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M1/M2 Macrophages in Diabetic Nephropathy: Nrf2/HO-1 as Therapeutic Targets
Robert Clive Landis1,2, Kim R Quimby1, Andre R Greenidge1
1Edmund Cohen Laboratory for Vascular Research, George Alleyne Chronic Disease Research Centre, The University of the West Indies, Barbados BB11115, West Indies.
Abstract:
The process of inflammation is orchestrated by macrophages, according to their state of differentiation: thus, classically activated (M1) macrophages initiate the process by elaborating proinflammatory cytokines and reactive oxygen species, whereas the latter phase is controlled by alternatively activated macrophages (M2) to resolve inflammation and promote tissue remodelling with the release of growth factors. In a simple human inflammatory response, such as acute crystal arthropathy, macrophages progress linearly through M1 and M2 phases; however, in chronic inflammatory responses, such as atherosclerosis and Diabetic Nephropathy (DN), both M1 and M2 macrophages may coexist, leading to persistent inflammation and fibrosis. A key macrophage receptor that regulates conversion from M1 to M2 is CD163, the hemoglobin scavenger receptor. Scavenging of hemoglobin:haptoglobin (Hb:Hp) complexes via CD163 leads to nuclear translocation of the transcription factor Nrf2 (NF-E2-related factor 2), upregulation of heme oxygenase (HO)-1 cytoprotective protein, and release of interleukin (IL)-10 anti-inflammatory cytokine; IL-10 is then linked in a positive feedback loop to further CD163 expression. The potency of this M1/M2 switching pathway is underscored by the fact that human Hp2 polymorphisms are associated with worsened clinical outcomes for diabetic complications, including DN. Parallel observations in animals show that HO-1 activation by hemin protects against DN in rodent models of diabetes. This review discusses the concept that Nrf2/HO-1 acts as a 'therapeutic funnel' through which a range of natural and synthetic anti-oxidants may drive M1 to M2 switching and improved kidney function in diabetes. We also discuss our observations on the evolution of M1/M2 phenotypes in a human model of wound healing which has presented intriguing potential drug targets for DN, such as eotaxin/CCR3.
Insights
Macrophages shift between M1 and M2 states to control inflammation. The Nrf2/HO-1 pathway, activated by CD163, drives this M1 to M2 switch, offering a therapeutic target for diabetic nephropathy.
Area of Science:
- Immunology
- Cell Biology
- Nephrology
Background:
- Macrophages play dual roles in inflammation, with M1 types initiating and M2 types resolving it.
- Chronic conditions like Diabetic Nephropathy (DN) involve persistent M1/M2 coexistence, leading to fibrosis.
- CD163 receptor mediates the switch from M1 to M2 macrophage phenotypes.
Purpose of the Study:
- To explore the Nrf2/HO-1 pathway as a therapeutic target for modulating macrophage phenotypes in DN.
- To review the role of CD163-mediated M1 to M2 switching in inflammation and diabetic complications.
- To identify potential drug targets for DN based on macrophage phenotype evolution.
Main Methods:
- Review of literature on macrophage differentiation, CD163, Nrf2/HO-1 pathway, and DN.
- Analysis of human wound healing models to observe M1/M2 phenotype dynamics.
- Discussion of animal models demonstrating HO-1 activation's protective effects in DN.
Main Results:
- CD163-mediated scavenging of hemoglobin:haptoglobin complexes activates Nrf2/HO-1 and IL-10, promoting M2 polarization.
- Nrf2/HO-1 acts as a 'therapeutic funnel' for antioxidants to induce M1 to M2 switching.
- Hp2 polymorphisms correlate with worse DN outcomes, highlighting the pathway's clinical relevance.
- Eotaxin/CCR3 identified as a potential drug target in DN based on M1/M2 phenotype observations.
Conclusions:
- The Nrf2/HO-1 pathway is a critical regulator of macrophage polarization and a promising therapeutic target for DN.
- Modulating macrophage phenotypes via CD163 and Nrf2/HO-1 activation could improve kidney function in diabetes.
- Further research into targets like eotaxin/CCR3 may yield novel treatments for DN.
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