Literature DB >> 32108849

Bioactive proteins in bovine colostrum and effects of heating, drying and irradiation.

Dereck E W Chatterton1, Sasha Aagaard2, Tim Hesselballe Hansen3, Duc Ninh Nguyen4, Cristian De Gobba1, René Lametsch1, Per T Sangild4.   

Abstract

Bovine colostrum (BC) contains bioactive proteins, such as immunoglobulin G (IgG), lactoferrin (LF) and lactoperoxidase (LP). BC was subjected to low-temperature, long-time pasteurization (LTLT, 63 °C, 30 min) or high-temperature, short-time pasteurization (HTST, 72 °C, 15 s) and spray-drying (SD), with or without γ-irradiation (GI, ∼14 kGy) to remove microbial contamination. Relative to unpasteurized liquid BC, SD plus GI increased protein denaturation by 6 and 11%, respectively, increasing to 19 and 27% after LTLT and to 48% after HTST, with no further effects after GI (all P < 0.05). LTLT, without or with GI, resulted in 15 or 29% denaturation of IgG, compared with non-pasteurized BC, and 34 or 58% for HTST treatment (all P < 0.05, except LTLT without GI). For IgG, only GI, not SD or LTLT, increased denaturation (30-38%, P < 0.05) but HTST increased denaturation to 40%, with further increases after GI (60%, P < 0.05). LTLT and HTST reduced LP levels (56 and 81% respectively) and LTLT reduced LF levels (21%), especially together with GI (47%, P < 0.05). Denaturation of BSA, β-LgA, β-LgB and α-La were similar to IgG. Methionine, a protective amino acid against free oxygen radicals, was oxidised by LTLT + GI (P < 0.05) while LTLT and HTST had no effect. Many anti-inflammatory proteins, including serpin anti-proteinases were highly sensitive to HTST and GI but preserved after LTLT pasteurization. LTLT, followed by SD is an optimal processing technique preserving bioactive proteins when powdered BC is used as a diet supplement for sensitive patients.

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Year:  2020        PMID: 32108849     DOI: 10.1039/c9fo02998b

Source DB:  PubMed          Journal:  Food Funct        ISSN: 2042-6496            Impact factor:   5.396


  4 in total

1.  Biochemical, dielectric and surface characteristics of freeze-dried bovine colostrum whey powder.

Authors:  Rahul Mehra; Shiv Kumar; Rajat Singh; Naveen Kumar; Deepshikha Rathore; Gulzar Ahmad Nayik; Nadiyah M Alabdallah; António Monteiro; Raquel F F Guiné; Harish Kumar
Journal:  Food Chem X       Date:  2022-06-18

Review 2.  Bovine Colostrum: Its Constituents and Uses.

Authors:  Raymond John Playford; Michael James Weiser
Journal:  Nutrients       Date:  2021-01-18       Impact factor: 5.717

Review 3.  Potential Benefits of Bovine Colostrum in Pediatric Nutrition and Health.

Authors:  Per Torp Sangild; Caitlin Vonderohe; Valeria Melendez Hebib; Douglas G Burrin
Journal:  Nutrients       Date:  2021-07-26       Impact factor: 5.717

Review 4.  Insights into the Research Trends on Bovine Colostrum: Beneficial Health Perspectives with Special Reference to Manufacturing of Functional Foods and Feed Supplements.

Authors:  Rahul Mehra; Renu Garhwal; Karnam Sangwan; Raquel P F Guiné; Edite Teixeira Lemos; Harpal Singh Buttar; Pradeep Kumar Singh Visen; Naveen Kumar; Anuradha Bhardwaj; Harish Kumar
Journal:  Nutrients       Date:  2022-02-04       Impact factor: 5.717

  4 in total

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