[1] 李岩.低温加热过程中海参体壁胶原组织结构变化的研究[D].大连:大连工业大学, 2016.
[2] 农业部渔业局.中国渔业统计年鉴[M].北京:中国农业出版社, 2022.
[3] 朱蓓薇.海珍品加工理论与技术的研究[M].北京:科学出版社, 2010.
[4] LIU Z Q, ZHOU D Y, LIU Y X, et al.Inhibitory effect of natural metal ion chelators on the autolysis of sea cucumber (Stichopus japonicus) and its mechanism[J].Food Research International, 2020, 133:109205.
[5] YU X L, WEI S B, ZHAO M Y, et al.Effect of heat-treatment times on the microstructure and water absorption properties of sea cucumber[J].International Journal of Food Science and Technology, 2022, 58(2):701-711.
[6] ZHANG M, LIU Y X, WU Z X, et al.Analysis of texture properties and water-soluble fraction proteome of sea cucumber body wall with different boiling heating treatment[J].Food Chemistry, 2022, 409:13533.
[7] BHAT Z F, MORTON J D, MASON S L, et al.Cooking does not impair the impact of pulsed electric field on the protein digestion of venison (Cervus elaphus) during in vitro gastrointestinal digestion[J].International Journal of Food Science and Technology, 2021, 56(6):3026-3033.
[8] 温斯颖.不同种类动物肌肉蛋白质消化产物比较研究[D].南京:南京农业大学, 2015.
[9] BHAT Z F, MORTON J D, BEKHIT A E A, et al.Thermal processing implications on the digestibility of meat, fish and seafood proteins[J].Comprehensive Reviews in Food Science and Food Safety, 2021, 20(5):4511-4548.
[10] FAN X R, MA Y S, LI M, et al.Thermal treatments and their influence on physicochemical properties of sea cucumbers:A comprehensive review[J].International Journal of Food Science and Technology, 2022, 57(9):5790-5800.
[11] 葛小通, 王红丽, 尹明雨, 等.冷冻即食海参质构特性指标的相关性研究[J].中国食品学报, 2023, 23(1):326-334.
[12] HE B Y, FENG D D, JIANG D, et al.Studies on quality and physicochemical properties of sea cucumber Stichopus japonicus during low temperature treatment[J].Journal of Chinese Institute of Food Science and Technology, 2019, 19(6):134-140.
[13] BECKER A, BOULAABA A, PINGEN S, et al.Low temperature cooking of pork meat-physicochemical and sensory aspects[J].Meat Science, 2016, 118:82-88.
[14] DOMINGUEZ-HEMANDEZ E, SALASEVICIENCE A, ERTBJERG P, et al.Low-temperature long-time cooking of meat:Eating quality and underlying mechanisms[J].Meat Science, 2018, 143:104-113.
[15] XU Y, FAN H F, ZHAO D L, et al.Optimization of extraction method for water-soluble protein determination by coomassie bright blue method[J].Soybean Science, 2022, 41(2):196-202.
[16] LIU X X, CHEN Y, CHEN X H, et al.Effect of ginger extract on the oxidation of myofibrillar protein in squid[J].Journal of Chinese Institute of Food Science and Technology, 2021, 21(9):225-232.
[17] 许英一, 刘迪, 林巍, 等.热处理改性燕麦蛋白部分性质与表面疏水性的关系[J].食品工业, 2021, 42(8):176-179.
[18] YU M M, FAN Y C, LIU Y X, et al.Effects of antioxidants of bamboo leaves on protein digestion and transport of cooked abalone muscles[J].Food & Function, 2022, 13(4):1785-1796.
[19] BHAT Z F, MORTON J D, ZHANG X, et al.Sous-vide cooking improves the quality and in-vitro digestibility of semitendinosus from culled dairy cows[J].Food Research International, 2020, 127:108708.
[20] DUQUE-ESTRADA P, BERTON-CARABIN C C, NIEUWKOOP M, et al.Protein oxidation and in vitro gastric digestion of processed soy-based matrices[J].Journal of Agricultural & Food Chemistry, 2019, 67(34):9591-9600.
[21] 张旭东, 斯琴其木格, 曾睿, 等.不同热处理条件下羊血浆蛋白体外模拟消化研究[J].食品安全质量检测学报, 2022, 13(18):6049-6056.
[22] 大连工业大学动物实验伦理委员会.SCXK(Liao)2015-0001[S].大连:大连工业大学, 2015.
[23] 阴法文.酪醇脂肪酸酯对贻贝油的抗氧化作用及其吸收代谢机制[D].大连:大连工业大学, 2018.
[24] JIANG D D, SHEN S K, YU W T, et al.Insights into peptide profiling of sturgeon myofibrillar proteins with low temperature vacuum heating[J].Journal of the Science of Food and Agriculture, 2023, 103(6):2858-2866.
[25] RIBEIRO A R, BARBAGLIO A, BENEDETTO C D, et al.New insights into mutable collagenous tissue:Correlations between the microstructure and mechanical state of a sea-urchin ligament[J].PLoS One, 2017, 6(9):e24822.
[26] 胡吕霖.烹饪对鲟鱼蛋白质氧化及消化性的影响研究[D].杭州:浙江大学, 2018.
[27] 韩宗元, 邵俊花, 潘燕墨, 等.蛋白质适度加工:热聚集与凝胶品质阐述以及过度聚集的调控对策[J].食品科学, 2023, 44(9):177-184.
[28] 王博, 伊东, 谢梦颖, 等.糖基化大豆分离蛋白对肌原纤维蛋白功能特性的影响[J].食品科学, 2017, 38(7):63-69.
[29] KAUR L, MAU DENS E, HAISMAN D R, et al.Microstructure and protein digestibility of beef:The effect of cooking conditions as used in stews and curries[J].LWT-Food Science and Technology, 2014, 55(2):612-620.
[30] DU X J, SUN Y Y, PAN D D, et al.Change of the structure and the digestibility of myofibrillar proteins in Nanjing dry-cured duck during processing[J].Journal of the Science of Food and Agriculture, 2018, 98(8):3140-3147.
[31] WANG Z Y, WU Z X, ZHAO G H, et al.Effect of air frying and baking on physicochemical properties and digestive properties of scallop (Patinopecten yessoensis) adductor muscle[J].Food Bioscience, 2023, 52:10240.
[32] ZHOU C Y, PAN D D, SUN Y Y, et al.The effect of cooking temperature on the aggregation and digestion rate of myofibrillar proteins in Jinhua ham[J].Journal of the Science of Food and Agriculture, 2018, 98(9):3563-3570.
[33] PHILO J S, ARAKAWA T.Mechanisms of protein aggregation[J].Current Pharmaceutical Biotechnology, 2009, 10(4):348-351.
[34] LIU F J, DONG X P, SHEN S K, et al.Changes in the digestion properties and protein conformation of sturgeon myofibrillar protein treated by low temperature vacuum heating during in vitro digestion[J].Food & Function, 2021, 12(15):6981-6991.
[35] BORNHORST G M, SINGH R P.Gastric digestion in vivo and in vitro:How the structural aspects of food influence the digestion process[J].Annual Review of Food Science & Technology, 2014, 5(1):111-132.
[36] 丁龙.蛋清肽结构鉴定与完整吸收的构效关系研究[D].长春:吉林大学, 2018.
[37] SOLADOYE O P, JUAREZ M L, AALHUS J L, et al.Protein oxidation in processed meat:Mechanisms and potential implications on human health[J].Comprehensive Reviews in Food Science and Food Safety, 2015, 14(2):106-122.