verification experiment. The research results can provide data reference for SW5 strain in effective utilization of marine protein resources and functional marine food production. |
| 参考文献 /References: | [1] 袁学文, 王炎冰. 远东拟沙丁鱼低聚肽化学组成及其增强免疫力功能评价[J]. 食品与发酵工业, 2018, 44(4):104-110. [2] GUEDES M, COSTA-PINTO A R, GON?ALVES V M F, et al. Sardine roe as a source of lipids to produce liposomes[J]. ACS Biomaterials Science & Engineering, 2020, 6(2):1017-1029. [3] SIEWE F B, KUDRE T G, NARAYAN B. Optimisation of ultrasound-assisted enzymatic extraction conditions of umami compounds from fish by-products using the combination of fractional factorial design and central composite design[J]. Food Chemistry, 2021, 334:127498. [4] V?ZQUEZ J A, MEDU??A A, DUR?N A I, et al. Production of valuable compounds and bioactive metabolites from by-products of fish discards using chemical processing, enzymatic hydrolysis, and bacterial fermentation[J]. Marine Drugs, 2019, 17(3):139-153. [5] MO W Y, MAN Y B, WONG M H. Use of food waste, fish waste and food processing waste for China’s aquaculture industry: needs and challenge[J]. Science of the Total Environment, 2018, 613/614:635-643. [6] DE MEDEIROS E F, VIEIRA B M, DE PEREIRA C M P, et al. Production of biodiesel using oil obtained from fish processing residue by conventional methods assisted by ultrasonic waves: heating and stirring[J]. Renewable Energy, 2019, 143:1357-1365. [7] DEROUICHE B M H, GUADIX E M, GUADIX A, et al. Valorisation of tuna viscera by endogenous enzymatic treatment[J]. International Journal of Food Science & Technology, 2019, 54(4):1100-1108. [8] KANG N J, JIN H S, LEE S E, et al. New approaches towards the discovery and evaluation of bioactive peptides from natural resources[J]. Critical Reviews in Environmental Science and Technology, 2020, 50(1):72-103. [9] RUTHU, MURTHY P S, RAI A K, et al. Fermentative recovery of lipids and proteins from freshwater fish head waste with reference to antimicrobial and antioxidant properties of protein hydrolysate[J]. Journal of Food Science and Technology, 2014, 51(9):1884-1892. [10] FANG B H, SUN J N, DONG P, et al. Conversion of turbot skin wastes into valuable functional substances with an eco-friendly fermentation technology[J]. Journal of Cleaner Production, 2017, 156:367-377. [11] DUNLAP C A, KIM S J, KWON S W, et al. Bacillus velezensis is not a later heterotypic synonym of Bacillus amyloliquefaciens; Bacillus methylotrophicus, Bacillus amyloliquefaciens subsp. plantarum and ‘Bacillus oryzicola’ are later heterotypic synonyms of Bacillus velezensis based on phylogenomics[J]. International Journal of Systematic and Evolutionary Microbiology, 2016, 66(3):1212-1217. [12] 郭艺伟, 吕兰, 刘依山, 等. 贝莱斯芽孢杆菌发酵蚯蚓浆对猪抗氧化功能和免疫功能的影响[J]. 中兽医医药杂志, 2022, 41(3):13-16. [13] 张德锋, 高艳侠, 王亚军, 等. 贝莱斯芽孢杆菌的分类、拮抗功能及其应用研究进展[J]. 微生物学通报, 2020, 47(11):3634-3649. [14] 黄芷珊, 任红, 黄炜健, 等. 糯米酒源贝莱斯芽孢杆菌的体外安全性评价[J]. 食品与发酵工业, 2022, 48(18):95-100. [15] 杨海宁, 宁豫昌, 王昌毓, 等. 接种贝莱斯芽孢杆菌SW5菌株对发酵鳀鱼鱼露品质的影响[J]. 核农学报, 2019, 33(10):2013-2022. [16] YANG H N, LIU Y, NING Y C, et al. Characterization of an intracellular alkaline serine protease from Bacillus velezensis SW5 with fibrinolytic activity[J]. Current Microbiology, 2020, 77(8):1610-1621. [17] NING Y C, YANG H N, LI N, et al. Cloning, expression and characterization of a novel fibrinolytic serine metalloproteinase from Bacillus velezensis SW5[J]. Applied Biochemistry and Microbiology, 2021, 57(1):48-56. [18] NING Y C, YANG H N, WENG P F, et al. Zymogram analysis and identification of the extracellular proteases from Bacillus velezensis SW5[J]. Applied Biochemistry and Microbiology, 2021, 57(1):S27-S37. [19] LIU Y, WU Z F, ZENG X X, et al. A novel cold-adapted phospho-beta-galactosidase from Bacillus velezensis and its potential application for lactose hydrolysis in milk[J]. International Journal of Biological Macromolecules, 2021, 166:760-770. [20] LI N, LIU Y, WANG C Y, et al. Overexpression and characterization of a novel GH4 galactosidase with β-galactosidase activity from Bacillus velezensis SW5[J]. Journal of Dairy Science, 2021, 104(9):9465-9477. [21] 刘宏, 骆珅, 江正强, 等. 贝莱斯芽孢杆菌固体发酵瓜尔豆粕的活性成分、溶栓及抗氧化活性[J]. 食品与发酵工业, 2021, 47(13):126-132. [22] KUMAR A, PATHAK A K, GURIA C. NPK-10:26:26 complex fertilizer assisted optimal cultivation of Dunaliella tertiolecta using response surface methodology and genetic algorithm[J]. Bioresource Technology, 2015, 194:117-129. [23] 尹乐斌, 邓鹏, 何平, 等. 基于遗传算法-神经网络及响应面法优化龙牙百合总黄酮提取工艺[J]. 食品研究与开发, 2021, 42(7):105-113. [24] 薛宏坤, 刘成海, 刘钗, 等. 响应面法和遗传算法-神经网络模型优化微波萃取蓝莓中花青素工艺[J]. 食品科学, 2018, 39(16):280-288. [25] NIELSEN P M, PETERSEN D, DAMBMANN C. Improved method for determining food protein degree of hydrolysis[J]. Journal of Food Science, 2001, 66(5):642-646. [26] WANG L Y, MA M T, YU Z P, et al. Preparation and identification of antioxidant peptides from cottonseed proteins[J]. Food Chemistry, 2021, 352:129399. [27] LIU J, WANG C N, WANG Z Z, et al. The antioxidant and free-radical scavenging activities of extract and fractions from corn silk (Zea mays L.) and related flavone glycosides[J]. Food Chemistry, 2011, 126(1):261-269. |
| 备注/Memo: | 收稿日期: 2022-12-08. 宁波大学学报(理工版)网址: http://journallg.nbu.edu.cn/ 基金项目: 浙江省公益技术应用研究项目(LGG19C200002); 舟山市市级公益项目(2022C31050). 第一作者: 曹亚玲, 硕士研究生, 主要研究方向: 食品工程. E-mail: 2575287832@qq.com *通信作者: 吴祖芳, 博士/教授, 主要研究方向: 食品生物技术研究. E-mail: wzfwpf@163.com 宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/ |