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An Engulfment Assay: A Protocol to Assess Interactions Between CNS Phagocytes and Neurons
Published on: June 8, 2014
Comparative Review of Microglia and Monocytes in CNS Phagocytosis
Megumi Andoh1, Ryuta Koyama1,2
1Laboratory of Chemical Pharmacology, Graduate School of Pharmaceutical Sciences, The University of Tokyo, Tokyo 113-0033, Japan.
Abstract:
Macrophages maintain tissue homeostasis by phagocytosing and removing unwanted materials such as dead cells and cell debris. Microglia, the resident macrophages of the central nervous system (CNS), are no exception. In addition, a series of recent studies have shown that microglia phagocytose the neuronal synapses that form the basis of neural circuit function. This discovery has spurred many neuroscientists to study microglia. Importantly, in the CNS parenchyma, not only microglia but also blood-derived monocytes, which essentially differentiate into macrophages after infiltration, exert phagocytic ability, making the study of phagocytosis in the CNS even more interesting and complex. In particular, in the diseased brain, the phagocytosis of tissue-damaging substances, such as myelin debris in multiple sclerosis (MS), has been shown to be carried out by both microglia and blood-derived monocytes. However, it remains largely unclear why blood-derived monocytes need to invade the parenchyma, where microglia are already abundant, to assist in phagocytosis. We will also discuss whether this phagocytosis can affect the fate of the phagocytosing cell itself as well as the substance being phagocytosed and the surrounding environment in addition to future research directions. In this review, we will introduce recent studies to answer a question that often arises when studying microglial phagocytosis: under what circumstances and to what extent blood-derived monocytes infiltrate the CNS and contribute to phagocytosis. In addition, the readers will learn how recent studies have experimentally distinguished between microglia and infiltrating monocytes. Finally, we aim to contribute to the progress of phagocytosis research by discussing the effects of phagocytosis on phagocytic cells.
Insights
Microglia and blood-derived monocytes in the central nervous system (CNS) both perform phagocytosis. This review explores when and why monocytes enter the CNS to aid in this process, impacting tissue homeostasis.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Macrophages, including brain-resident microglia, maintain tissue homeostasis via phagocytosis.
- Microglia and infiltrating blood-derived monocytes phagocytose synapses and debris in the central nervous system (CNS).
- The role and necessity of monocyte infiltration for CNS phagocytosis, especially in disease states like multiple sclerosis (MS), remain unclear.
Purpose of the Study:
- To review recent findings on microglial phagocytosis and monocyte infiltration into the CNS.
- To clarify the circumstances and extent of blood-derived monocyte contribution to CNS phagocytosis.
- To discuss methods for distinguishing between microglia and infiltrating monocytes and the effects of phagocytosis.
Main Methods:
- Review of recent scientific literature and studies.
- Analysis of experimental data distinguishing microglial and monocyte functions.
- Discussion of the implications of phagocytosis on cellular and environmental fate.
Main Results:
- Both microglia and blood-derived monocytes exhibit phagocytic activity within the CNS parenchyma.
- Monocyte infiltration into the CNS occurs under specific conditions, contributing to phagocytosis of detrimental substances like myelin debris.
- Experimental approaches are emerging to differentiate between resident microglia and infiltrating monocytes.
Conclusions:
- Understanding monocyte infiltration dynamics is crucial for CNS phagocytosis research.
- Phagocytosis by both cell types influences CNS health, disease progression, and cellular outcomes.
- Further research is needed to fully elucidate the complex interplay between microglia, monocytes, and CNS homeostasis.

