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Metabolic Characterization of Polarized M1 and M2 Bone Marrow-derived Macrophages Using Real-time Extracellular Flux Analysis
Published on: November 28, 2015
Targeting macrophage polarization by inhibiting Pim2 alleviates inflammatory arthritis via metabolic reprogramming
Xiaojun Xu1,2, Peitao Xu1,2, Guozhen Shen1,2
1Department of Orthopedics, The Eighth Affiliated Hospital of Sun Yat-Sen University, 3025# Shennan Road, Shenzhen, 518033, PR China.
Abstract:
Macrophage polarization and energy metabolic reprogramming play pivotal roles in the onset and progression of inflammatory arthritis. Moreover, although previous studies have reported that the proviral integration of Moloney virus 2 (Pim2) kinase is involved in various cancers through the mediation of aerobic glycolysis in cancer cells, its role in inflammatory arthritis remains unclear. In this study, we demonstrated that multiple metabolic enzymes are activated upon Pim2 upregulation during M1 macrophage polarization. Specifically, Pim2 directly phosphorylates PGK1-S203, PDHA1-S300, and PFKFB2-S466, thereby promoting glycolytic reprogramming. Pim2 expression was elevated in macrophages from patients with inflammatory arthritis and collagen-induced arthritis (CIA) model mice. Conditional knockout of Pim2 in macrophages or administration of the Pim2 inhibitor HJ-PI01 attenuated arthritis development by inhibiting M1 macrophage polarization. Through molecular docking and dynamic simulation, bexarotene was identified as an inhibitor of Pim2 that inhibits glycolysis and downstream M1 macrophage polarization, thereby mitigating the progression of inflammatory arthritis. For targeted treatment, neutrophil membrane-coated bexarotene (Bex)-loaded PLGA-based nanoparticles (NM@NP-Bex) were developed to slow the progression of inflammatory arthritis by suppressing the polarization of M1 macrophages, and these nanoparticles (NPs) exhibited superior therapeutic effects with fewer side effects. Taken together, the results of our study demonstrated that targeting Pim2 inhibition could effectively alleviate inflammatory arthritis via glycolysis inhibition and reversal of the M1/M2 macrophage imbalance. NM@NPs loaded with bexarotene could represent a promising targeted strategy for the treatment of inflammatory arthritis.
Insights
Targeting Pim2 kinase in M1 macrophages inhibits glycolysis and inflammatory arthritis. Bexarotene nanoparticles offer a promising treatment by reversing M1/M2 macrophage imbalance.
Area of Science:
- Immunology
- Metabolic pathways
- Arthritis research
Background:
- Macrophage polarization and metabolic reprogramming are key in inflammatory arthritis.
- Proviral integration of Moloney virus 2 (Pim2) kinase's role in cancer glycolysis is known, but its function in arthritis is unclear.
Purpose of the Study:
- To investigate the role of Pim2 kinase in M1 macrophage polarization and inflammatory arthritis.
- To identify potential therapeutic targets and strategies for inflammatory arthritis.
Main Methods:
- Assessed Pim2 upregulation and its effect on metabolic enzymes during M1 polarization.
- Utilized molecular docking and dynamic simulation to identify Pim2 inhibitors.
- Developed neutrophil membrane-coated bexarotene-loaded nanoparticles (NM@NP-Bex) for targeted delivery.
Main Results:
- Pim2 directly phosphorylates PGK1, PDHA1, and PFKFB2, promoting M1 macrophage glycolysis.
- Pim2 expression is elevated in inflammatory arthritis patients and CIA models.
- Pim2 inhibition (via knockout or HJ-PI01) and bexarotene treatment attenuated arthritis by suppressing M1 polarization.
- NM@NP-Bex demonstrated superior therapeutic effects with reduced side effects in inflammatory arthritis models.
Conclusions:
- Targeting Pim2 effectively alleviates inflammatory arthritis by inhibiting glycolysis and restoring M1/M2 macrophage balance.
- Bexarotene, delivered via NM@NPs, presents a promising targeted therapeutic strategy for inflammatory arthritis.

