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Updated: Jul 17, 2025

Human Ex vivo Wound Model and Whole-Mount Staining Approach to Accurately Evaluate Skin Repair
Published on: February 17, 2021
Niche-specific macrophage loss promotes skin capillary aging
Kailin R Mesa1, Kevin A O'Connor1, Charles Ng2
1Department of Cell Biology, New York University School of Medicine, New York, NY 10016, USA.
Abstract:
All mammalian organs depend upon resident macrophage populations to coordinate repair processes and facilitate tissue-specific functions1-3. Recent work has established that functionally distinct macrophage populations reside in discrete tissue niches and are replenished through some combination of local proliferation and monocyte recruitment4,5. Moreover, decline in macrophage abundance and function in tissues has been shown to contribute to many age-associated pathologies, such as atherosclerosis, cancer, and neurodegeneration6-8. Despite these advances, the cellular mechanisms that coordinate macrophage organization and replenishment within an aging tissue niche remain largely unknown. Here we show that capillary-associated macrophages (CAMs) are selectively lost over time, which contributes to impaired vascular repair and tissue perfusion in older mice. To investigate resident macrophage behavior in vivo, we have employed intravital two-photon microscopy to non-invasively image in live mice the skin capillary plexus, a spatially well-defined model of niche aging that undergoes rarefication and functional decline with age. We find that CAMs are lost with age at a rate that outpaces that of capillary loss, leading to the progressive accumulation of capillary niches without an associated macrophage in both mice and humans. Phagocytic activity of CAMs was locally required to repair obstructed capillary blood flow, leaving macrophage-less niches selectively vulnerable to both homeostatic and injury-induced loss in blood flow. Our work demonstrates that homeostatic renewal of resident macrophages is not as finely tuned as has been previously suggested9-11. Specifically, we found that neighboring macrophages do not proliferate or reorganize sufficiently to maintain an optimal population across the skin capillary niche in the absence of additional cues from acute tissue damage or increased abundance of growth factors, such as colony stimulating factor 1 (CSF1). Such limitations in homeostatic renewal and organization of various niche-resident cell types are potentially early contributors to tissue aging, which may provide novel opportunities for future therapeutic interventions.
Insights
Aging causes a loss of capillary-associated macrophages (CAMs), impairing blood flow repair. Macrophage renewal in tissues is less efficient than previously thought, offering new therapeutic targets for aging.
Area of Science:
- Immunology
- Aging research
- Vascular biology
Background:
- Resident macrophages are crucial for organ repair and function.
- Macrophage decline contributes to age-associated diseases.
- Mechanisms of macrophage organization in aging tissues are poorly understood.
Purpose of the Study:
- To investigate the cellular mechanisms of macrophage organization and replenishment in aging tissue niches.
- To determine the role of capillary-associated macrophages (CAMs) in vascular repair during aging.
Main Methods:
- Intravital two-photon microscopy was used to image the skin capillary plexus in live mice.
- Analysis of CAM abundance and distribution in aging mice and humans.
- Assessment of CAM phagocytic activity in relation to capillary blood flow.
Main Results:
- Capillary-associated macrophages (CAMs) are selectively lost with age, exceeding capillary loss.
- Macrophage-deficient capillary niches show impaired repair of blood flow obstructions.
- Homeostatic renewal of CAMs is insufficient to maintain optimal populations without external cues.
Conclusions:
- Selective loss of CAMs contributes to impaired vascular repair and tissue perfusion in aging.
- Aging tissues exhibit limitations in macrophage renewal and organization.
- These findings suggest novel therapeutic strategies targeting macrophage homeostasis in aging.
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