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Alves, P. M.

Publications and source records attributed to Alves, P. M..

3 recordsLinked to original sources

Engineering a perfusion bioreactor system for hiPSC-derived progenitor co-culture capturing microglial features in CNS development

Microglia are critical regulators of brain homeostasis and immune responses in the central nervous system (CNS). However, existing human-based models fail to reproduce the early and complex microglia-neural cell interactions. The differentiation of human induced pluripotent stem cells (hiPSCs) into specialized cell types offers promising avenues for understanding human development and disease modeling. Herein, we explore the differentiation of hiPSC-derived erythromyeloid progenitors (iEMPs) and their 3D co-culture with hiPSC-derived neurospheres, utilizing the Ambr(R) 250 Modular system. The aim of this research was to build a complex co-culture model between iEMP and neurospheres in a scalable and controlled environment. Our results demonstrate that the Ambr(R) 250 Modular system effectively supports the co-culture process, with iEMPs integration into the neurospheres, exhibiting cell density, aggregate morphology and concentration similar to the neurosphere monocultures. The co-culture environment induced the upregulation of transcription factors critical for microglial lineage commitment. iEMP-neurospheres displayed a unique secretory profile, releasing proteins involved in extracellular matrix remodeling and neuronal differentiation, essential for microenvironment remodeling. In conclusion, this study underscores the role of iEMPs in CNS development and presents a robust platform for preclinical research.

bioengineering↗

3D co-cultures of primary human hepatocytes and Kupffer-like cells to address innate immune responses to rAAV

Recombinant adeno-associated viruses (rAAVs) are a platform of choice for gene therapy. However, liver-directed transduction has been hindered by immune responses unpredicted in the preclinical models, resulting in therapy failure. Liver immune responses are strictly regulated by the interactions between hepatocytes and non-parenchymal liver cells, such as Kupffer cells (the liver-resident macrophages) but how rAAVs induce such responses remains largely unknown. Therefore, human models recapitulating such interactions are required to address innate immune responses. Here, we developed a human 3D model to characterize the contribution of hepatocytes and Kupffer cells to the innate immune response. We developed a strategy for the differentiation of Kupffer-like cells from circulating monocytes based on cell-cell contact with primary human hepatocytes. We fine-tuned critical co-culture parameters to obtain a Kupffer-like phenotype while retaining hepatocyte viability and identity. Functional assessment of the differentiated 3D co-cultures showed that the model is responsive to classical pathogen-associated molecular pattern molecules, at a gene expression and secretory level. Moreover, we observed increased proinflammatory cytokine expression and secretion when challenged with a rAAV vector. Our data indicate the suitability of the novel model to investigate hepatocyte-Kupffer cell interactions and address innate immune responses within a human liver microenvironment.

immunology↗

Innate immunocompetent iNSpheroids: A hiPSC-derived 3D model to study the central nervous system captures an early CNS response to rAAV

Gene therapies using adeno-associated viruses (AAVs) for central nervous system (CNS) disorders face challenges due to host immune responses not represented in classical preclinical models. Here, we present a human-induced pluripotent stem cell (hiPSC)-derived innate immunocompetent 3D CNS model that recapitulates neuroinflammatory hallmarks, serving as a platform for preclinical gene therapy development. Utilizing various scales of stirred-tank bioreactor systems, we generated (neurospheroids) iNSpheroids composed of neurons, astrocytes, and oligodendrocytes, alongside microglial cells (iMGL) to mimic the neuro-immune axis. These systems enabled large-scale production of iNSpheroids and subsequent miniaturization for co-culture experiments and screening of inflammatory stimuli, while maintaining a highly controlled environment. The iMGL-iNSpheroids demonstrated active neuron-microglia crosstalk and exhibited distinct inflammatory responses to a series of neuroinflammatory factors. iMGL-iNSpheroids mounted a mild and transient response to rAAV9, mediated by the activation of inflammatory pathways (e.g., TNF-via NF-{kappa}B activation) in glial cell populations. This model offers a valuable tool to dissect neuroinflammatory mechanisms, accelerating gene therapy development. TeaserImmune-competent 3D human CNS model recapitulates glial responses to rAAVs, enabling reliable preclinical gene therapy screening.

bioengineering↗