bioRxiv Science⌕ Search

Biology subjects

Vieira, D. V.

Publications and source records attributed to Vieira, D. V..

3 recordsLinked to original sources

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↗

Pulse-chase experiments reveal dynamics of RNA binding protein Exuperantia in Drosophila melanogaster egg chambers

In cells, mRNA can be associated with various proteins, forming ribonucleoprotein complexes (RNPs) which take part in spatiotemporal control of translation. In the Drosophila melanogaster developing egg chamber, a set of RNPs is transported from the nurse cells to the oocyte and targeted selectively to specific cellular locations. This mRNA sorting process leads to the final oocyte polarization pre-defining the body axes of the future embryo. However, how mRNA is encoded for selection and directed transport is mechanistically not well understood. A master mRNA involved in body axes formation is bicoid, which localizes anterolaterally and is essential for head and thorax definition of the embryo. A protein that was identified essential for bicoid anterior localization is Exuperantia (Exu). Here, we use a live imaging-based pulse-chase approach, which reveals selective transport dynamics of Exu from nurse cells to the oocyte during mid to late-stage oogenesis.

cell biology↗

Endoplasmic Reticulum membranes are continuously required to maintain mitotic spindle size and forces

Membrane organelle function, localization, and proper partitioning upon cell division depend on interactions with the cytoskeleton. Whether, reciprocally, membrane organelles also impact on the function of cytoskeletal elements remains less clear. Here, we show that acute disruption of the Endoplasmic Reticulum (ER) around spindle poles affects mitotic spindle size and function in Drosophila syncytial embryos. Acute ER disruption was achieved through the inhibition of ER membrane fusion by the dominant-negative cytoplasmic domain of Atlastin. We reveal that when the ER is disrupted specifically at metaphase, mitotic spindles become smaller, despite no significant changes in microtubule dynamics. These smaller spindles are still able to mediate sister chromatid separation, yet with decreased velocity. Furthermore, by inducing mitotic exit, we found that nuclear separation and distribution are affected upon ER disruption. Our results suggest that ER integrity around spindle poles is crucial for the maintenance of mitotic spindle shape and pulling forces. Additionally, ER integrity also ensures nuclear spacing during syncytial divisions.

cell biology↗