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Proteomic Analysis of Human Macrophage Polarization Under a Low Oxygen Environment
Published on: January 7, 2019
Microenvironmental Regulation of Macrophage Transcriptomic and Metabolomic Profiles in Pulmonary Hypertension
Min Li1, Suzette Riddle1, Sushil Kumar1
1Cardiovascular Pulmonary Research Laboratories, Departments of Pediatrics and Medicine, University of Colorado Anschutz Medical Campus, Aurora, CO, United States.
Abstract:
The recruitment and subsequent polarization of inflammatory monocytes/macrophages in the perivascular regions of pulmonary arteries is a key feature of pulmonary hypertension (PH). However, the mechanisms driving macrophage polarization within the adventitial microenvironment during PH progression remain unclear. We previously established that reciprocal interactions between fibroblasts and macrophages are essential in driving the activated phenotype of both cell types although the signals involved in these interactions remain undefined. We sought to test the hypothesis that adventitial fibroblasts produce a complex array of metabolites and proteins that coordinately direct metabolomic and transcriptomic re-programming of naïve macrophages to recapitulate the pathophysiologic phenotype observed in PH. Media conditioned by pulmonary artery adventitial fibroblasts isolated from pulmonary hypertensive (PH-CM) or age-matched control (CO-CM) calves were used to activate bone marrow derived macrophages. RNA-Seq and mass spectrometry-based metabolomics analyses were performed. Fibroblast conditioned medium from patients with idiopathic pulmonary arterial hypertension or controls were used to validate transcriptional findings. The microenvironment was targeted in vitro using a fibroblast-macrophage co-culture system and in vivo in a mouse model of hypoxia-induced PH. Both CO-CM and PH-CM actively, yet distinctly regulated macrophage transcriptomic and metabolomic profiles. Network integration revealed coordinated rewiring of pro-inflammatory and pro-remodeling gene regulation in concert with altered mitochondrial and intermediary metabolism in response to PH-CM. Pro-inflammation and metabolism are key regulators of macrophage phenotype in vitro, and are closely related to in vivo flow sorted lung interstitial/perivascular macrophages from hypoxic mice. Metabolic changes are accompanied by increased free NADH levels and increased expression of a metabolic sensor and transcriptional co-repressor, C-terminal binding protein 1 (CtBP1), a mechanism shared with adventitial PH-fibroblasts. Targeting the microenvironment created by both cell types with the CtBP1 inhibitor MTOB, inhibited macrophage pro-inflammatory and metabolic re-programming both in vitro and in vivo. In conclusion, coordinated transcriptional and metabolic reprogramming is a critical mechanism regulating macrophage polarization in response to the complex adventitial microenvironment in PH. Targeting the adventitial microenvironment can return activated macrophages toward quiescence and attenuate pathological remodeling that drives PH progression.
Insights
Pulmonary hypertension (PH) involves inflammatory macrophage polarization. Adventitial fibroblasts reprogram macrophages via metabolic and transcriptional changes, which can be targeted to reduce PH progression.
Area of Science:
- Pulmonary Hypertension Research
- Macrophage Biology
- Cellular Metabolism
Background:
- Macrophage polarization in pulmonary arteries is central to pulmonary hypertension (PH).
- Mechanisms driving macrophage polarization in the adventitial microenvironment during PH are not fully understood.
- Reciprocal fibroblast-macrophage interactions are crucial for their activated phenotypes in PH.
Purpose of the Study:
- To investigate if adventitial fibroblasts reprogram macrophages metabolically and transcriptionally in PH.
- To elucidate the role of fibroblast-derived signals in macrophage polarization in the PH adventitial microenvironment.
- To test the therapeutic potential of targeting fibroblast-macrophage interactions in PH.
Main Methods:
- Utilized conditioned media from control (CO-CM) and PH (PH-CM) adventitial fibroblasts to activate bone marrow-derived macrophages.
- Performed RNA-Seq and mass spectrometry-based metabolomics to analyze macrophage reprogramming.
- Validated findings using fibroblast conditioned media from human idiopathic pulmonary arterial hypertension patients and employed in vitro co-culture and in vivo mouse models of PH.
Main Results:
- PH-CM distinctly altered macrophage transcriptomic and metabolomic profiles, revealing coordinated regulation of pro-inflammatory genes and altered intermediary/mitochondrial metabolism.
- Macrophage reprogramming involved increased NADH and C-terminal binding protein 1 (CtBP1) expression, a mechanism shared with PH-fibroblasts.
- Inhibition of CtBP1 with MTOB attenuated macrophage reprogramming and pathological remodeling in vitro and in vivo.
Conclusions:
- Coordinated transcriptional and metabolic reprogramming by the adventitial microenvironment is critical for macrophage polarization in PH.
- Targeting the adventitial microenvironment, specifically the CtBP1 pathway, can revert activated macrophages to a quiescent state.
- Intervention in the fibroblast-macrophage axis offers a promising therapeutic strategy to attenuate PH progression.
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