Literature DB >> 33443808

Production, structure-function relationships, mechanisms, and applications of antifreeze peptides.

Xu Chen1,2, Jinhong Wu3, Xixi Cai1, Shaoyun Wang1.   

Abstract

Growth of ice crystals can cause serious problems, such as frozen products deterioration, road damage, energy losses, and safety risks of human beings. Antifreeze peptides (AFPs), a healthy and effective cryoprotectant, have great potential as ice crystal growth inhibitors for a variety of frozen products. In this review, methods and technologies for the production, purification, evaluation, and characterization of AFPs are comprehensively summarized. First, this review describes the preparation of AFPs, including the methods of enzymatic hydrolysis, chemical synthesis, and microbial fermentation. Next, this review introduces the major methods by which to evaluate AFPs' antifreeze activity, including nanoliter osmometer, differential scanning calorimetry, splat-cooling, the biovaluation model, and novel technology. Moreover, this review presents an overview of the molecular characteristics, structure-function relationships, and action mechanisms of AFPs. Furthermore, advances in the application of AFPs to frozen food, including frozen dough, meat products, fruits, vegetable products, and dairy, are summarized and holistically analyzed. Finally, challenges of AFPs and future perspectives on their use are also discussed. An understanding of the production, structure-function relationships, mechanisms and applications of AFPs provides inspiration for further research into the use of AFPs in food science and food nutrition applications.
© 2020 Institute of Food Technologists®.

Keywords:  antifreeze peptide; freeze damage; frozen food; ice crystal; ice-modulators

Year:  2020        PMID: 33443808     DOI: 10.1111/1541-4337.12655

Source DB:  PubMed          Journal:  Compr Rev Food Sci Food Saf        ISSN: 1541-4337            Impact factor:   12.811


  7 in total

Review 1.  Effect of antifreeze proteins on the freeze-thaw cycle of foods: fundamentals, mechanisms of action, current challenges and recommendations for future work.

Authors:  Vicente Amirpasha Tirado-Kulieva; William Rolando Miranda-Zamora; Ernesto Hernández-Martínez; Lucia Ruth Pantoja-Tirado; Delicia Liliana Bazán-Tantaleán; Ever William Camacho-Orbegoso
Journal:  Heliyon       Date:  2022-10-07

2.  Preparation, Characterization, and Mechanism of Antifreeze Peptides from Defatted Antarctic Krill (Euphausia superba) on Lactobacillus rhamnosus.

Authors:  Yu Liu; Xuena Yu; Yanling Zhu; Wei Yang; Yan Zeng; Yi Hu; Wei Jiang
Journal:  Molecules       Date:  2022-04-26       Impact factor: 4.927

3.  Effects of Ultrasound-Assisted Vacuum Impregnation Antifreeze Protein on the Water-Holding Capacity and Texture Properties of the Yesso Scallop Adductor Muscle during Freeze-Thaw Cycles.

Authors:  Yuyao Shi; Hongli Wang; Yao Zheng; Zehui Qiu; Xichang Wang
Journal:  Foods       Date:  2022-01-24

4.  The Antifreeze and Cryoprotective Activities of a Novel Antifreeze Peptide from Ctenopharyngodon idella Scales.

Authors:  Meizhu Dang; Ruifeng Wang; Yangyang Jia; Jing Du; Ping Wang; Yawei Xu; Chunmei Li
Journal:  Foods       Date:  2022-06-22

Review 5.  The current research status and strategies employed to modify food-derived bioactive peptides.

Authors:  Julieth Joram Majura; Wenhong Cao; Zhongqin Chen; Kyi Kyi Htwe; Wan Li; Ran Du; Pei Zhang; Huina Zheng; Jialong Gao
Journal:  Front Nutr       Date:  2022-09-02

6.  Snow flea antifreeze peptide for cryopreservation of lactic acid bacteria.

Authors:  Xu Chen; Jinhong Wu; Xiaozhen Li; Fujia Yang; Dan Huang; Jianlian Huang; Shaoyun Wang; Vincent Guyonnet
Journal:  NPJ Sci Food       Date:  2022-02-03

7.  Antifreeze Peptides Preparation from Tilapia Skin and Evaluation of Its Cryoprotective Effect on Lacticaseibacillus rhamnosus.

Authors:  Yan Zeng; Weinan Li; Yu Liu; Wei Jiang
Journal:  Foods       Date:  2022-03-17
  7 in total

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