The role of human intestinal mucus in the prevention of microplastic uptake and cell damage.

IF 5.8 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS Biomaterials Science Pub Date : 2025-01-15 DOI:10.1039/d4bm01574f
Ellen W van Wijngaarden, Sandra L Arias, Matthew Rhee, Meredith N Silberstein, Ilana L Brito
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Abstract

An increase in plastic waste and its release into the environment has led to health concerns over microplastics (MPs) in the environment. The intestinal mucosal layer is a key defense mechanism against ingested MPs, preventing the migration of particles to other parts of the body. MP migration through intestinal mucus is challenging to study due to difficulties in obtaining intact mucus layers for testing and numerous formulations, shapes, and sizes of microplastics. Previous studies have primarily used mucus from animals, hydrogel models, and mucus samples from other parts of the body as substitutes. This study examines how different MP compositions, sizes (40-500 nm), and surface functionalizations alter MP migration through human intestinal mucus; how the mucus layer protects cells from MP uptake, toxicity, and inflammation; and how the intestinal mucus prevents the migration of other environmental toxins via MP particles. The presence of a mucus layer also provides critical protection against cytotoxicity, reactive oxygen species production, and uptake for all particles tested, although certain functionalizations, such as streptavidin, are particularly harmful to cells with high toxicity and inflammation. Understanding the properties that assist of impede the diffusion of MPs through mucus is relevant to the overall bioaccumulation and health effects of MPs as well as drug delivery purposes.

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人体肠道粘液在预防微塑料摄取和细胞损伤中的作用。
塑料垃圾的增加及其向环境中的释放引发了对环境中微塑料(MPs)的健康担忧。肠粘膜层是抵御摄入的MPs的关键防御机制,防止颗粒迁移到身体的其他部位。由于难以获得完整的黏液层进行测试,以及微塑料的配方、形状和大小不一,因此研究微塑料通过肠道粘液的迁移具有挑战性。以前的研究主要使用动物黏液、水凝胶模型和身体其他部位的黏液样本作为替代品。本研究探讨了不同的MP组成、尺寸(40-500 nm)和表面功能化如何改变MP通过人肠道粘液的迁移;黏液层如何保护细胞免受MP摄取、毒性和炎症的影响;以及肠道粘液如何阻止其他环境毒素通过MP颗粒迁移。黏液层的存在也为所有被测试的颗粒提供了抗细胞毒性、活性氧产生和摄取的关键保护,尽管某些功能化物,如链霉亲和素,对具有高毒性和炎症的细胞特别有害。了解帮助或阻碍MPs通过黏液扩散的特性与MPs的整体生物积累和健康影响以及药物递送目的有关。
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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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