Insights into short chain polyethylene penetration of phospholipid bilayers via atomistic molecular dynamics simulations

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Franciszek Włodek , Waldemar Kulig , Anna Stachowicz-Kuśnierz
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Abstract

The escalation of global plastic production, reaching an annual output of 400 million tons, has significantly intensified concerns regarding plastic waste management. This has been exacerbated by improper recycling and disposal practices, contributing to the impending crisis of plastic pollution. Predictions indicate that by 2025, the environment will bear the burden of over ten billion metric tons of accumulated plastic waste. This situation has led to the concerning release of microplastics and nanoplastics (NPs) into the environment as plastic materials degrade, thereby posing risks to both ecosystems and human health. Nanoparticle interactions with living organisms have garnered significant attention due to their potential to disrupt vital biological processes. Of particular interest are lipid membranes, acting as crucial gatekeepers, underscoring the importance of comprehending the intricate process of NP penetration. Molecular dynamics (MD) simulations serve as a robust tool, offering molecular-level insights into these intricate interactions. In this study, we leverage all-atom MD simulations to delve into the interactions between lipid bilayers and polyethylene (PETH) chains of varying lengths. The investigation spans diverse lipid bilayer compositions—ranging from pure POPC to POPC:DPPC mixtures—revealing how PETH accommodates itself, adopts extended conformations, and influences membrane structure and ordering. Significantly, while longer PETH chains demonstrate limited passive diffusion, their potential to penetrate bilayers over extended timescales emerges as a significant revelation. Overall, this research significantly advances our comprehension of NP-membrane interactions, shedding light on the potential environmental and health implications that lie ahead.

Abstract Image

通过原子分子动力学模拟深入了解短链聚乙烯对磷脂双分子层的渗透作用
全球塑料产量不断攀升,年产量已达 4 亿吨,这大大加剧了人们对塑料废物管理的担忧。不恰当的回收和处理方式加剧了这一问题,导致塑料污染危机迫在眉睫。据预测,到 2025 年,环境将承受超过 100 亿吨累积塑料废物的负担。这种情况导致微塑料和纳米塑料(NPs)随着塑料材料的降解而释放到环境中,从而对生态系统和人类健康造成危害。纳米粒子与生物体的相互作用因其可能破坏重要的生物过程而备受关注。脂质膜作为关键的守门员尤其引人关注,这凸显了理解纳米粒子渗透的复杂过程的重要性。分子动力学(MD)模拟是一种强大的工具,可在分子水平上深入了解这些错综复杂的相互作用。在本研究中,我们利用全原子 MD 模拟深入研究了脂质双分子层与不同长度的聚乙烯(PETH)链之间的相互作用。研究跨越了不同的脂质双分子层组成--从纯 POPC 到 POPC:DPPC 混合物--揭示了 PETH 如何容纳自身、采用扩展构象以及影响膜结构和排序。值得注意的是,虽然较长的 PETH 链显示出有限的被动扩散,但其在较长时间范围内穿透双分子层的潜力却是一个重大启示。总之,这项研究极大地推动了我们对 NP 与膜相互作用的理解,揭示了未来对环境和健康的潜在影响。
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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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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