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Healthy Brain Aging Modifies Microglial Calcium Signaling In Vivo
Maria Olmedillas Del Moral1, Nithi Asavapanumas2, Néstor L Uzcátegui3
1Institute of Physiology, Department of Neurophysiology, Eberhard Karls University of Tübingen, 72016 Tübingen, Germany. maria.olmedillas@uni-tuebingen.de.
Abstract:
Brain aging is characterized by a chronic, low-grade inflammatory state, promoting deficits in cognition and the development of age-related neurodegenerative diseases. Malfunction of microglia, the brain-resident immune cells, was suggested to play a critical role in neuroinflammation, but the mechanisms underlying this malfunctional phenotype remain unclear. Specifically, the age-related changes in microglial Ca2+ signaling, known to be linked to its executive functions, are not well understood. Here, using in vivo two-photon imaging, we characterize intracellular Ca2+ signaling and process extension of cortical microglia in young adult (2⁻4-month-old), middle-aged (9⁻11-month-old), and old (18⁻21-month-old) mice. Our data revealed a complex and nonlinear dependency of the properties of intracellular Ca2+ signals on an animal's age. While the fraction of cells displaying spontaneous Ca2+ transients progressively increased with age, the frequencies and durations of the spontaneous Ca2+ transients followed a bell-shaped relationship, with the most frequent and largest Ca2+ transients seen in middle-aged mice. Moreover, in old mice microglial processes extending toward an ATP source moved faster but in a more disorganized manner, compared to young adult mice. Altogether, these findings identify two distinct phenotypes of aging microglia: a reactive phenotype, abundantly present in middle-aged animals, and a dysfunctional/senescent phenotype ubiquitous in old mice.
Insights
Brain aging involves chronic inflammation and microglial (immune cell) dysfunction. This study reveals age-related changes in microglial calcium signaling and process extension, identifying distinct aging phenotypes.
Area of Science:
- Neuroscience
- Immunology
- Aging Research
Background:
- Brain aging is associated with chronic inflammation, cognitive decline, and neurodegenerative diseases.
- Microglial malfunction is implicated in neuroinflammation, but the underlying mechanisms, particularly age-related changes in calcium (Ca2+) signaling, are not well understood.
Purpose of the Study:
- To investigate age-related alterations in microglial intracellular Ca2+ signaling and process extension in mice.
- To identify distinct microglial phenotypes associated with different stages of aging.
Main Methods:
- In vivo two-photon imaging was used to analyze cortical microglia in young adult, middle-aged, and old mice.
- Characterized intracellular Ca2+ signaling dynamics and microglial process extension toward an ATP source.
Main Results:
- A progressive increase in spontaneous Ca2+ transients with age was observed.
- Ca2+ transient frequency and duration showed a bell-shaped relationship with age, peaking in middle age.
- Old mice exhibited faster but disorganized microglial process extension.
Conclusions:
- Microglial Ca2+ signaling and function change nonlinearly with age.
- Two distinct aging microglia phenotypes were identified: a reactive phenotype in middle-aged mice and a dysfunctional/senescent phenotype in old mice.
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