Enhancing food safety and cultivated meat production: exploring the impact of microplastics on fish muscle cell proliferation and differentiation

Taozhu Sun, Alfonso Timoneda, Amiti Banavar, Reza Ovissipour
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Abstract

Cultivated meat, a sustainable alternative to traditional livestock farming, has gained attention for its potential environmental and health benefits. However, concerns about microplastic contamination pose challenges, especially when sourcing cells from marine organisms prone to microplastic bioaccumulation. Additionally, the pervasive presence of microplastics in laboratory settings, ingredients, and during the production, increases the risk of unintentional contamination. This study focused on Atlantic mackerel (Scomber scombrus) skeletal muscle cell lines to examine the effects of microplastic exposure, represented by fluorescent polyethylene microspheres (10–45 µm) on cell performance including cell proliferation, cell viability, gene expression, and differentiation processes critical for cultivated meat production. The results revealed significant impacts on cell attachment and proliferation at microplastic concentrations of 1 μg/mL, 10 μg/mL, and 50 μg/mL. Notably, the 10 μg/mL concentration exerted the most pronounced effects on cell viability during both attachment and proliferation phases. While the results indicated that both microplastic concentration and size influence cell viability, cell differentiation remained unaffected, and additional contributing factors require further investigation. These findings underscore the necessity of thoroughly exploring microplastic-cell interactions to ensure food safety and safeguard health within the burgeoning cultivated meat industry.
加强食品安全和养殖肉类生产:探索微塑料对鱼类肌肉细胞增殖和分化的影响
养殖肉类作为传统畜牧业的可持续替代品,因其潜在的环境和健康益处而备受关注。然而,人们对微塑料污染的担忧带来了挑战,尤其是在从易发生微塑料生物累积的海洋生物中获取细胞时。此外,微塑料在实验室环境、配料和生产过程中的普遍存在也增加了无意污染的风险。本研究以大西洋鲭(Scomber scombrus)骨骼肌细胞系为研究对象,考察了微塑料暴露(以荧光聚乙烯微球(10-45 µm)为代表)对细胞性能的影响,包括细胞增殖、细胞活力、基因表达和对培养肉类生产至关重要的分化过程。研究结果表明,微塑料浓度为 1 微克/毫升、10 微克/毫升和 50 微克/毫升时,对细胞附着和增殖有明显影响。值得注意的是,在附着和增殖阶段,10 μg/mL 浓度对细胞活力的影响最为明显。研究结果表明,微塑料的浓度和大小都会影响细胞的活力,但细胞的分化却不受影响,因此还需要进一步研究其他因素。这些研究结果突出表明,有必要深入探讨微塑料与细胞之间的相互作用,以确保食品安全,保障新兴的肉类养殖业的健康。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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