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Published on: December 26, 2016
Dysregulated C1q and CD47 in the aging monkey brain: association with myelin damage, microglia reactivity, and
Sarah A DeVries1, Christina Dimovasili1, Maria Medalla2,3
1Laboratory for Cognitive Neurobiology, Dept of Anatomy & Neurobiology, Chobanian and Avedisian School of Medicine, Boston University, Boston, MA, United States.
Abstract:
Normal aging, though lacking widespread neurodegeneration, is nevertheless characterized by cognitive impairment in learning, memory, and executive function. The aged brain is spared from neuron loss, but white matter is lost and damage to myelin sheaths accumulates. This myelin damage is strongly associated with cognitive impairment. Although the cause of the myelin damage is not known, microglia dysregulation is a likely contributor. Immunologic proteins interact with microglial receptors to modulate microglia-mediated phagocytosis, which mediates myelin damage clearance and turn-over. Two such proteins, "eat me" signal C1q and "don't eat me" signal CD47, act in opposition with microglia. Both C1q and CD47 have been implicated in Multiple Sclerosis, a demyelinating disease, but whether they play a role in age-related myelin pathology is currently unknown. The present study investigates C1q and CD47 in relation to age-related myelin degeneration using multilabel immunofluorescence, RNAscope, and confocal microscopy in the cingulum bundle of male and female rhesus monkeys across the lifespan. Our findings showed significant age-related elevation in C1q localized to myelin basic protein, and this increase is associated with more severe cognitive impairment. In contrast, CD47 localization to myelin decreased in middle age and oligodendrocyte expression of CD47 RNA decreased with age. Lastly, microglia reactivity increased with age in association with the changes in C1q and CD47. Together, these results suggest disruption in the balance of "eat me" and "don't eat me" signals during normal aging, biasing microglia toward increased reactivity and phagocytosis of myelin, resulting in cognitive deficits.
Insights
Normal aging impairs cognition due to myelin damage, linked to altered "eat me" (C1q) and "don't eat me" (CD47) signals. This imbalance increases microglia reactivity, leading to myelin loss and cognitive decline.
Area of Science:
- Neuroscience
- Immunology
- Aging Research
Background:
- Normal aging causes cognitive decline despite lacking widespread neurodegeneration.
- White matter damage and myelin sheath degradation are associated with age-related cognitive impairment.
- Microglia dysregulation is a potential cause of age-related myelin damage.
Purpose of the Study:
- To investigate the roles of C1q ("eat me" signal) and CD47 ("don't eat me" signal) in age-related myelin degeneration.
- To determine the association between C1q, CD47, and cognitive function in aging.
- To examine microglia reactivity in the context of age-related myelin changes.
Main Methods:
- Multilabel immunofluorescence, RNAscope, and confocal microscopy were used.
- The study analyzed the cingulum bundle in male and female rhesus monkeys across their lifespan.
- C1q and CD47 expression and localization were assessed in relation to myelin basic protein and oligodendrocyte CD47 RNA.
Main Results:
- Age-related increases in C1q, localized to myelin, correlated with cognitive impairment.
- CD47 localization to myelin and oligodendrocyte CD47 RNA expression decreased with age.
- Microglia reactivity increased with age, associated with observed changes in C1q and CD47.
Conclusions:
- Normal aging disrupts the balance of "eat me" and "don't eat me" signals.
- This imbalance may bias microglia towards increased myelin phagocytosis, contributing to cognitive deficits.
- Age-related myelin pathology involves altered immune signaling pathways.

