Glycosylation-driven interactions of nanoparticles with the extracellular matrix: Implications for inflammation and drug delivery

IF 6 2区 医学 Q2 MATERIALS SCIENCE, BIOMATERIALS Materials Science & Engineering C-Materials for Biological Applications Pub Date : 2025-02-14 DOI:10.1016/j.bioadv.2025.214230
Ula von Mentzer, Fritjof Havemeister, Loise Råberg, Hemapriya Kothuru Chinnadurai, Gizem Erensoy, Elin K. Esbjörner, Alexandra Stubelius
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Abstract

Cationic nanoparticles (NPs) are emerging as promising carriers for intra-articular drug delivery, particularly for osteoarthritis (OA) where treatment options are limited. However, the clinical translation is challenged by an incomplete understanding of NP interactions within pathological environments. While the influence of the protein coronas on NP behavior has been extensively studied, the specific role of glycoproteins in the extracellular matrix (ECM) remains underexplored, representing a significant knowledge gap. This study investigates how glycosylation-driven interactions between polymeric NPs and enzyme-degraded cartilage biomolecules such as glycosaminoglycans (GAGs) affect NP-ECM aggregate formation and subsequent inflammatory responses. Using an ex vivo model of cartilage degradation induced by catabolic enzymes– hyaluronidase, ADAMTS5 and collagenase– a novel model system was developed to specifically study the behavior of small (<10 nm) and large (∼270 nm) cationic NPs in glycoprotein-enriched environments. Atomic force microscopy and dynamic light scattering revealed distinct mesh-like structures formed by the NP aggregates following different enzymatic treatments, confirming the adsorption of glycosylated fragments onto the particles. While total protein content showed minimal differences between NP samples, smaller NPs demonstrated a prominent association with GAGs such as hyaluronic acid and aggrecan, as demonstrated by circular dichroism. These ECM-NP interactions significantly influenced the immunological response, as evidenced by differential cytokine production from macrophages exposed to the aggregates. Our findings underscore the crucial, yet underappreciated, role of glycoproteins in determining NP behavior in pathological environments. Accounting for glycoprotein interactions into the design of nanomaterial and drug delivery systems could significantly improve therapeutic outcomes by enhanced targeting precision, optimized delivery, and effectively modulating immune responses in OA and other complex diseases.

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糖基化驱动的纳米颗粒与细胞外基质的相互作用:对炎症和药物传递的影响
阳离子纳米颗粒(NPs)正在成为关节内药物输送的有前途的载体,特别是对于治疗选择有限的骨关节炎(OA)。然而,临床翻译受到病理环境中NP相互作用的不完整理解的挑战。虽然蛋白质冠状体对NP行为的影响已被广泛研究,但糖蛋白在细胞外基质(ECM)中的具体作用仍未被充分探索,这代表了一个重大的知识空白。本研究探讨了聚合物NPs与酶降解软骨生物分子(如糖胺聚糖(GAGs))之间糖基化驱动的相互作用如何影响NP-ECM聚集形成和随后的炎症反应。利用分解代谢酶(透明质酸酶、ADAMTS5和胶原酶)诱导的软骨降解的离体模型,开发了一种新的模型系统,专门研究小(10 nm)和大(270 nm)阳离子NPs在富含糖蛋白的环境中的行为。原子力显微镜和动态光散射显示,在不同的酶处理后,NP聚集体形成了不同的网状结构,证实了糖基化片段在颗粒上的吸附。虽然总蛋白含量在NP样品之间的差异很小,但较小的NP与透明质酸和聚集蛋白等gag有显著的关联,如圆二色性。这些ECM-NP相互作用显著影响免疫反应,暴露于聚集体的巨噬细胞产生的细胞因子差异证明了这一点。我们的研究结果强调了糖蛋白在病理环境中决定NP行为的关键作用,但未被充分认识。将糖蛋白相互作用纳入纳米材料和药物递送系统的设计中,可以通过提高靶向精度、优化递送和有效调节OA和其他复杂疾病的免疫反应,显著改善治疗效果。
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来源期刊
CiteScore
17.80
自引率
0.00%
发文量
501
审稿时长
27 days
期刊介绍: Biomaterials Advances, previously known as Materials Science and Engineering: C-Materials for Biological Applications (P-ISSN: 0928-4931, E-ISSN: 1873-0191). Includes topics at the interface of the biomedical sciences and materials engineering. These topics include: • Bioinspired and biomimetic materials for medical applications • Materials of biological origin for medical applications • Materials for "active" medical applications • Self-assembling and self-healing materials for medical applications • "Smart" (i.e., stimulus-response) materials for medical applications • Ceramic, metallic, polymeric, and composite materials for medical applications • Materials for in vivo sensing • Materials for in vivo imaging • Materials for delivery of pharmacologic agents and vaccines • Novel approaches for characterizing and modeling materials for medical applications Manuscripts on biological topics without a materials science component, or manuscripts on materials science without biological applications, will not be considered for publication in Materials Science and Engineering C. New submissions are first assessed for language, scope and originality (plagiarism check) and can be desk rejected before review if they need English language improvements, are out of scope or present excessive duplication with published sources. Biomaterials Advances sits within Elsevier''s biomaterials science portfolio alongside Biomaterials, Materials Today Bio and Biomaterials and Biosystems. As part of the broader Materials Today family, Biomaterials Advances offers authors rigorous peer review, rapid decisions, and high visibility. We look forward to receiving your submissions!
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