Laboratory of Food Process Engineering, Wageningen University and Research, Wageningen, The Netherlands.
Department of Biomedical Engineering, Tufts University, Medford, Massachusetts, USA.
Nestle Nutr Inst Workshop Ser. 2024;100:180-191. doi: 10.1159/000540151.
By 2050, the global population is expected to reach close to 10 billion people, increasing the demand for food. To ensure sustainability in food production to meet this population increase, alternative approaches such as reducing meat consumption and incorporating plant-based alternatives are being explored. Cellular agriculture, an interdisciplinary field merging engineering and biology offers a potential solution. This approach involves the isolation and modification of animal cells for food production, using techniques like genetic engineering and creating cell-biomaterial interfaces. This approach has the potential to provide sustainable and nutritious meat and dairy alternatives while reducing environmental impact. However, challenges such as achieving the same nutritional quality and texture as animal-based products and addressing issues related to scale-up as well as costs pose barriers to commercialization. Despite these challenges, cellular agriculture has progressed rapidly and shows promise in meeting the changing demands of consumers and ensuring food security in the future.
到 2050 年,全球人口预计将接近 100 亿,这增加了对食物的需求。为了确保粮食生产的可持续性以满足人口增长,人们正在探索替代性方法,例如减少肉类消费和采用植物性替代品。细胞农业是一个融合工程学和生物学的跨学科领域,为这一问题提供了潜在的解决方案。该方法涉及对动物细胞进行分离和修饰,以用于食品生产,使用遗传工程等技术,并创建细胞-生物材料界面。这种方法有可能提供可持续且营养丰富的肉类和奶制品替代品,同时减少对环境的影响。然而,实现与动物源产品相同的营养质量和口感,以及解决与规模化和成本相关的问题等挑战,成为了商业化的障碍。尽管存在这些挑战,但细胞农业发展迅速,有望满足消费者不断变化的需求,并确保未来的粮食安全。