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通过热技术和非热技术从生物质中释放生物聚合物

Release of Biopolymers from Biomass Through Thermal and Non-Thermal Technologies.

作者信息

Ciccone Marianna, Khan Muhammad Rehan, Hernandez Junior Bernardo Molina, Njieukam Joel Armando, Siroli Lorenzo, Gottardi Davide, Lanciotti Rosalba, Rocculi Pietro, Patrignani Francesca

机构信息

Department of Agricultural and Food Sciences, Campus of Food Science, Alma Mater Studiorum, University of Bologna, Piazza Goidanich 60, 47521 Cesena, Italy.

Interdepartmental Centre for Agri-Food Industrial Research, Campus of Food Science, Alma Mater Studiorum, University of Bologna, Via Quinto Bucci 336, 47521 Cesena, Italy.

出版信息

Microorganisms. 2024 Dec 15;12(12):2596. doi: 10.3390/microorganisms12122596.

Abstract

Components of yeast cell walls, such as β-glucans and mannoproteins, show promise for developing sustainable biopolymers for food packaging. Efficient extraction, however, is challenging due to the complexity of the yeast cell wall. This study explored high-pressure homogenisation (HPH) and pulsed electric fields (PEFs), alone and with heat treatment (TT), on bakery yeast (BY) and brewery spent yeast (BSY) biomasses. In the treated samples we assessed carbohydrates, proteins, β-glucans, and mannoproteins and evaluated cell wall disruption microscopically. HPH caused complete cell disintegration, enhancing intracellular release, while PEF primarily permeabilised the membranes. Combined HPH and PEF treatments significantly increased cell wall stress, leading to partial disintegration. Notably, the β-glucans released reached 3.90 g/100 g dry matter in BY and 10.44 g/100 g dry matter in BSY, demonstrating significant extraction improvements. These findings highlight the potential of HPH and PEF for enhancing β-glucan recovery from yeast biomass, offering a promising route for sustainable biopolymer production for food packaging.

摘要

酵母细胞壁的成分,如β-葡聚糖和甘露糖蛋白,在开发用于食品包装的可持续生物聚合物方面显示出前景。然而,由于酵母细胞壁的复杂性,有效提取具有挑战性。本研究探讨了高压均质化(HPH)和脉冲电场(PEF)单独以及与热处理(TT)相结合对面包酵母(BY)和啤酒废酵母(BSY)生物质的影响。在处理过的样品中,我们评估了碳水化合物、蛋白质、β-葡聚糖和甘露糖蛋白,并通过显微镜评估了细胞壁的破坏情况。HPH导致细胞完全解体,增强了细胞内物质的释放,而PEF主要使细胞膜通透化。HPH和PEF联合处理显著增加了细胞壁应力,导致部分解体。值得注意的是,BY中释放的β-葡聚糖达到3.90克/100克干物质,BSY中达到10.44克/100克干物质,显示出提取率有显著提高。这些发现突出了HPH和PEF在提高从酵母生物质中回收β-葡聚糖方面的潜力,为食品包装的可持续生物聚合物生产提供了一条有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/189f/11677850/3e70238e9d37/microorganisms-12-02596-g001.jpg

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