Disclosure of the Culprits: Macrophages-Versatile Regulators of Wound Healing
Anca Sindrilaru1, Karin Scharffetter-Kochanek1
1Department of Dermatology and Allergic Diseases, University of Ulm , Ulm, Germany .
Significance:
Macrophages are invariably present and tightly regulate all phases of adult wound healing, including inflammation, granulation tissue formation, and matrix deposition with the unavoidable outcome of scar formation. In response to environmental cues, macrophages mount a "classical" pro-inflammatory M1 activation as opposed to the "alternative" M2 phenotype, with wound macrophages having long been viewed as M2 macrophages.
Recent Advances:
Recent studies rather point to large temporal and phenotypic variations of wound macrophages subsets. Therefore, a functional classification of macrophages according to wound-healing phases appears to better meet the in vivo complexity. In an ideal but simplistic scenario grossly reflecting normal wound healing, initial tissue injury induces inflammatory M1-like macrophages, which, upon engulfment of apoptotic neutrophils or in response to other inflammation dampening stimuli, switch toward anti-inflammatory M2-like macrophages and further toward growth factor-producing pro-fibrotic M2a-like macrophages. Although not yet documented for skin wounds, a subset of metalloproteinase-producing fibrolytic M2c-like macrophages may contribute to fibrosis resolution. Recent work identified a diversity of novel macrophage phenotypes associated with normal and pathologic wound healing, most of them ranging out of the M1/M2 paradigm. Iron-overloaded M1-like macrophages represent such a novel phenotypic subset driving the non-healing state of chronic venous leg ulcers.
Critical Issues:
Despite growing evidence that macrophage dysfunctions are, at least in part, responsible for pathologic wound healing, including nonhealing wounds and excessive scar formation, these are hardly specifically addressed even by modern therapeutic strategies.
Future Directions:
If characterized in sufficient detail, distinct macrophage subsets and their impaired functions provide ideal targets for improving wound healing.
Insights
Macrophages regulate adult wound healing, but their complex roles and phenotypes beyond the M1/M2 paradigm are crucial for understanding healing and scarring. Targeting specific macrophage subsets offers new therapeutic avenues.
Area of Science:
- Wound healing research
- Immunology
- Cell biology
Background:
- Macrophages are key regulators of all wound healing phases, traditionally viewed as M2-phenotype in wounds.
- Recent research reveals complex temporal and phenotypic variations in wound macrophage subsets, challenging the simplistic M1/M2 paradigm.
- Novel macrophage phenotypes, including iron-overloaded M1-like macrophages, are associated with non-healing chronic wounds.
Approach:
- Evaluating the dynamic and diverse phenotypes of macrophages within the wound microenvironment.
- Classifying macrophage functions based on their roles in distinct wound healing phases.
- Investigating novel macrophage subsets beyond the classical M1/M2 classification.
Key Points:
- Macrophage dysfunction contributes to pathological wound healing, including non-healing wounds and excessive scarring.
- Traditional M1/M2 classification inadequately captures the complexity of macrophage roles in wound repair.
- Distinct macrophage subsets and their specific functional impairments are critical targets for therapeutic intervention.
Conclusions:
- Understanding the diverse macrophage subsets and their functions is essential for improving wound healing outcomes.
- Targeting specific, impaired macrophage functions offers a promising strategy for developing novel wound healing therapies.
- Further detailed characterization of macrophage subsets will enable the development of precise therapeutic interventions for various wound pathologies.
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