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Virtuoso, A.

Publications and source records attributed to Virtuoso, A..

2 recordsLinked to original sources

Mapping glioblastoma spreading: connexin43 and glial dynamic in mouse and human glioblastoma microenvironment

High-grade gliomas (HGGs), including astrocytoma and glioblastoma (GBM), constitute the most prevalent primary tumors of the central nervous system (CNS). GBM cells demonstrate a notable ability to infiltrate the brain parenchyma, precluding complete surgical resection. Here we investigated the spreading of GBM cells and the response of the CNS microenvironment focusing on glial cells, which are essential interactors to GBM. We used acute and organotypic slices from the mouse brain and peritumoral cortex of patients with HGGs. We found that human peritumoral tissue from cortical resection was characterized by high levels of the astrocytic Connexin43 protein (Cx43) and discrete infiltration of microglia. In contrast, the tumor core exhibited high myeloid infiltration and an altered extracellular matrix (ECM) composition, which was poor in CD44. We tracked mouse and primary human-labeled-GBM cells in 2D cultures and in co-culture with organotypic slices generated from mouse brain and human peritumoral tissues. We found that the implanted GBM cells infiltrated the brain tissue, implying early glial modifications including an increase in Cx43 expression and distribution. Furthermore, the blockage of Cx43 hemichannels was accompanied by morphological changes and polarization of human GBM cells, typical for migration phenomena. The present study sheds light on the dynamics of GBM cells spreading in the living brain tissue, suggesting that the progression of the tumor correlates with changes within the host brain. Our findings identify the upregulation of Cx43 expression as a highly consistent modification in both mouse and human tissue that may be crucial for GBM infiltration.

neuroscience↗

Regional Microglial Response in Enthorino-hippocampal Slice Cultures to Schaffer Collateral Lesion and Metalloproteinases Modulation.

Microglia and astrocytes are essential in sustaining physiological networks on the central nervous system, with their ability to remodel the extracellular matrix, being pivotal for synapse plasticity. Recent findings challenge the traditional view of homogenous glial populations in the brain, uncovering morphological, functional and molecular heterogeneity among glial cells. This diversity has significant implications for both physiological and pathological brain states. In the present study, we mechanically induced a Schaffer collateral lesion (SCL) in mouse enthorino-hippocampal slice cultures to investigate glial behavior, i.e., microglia and astrocytes, under metalloproteinases (MMPs) modulation in the lesioned area, CA3, and the denervated region, CA1. We observed distinct response patterns in microglia and astrocytes 3 days after the lesion. Notably, GFAP-expressing astrocytes showed no immediate changes post-SCL. Microglia responses varied depending on their anatomical location. The MMPs inhibitor GM6001 did not affect microglial reactions in CA3, while increasing the Iba1 cells numbers in CA1, underscoring the complexity of the hippocampal neuroglial network post-injury. These findings highlight the importance of understanding glial regionalization following neural injury and MMPs modulation, and pave the way for further research into glia-targeted therapeutic strategies for neurodegenerative disorders.

neuroscience↗