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Biology subjects

Marim, F. M.

Publications and source records attributed to Marim, F. M..

2 recordsLinked to original sources

Microcephaly-like phenotype triggered by novel reassortant and prototypic Oropouche Virus strains in brain organoids

Oropouche virus (OROV) is an emerging arbovirus currently spreading across South America, with increasing reports of neurological manifestations, severe systemic disease, and congenital abnormalities. Although traditionally associated with mild febrile illness, the recent geographic expansion and surge in OROV outbreaks have prompted attention to its neurotropic potential. Here, we investigated the impact of OROV infection on human neural development using neural stem cells (NSCs) and brain organoids derived from induced pluripotent stem cells. Recent OROV isolates exhibiting genomic reassortment and associated with increased neurological manifestations were compared with a prototypical strain for the ability to infect NSCs, early-stage organoids, and more mature cortical-like tissues. OROV infected NSCs efficiently, leading to widespread cell death, depletion of proliferative progenitors, and disruption of neuroepithelial organization. Transcriptomic profiling of infected NSCs revealed a robust reduction of antiviral response genes and an enrichment of pathways related to viral replication, apoptosis, and the inhibition of stem cell maintenance and neuronal differentiation. These molecular signatures aligned with the phenotypic collapse of progenitor pools and cortical structure observed in organoids. OROV antigens were detected in both astrocytes and neurons, with associated structural degeneration. Although a substantial overlap in differentially expressed genes was observed between the two viral strains, some strain-specific transcriptional responses were detected. However, these modest differences did not translate into distinct cytopathogenic effects between the two viral strains. These phenotypes, including the reduced growth of infected organoids, resemble those previously described with Zika virus in the same cellular models, supporting the hypothesis that OROV may impair brain development. Together, these results reveal a previously unrecognized neuroteratogenic potential of OROV strains and provide mechanistic insight into the potential of OROV to induce microcephaly-like phenotypes, highlighting its relevance as a significant threat to maternal-fetal health.

neuroscience↗

PI3Kγ pathway contributes to neuroinflammation and neuronal death induced by Zika virus infection

Zika virus (ZIKV) is an emerging arbovirus belonging to the Flaviviridae family and Orthoflavivirus genus, with a pronounced tropism for the central nervous system (CNS), where it induces neuroinflammation and neuronal death. ZIKV is known to exploit host cellular mechanisms, including the activation of survival pathways such as the PI3K/AKT signaling cascade, to evade apoptosis and enhance its replication. The phosphatidylinositol 3-kinase {gamma} (PI3K{gamma}) pathway regulates critical cellular processes, including differentiation, recruitment, and survival, and is abundantly expressed in both brain tissue and leukocytes. This study aimed to investigate the role of the PI3K{gamma} pathway during ZIKV infection. Primary neuronal cultures from PI3K{gamma}-deficient mice (PI3K{gamma}kd/kd) and human neuroblastoma SH-SY5Y cells treated with the PI3K{gamma} inhibitor AS605240 were infected with ZIKV to assess the impact of PI3K{gamma} signaling on viral replication and neuronal survival. Additionally, interferon /{beta} receptor knockout (A129) mice were treated with AS605240 either before or after ZIKV infection to evaluate the pathways role in neuroinflammation. In vitro, both genetic ablation and pharmacological inhibition of PI3K{gamma} suppressed ZIKV replication and prevented neuronal death. In vivo, mice treated with the PI3K{gamma} inhibitor exhibited enhanced protection against ZIKV infection, characterized by reduced viral load, and diminished brain and optic nerve damage. This neuroprotective effect correlated with altered astrocyte and microglia activation, marked by reduced TNF production in microglia. Furthermore, inhibition of PI3K{gamma} curtailed the recruitment and activation of CD8+ T cells and decreased the production of pro-inflammatory mediators, including IFN-{gamma} and IL-17, in the brains of ZIKV-infected mice. These findings suggest that PI3K{gamma} activation facilitates ZIKV infection and exacerbates neuroinflammation. Pharmacological inhibition of the PI3K{gamma} pathway may offer therapeutic benefits by limiting viral replication and alleviating neuroinflammatory responses during ZIKV infection.

immunology↗