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Assessing Retinal Microglial Phagocytic Function In Vivo Using a Flow Cytometry-based Assay
Published on: October 18, 2016
Galectin-3 (MAC-2) Controls Microglia Phenotype Whether Amoeboid and Phagocytic or Branched and Non-phagocytic by
Fanny Reichert1, Shlomo Rotshenker1
1Department of Medical Neurobiology, Institute for Medical Research Israel-Canada (IMRIC), Faculty of Medicine, Hebrew University, Jerusalem, Israel.
Abstract:
Myelin surrounding central nervous system (CNS) axons breaks down in multiple sclerosis (MS) and following traumatic axonal injury. Myelin-debris so produced is harmful to repair since it impedes remyelination in MS and the regeneration of traumatized axons. These devastating outcomes are largely due to inefficient removal by phagocytosis of myelin-debris by microglia. Therefore, revealing mechanisms that control phagocytosis is vital. We previously showed that in phagocytosis, filopodia and lamellipodia extend/engulf and then retract/internalize myelin-debris. Moreover, cofilin activates phagocytosis by advancing the remodeling of actin filaments (i.e., existing filaments disassemble and new filaments assemble in a new configuration), causing filopodia/lamellipodia to protrude, and furthermore, Galectin-3 (formally named MAC-2) activates phagocytosis by enhancing K-Ras.GTP/PI3K signaling that leads to actin/myosin-based contraction, causing filopodia/lamellipodia to retract. To understand further how Galectin-3 controls phagocytosis we knocked-down (KD) Galectin-3 expression in cultured primary microglia using Galectin-3 small-hairpin RNA (Gal-3-shRNA). KD Galectin-3 protein levels reduced phagocytosis extensively. Further, inhibiting nucleolin (NCL) and nucleophosmin (NPM), which advance K-Ras signaling as does Galectin-3, also reduced phagocytosis. Strikingly and unexpectedly, knocking down Galectin-3 resulted in a dramatic transformation of microglia morphology from "amoeboid-like" to "branched-like," rearrangement of actin filaments and inactivation of cofilin. Thus, Galectin-3 may control microglia morphology and phagocytosis by regulating the activation state of cofilin, which, in turn, affects how actin filaments organize and how stable they are. Furthermore, our current and previous findings together suggest that Galectin-3 activates phagocytosis by targeting the cytoskeleton twice: first, by advancing cofilin activation, causing filopodia/lamellipodia to extend/engulf myelin-debris. Second, by advancing actin/myosin-based contraction through K-Ras.GTP/PI3K signaling, causing filopodia/lamellipodia to retract/internalize myelin-debris.
Insights
Galectin-3 enhances myelin debris clearance by microglia, crucial for central nervous system repair after injury or in multiple sclerosis. It controls microglial shape and phagocytosis by regulating cofilin and actin remodeling.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Myelin breakdown in the central nervous system (CNS) hinders repair in multiple sclerosis (MS) and after injury.
- Inefficient myelin-debris phagocytosis by microglia is a key barrier to CNS repair.
- Understanding phagocytosis regulation is vital for developing therapeutic strategies.
Purpose of the Study:
- To investigate the role of Galectin-3 in regulating microglial phagocytosis of myelin-debris.
- To elucidate the mechanisms by which Galectin-3 controls microglial morphology and phagocytic activity.
Main Methods:
- Galectin-3 expression was knocked down (KD) in primary microglia using Galectin-3 small-hairpin RNA (Gal-3-shRNA).
- Microglial morphology, actin filament organization, and cofilin activation were analyzed.
- The impact of inhibiting nucleolin (NCL) and nucleophosmin (NPM) on phagocytosis was assessed.
Main Results:
- KD of Galectin-3 significantly reduced microglial phagocytosis of myelin-debris.
- Galectin-3 KD induced a morphological shift in microglia from amoeboid to branched and inactivated cofilin.
- Inhibiting NCL and NPM also impaired K-Ras signaling and reduced phagocytosis.
Conclusions:
- Galectin-3 plays a dual role in activating phagocytosis by promoting both actin remodeling and cytoskeletal contraction.
- Galectin-3 regulates microglial morphology and phagocytosis, potentially via controlling cofilin activation and actin stability.
- These findings highlight Galectin-3 as a potential therapeutic target for enhancing CNS repair.
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