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Three-dimensional neuroimmune co-culture system for modeling Parkinson’s disease microenvironments in vitro

细胞生物学 神经科学 生物 神经炎症 多细胞生物 细胞培养 神经退行性变 表型 细胞内 多巴胺能 细胞外基质 体外 细胞 免疫学 炎症 疾病 医学 基因 病理 生物化学 遗传学 多巴胺
作者
Laura Rueda-Gensini,Julian A. Serna,D. Rodríguez Rubio,Juan Camilo Orozco,Natalia I. Bolaños,Juan C. Cruz,Carolina Muñoz-Camargo
出处
期刊:Biofabrication [IOP Publishing]
卷期号:15 (4): 045001-045001 被引量:11
标识
DOI:10.1088/1758-5090/ace21b
摘要

Abstract Parkinson’s disease (PD) is a complex and multifaceted neurodegenerative disorder that results from multiple environmental factors and multicellular interactions. Although several PD neuropathologies have been identified and described, the thorough understanding of PD pathophysiology and research has been largely limited by the absence of reliable in vitro models that truly recapitulate PD microenvironments. Here, we propose a neuroimmune co-culture system that models PD neuropathologies by combining relevant multicellular interactions with environments that mimic the brain. This system is composed of: (i) 3D bioprinted cultures of mature human dopaminergic (DA) neurons grown on extracellular matrix (ECM)-derived scaffolds doped with electroconductive nanostructures, and (ii) a direct co-culture of human astrocytes and differentiated monocytes that models neuroinflammatory responses. When co-cultured in a transwell format, these two compartments recreate relevant multicellular environments that model PD pathologies after exposure to the neurotoxin A53T α -synuclein. With immunofluorescent staining and gene expression analyses, we show that functional and mature DA 3D networks are generated within our ECM-derived scaffolds with superior performance to standard 2D cultures. Moreover, by analyzing cytokine secretion, cell surface markers, and gene expression, we define a human monocyte differentiation scheme that allows the appearance of both monocyte-derived macrophages and dendritic cell phenotypes, as well as their optimal co-culture ratios with human astrocytes to recreate synergistic neuroinflammatory responses. We show that the combined response of both compartments to A53T α -synuclein stimulates the formation of intracellular α -synuclein aggregates, induces progressive mitochondrial dysfunction and reactive oxygen species production, downregulates the expression of synaptic, DA, and mitophagy-related genes, and promotes the initiation of apoptotic processes within the DA networks. Most importantly, these intracellular pathologies were comparable or superior to those generated with a rotenone-stimulated 2D control that represents the current standard for in vitro PD models and showed increased resilience towards these neurotoxic insults, allowing the study of disease progression over longer time periods than current models. Taken together, these results position the proposed model as a superior alternative to current 2D models for generating PD-related pathologies in vitro .
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