Related Experiment Video
Updated: Jul 28, 2026

In Vivo Dynamics of Retinal Microglial Activation During Neurodegeneration: Confocal Ophthalmoscopic Imaging and Cell Morphometry in Mouse Glaucoma
Published on: May 11, 2015
Quantification of the mononuclear phagocyte response to Wallerian degeneration of the optic nerve
L J Lawson1, L Frost, J Risbridger
1University Department of Pharmacology, Oxford, UK.
Abstract:
We investigated the numbers, origin and phenotype of mononuclear phagocytes (macrophages/microglia) responding to Wallerian degeneration of the mouse optic nerve in order to compare it with the response to Wallerian degeneration in the PNS, already described. We found macrophage/microglial numbers elevated nearly four fold in the distal segments of crushed optic nerves and their projection areas in the contralateral superior colliculus 1 week after unilateral optic nerve crush. This relative increase in mononuclear phagocyte numbers compared well with the four-to-five-fold increases reported in the distal segments of transected saphenous or sciatic nerves. Moreover, maximum numbers are reached at 3, 5 and 7 days in the saphenous, sciatic and optic nerves respectively, suggesting that the very slow clearance of axonal debris and myelin in CNS undergoing Wallerian degeneration is not simply due to a slow or small mononuclear phagocyte response. The apparent delay in the response in the CNS occurs because the mononuclear phagocytes respond to the Wallerian degeneration of axons, which is slightly slower in the CNS than the PNS, rather than to events associated with the crush itself, such as the abolition of normal electrical activity in the distal segment. This was demonstrated by the protracted time course of the mononuclear phagocyte response in the distal segment following optic nerve crush in mice carrying the Wlds mutation which dramatically slows the rate at which the axons undergo Wallerian degeneration. By [3H]-Thymidine labelling or by blocking microglial proliferation by X-irradiation of the head prior to optic nerve crush, we showed that the majority of macrophages/microglia initiating the response to Wallerian degeneration were of local, CNS origin but these cells rapidly (from 3 days post crush) upregulate endocytic and phagocytic functional markers although they do not resemble rounded myelin-phagocytosing macrophages observed in degenerating peripheral nerves. We speculate that the poor clearance of myelin in CNS fibre tracts undergoing Wallerian degeneration compared to the PNS, in the face of a mononuclear phagocyte response which is similar in relative magnitude and time course, is because Schwann cells in degenerating peripheral nerves promptly modify their myelin sheaths such that they can be recognized and phagocytosed by macrophages, whilst in the CNS oligodendrocytes do not.
Insights
Mononuclear phagocytes (macrophages/microglia) respond similarly to Wallerian degeneration in the central nervous system (CNS) and peripheral nervous system (PNS). However, myelin clearance is slower in the CNS due to oligodendrocyte differences, not a deficient immune response.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Wallerian degeneration is axonal degeneration distal to injury.
- Mononuclear phagocytes, including macrophages and microglia, are key immune cells involved in clearing debris.
- Differences in Wallerian degeneration response between the central nervous system (CNS) and peripheral nervous system (PNS) are not fully understood.
Purpose of the Study:
- To investigate the response of mononuclear phagocytes to Wallerian degeneration in the mouse optic nerve (CNS).
- To compare this response with the known response in the PNS.
- To understand the reasons for slower debris clearance in the CNS.
Main Methods:
- Unilateral optic nerve crush in mice.
- Analysis of mononuclear phagocyte (macrophage/microglia) numbers and phenotype.
- [3H]-Thymidine labeling and X-irradiation to assess cell origin and proliferation.
- Comparison with existing data on peripheral nerve degeneration.
Main Results:
- Mononuclear phagocyte numbers increased nearly fourfold in the optic nerve, comparable to PNS nerve degeneration.
- The peak response in the optic nerve occurred later (7 days) than in peripheral nerves (3-5 days).
- Most responding cells were of local CNS origin and upregulated phagocytic markers, but did not resemble PNS macrophages.
Conclusions:
- The mononuclear phagocyte response magnitude and timing are similar in CNS and PNS Wallerian degeneration.
- Slower myelin clearance in the CNS is likely due to oligodendrocyte inability to modify myelin for phagocytosis, unlike Schwann cells in the PNS.
- The CNS response is driven by axonal degeneration itself, not just crush injury, as shown by Wlds mutant mice.

