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Tubulin cofactor B regulates microtubule densities during microglia transition to the reactive states
M L Fanarraga1, J C Villegas, G Carranza
1Departamentos de Biología Molecular, Universidad de Cantabria, IFIMAV. Herrera Oria s/n. 39011, Santander, Spain. fanarrag@unican.es
Abstract:
Microglia are highly dynamic cells of the CNS that continuously survey the welfare of the neural parenchyma and play key roles modulating neurogenesis and neuronal cell death. In response to injury or pathogen invasion parenchymal microglia transforms into a more active cell that proliferates, migrates and behaves as a macrophage. The acquisition of these extra skills implicates enormous modifications of the microtubule and actin cytoskeletons. Here we show that tubulin cofactor B (TBCB), which has been found to contribute to various aspects of microtubule dynamics in vivo, is also implicated in microglial cytoskeletal changes. We find that TBCB is upregulated in post-lesion reactive parenchymal microglia/macrophages, in interferon treated BV-2 microglial cells, and in neonate amoeboid microglia where the microtubule densities are remarkably low. Our data demonstrate that upon TBCB downregulation both, after microglia differentiation to the ramified phenotype in vivo and in vitro, or after TBCB gene silencing, microtubule densities are restored in these cells. Taken together these observations support the view that TBCB functions as a microtubule density regulator in microglia during activation, and provide an insight into the understanding of the complex mechanisms controlling microtubule reorganization during microglial transition between the amoeboid, ramified, and reactive phenotypes.
Insights
Tubulin cofactor B (TBCB) regulates microtubule density in microglia. TBCB is upregulated in reactive microglia, and its downregulation restores normal microtubule levels, aiding phenotype transitions.
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Microglia, the resident immune cells of the central nervous system (CNS), are dynamic and survey neural health.
- Microglial activation involves significant cytoskeletal remodeling, including microtubules and actin filaments.
- Tubulin cofactor B (TBCB) is known to influence microtubule dynamics.
Purpose of the Study:
- To investigate the role of TBCB in microglial cytoskeletal regulation.
- To understand TBCB's involvement in microglial activation and phenotype changes.
Main Methods:
- Assessed TBCB expression in various microglial states (post-lesion, interferon-treated, neonatal amoeboid).
- Examined the effect of TBCB downregulation on microtubule density during microglia differentiation and gene silencing.
- Utilized in vivo and in vitro models of microglial activation.
Main Results:
- TBCB is upregulated in reactive parenchymal microglia/macrophages and interferon-treated BV-2 cells.
- Neonatal amoeboid microglia, with low microtubule density, also show TBCB presence.
- Downregulation of TBCB restores microtubule density in differentiating and gene-silenced microglia.
Conclusions:
- TBCB acts as a key regulator of microtubule density in microglia during activation.
- Understanding TBCB's function provides insight into microglial phenotype transitions (amoeboid, ramified, reactive).
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