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Myeloid PFKFB3-mediated glycolysis promotes kidney fibrosis
Qiuhua Yang1, Emily Huo1,2, Yongfeng Cai1
1Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, Augusta, GA, United States.
Abstract:
Excessive renal fibrosis is a common pathology in progressive chronic kidney diseases. Inflammatory injury and aberrant repair processes contribute to the development of kidney fibrosis. Myeloid cells, particularly monocytes/macrophages, play a crucial role in kidney fibrosis by releasing their proinflammatory cytokines and extracellular matrix components such as collagen and fibronectin into the microenvironment of the injured kidney. Numerous signaling pathways have been identified in relation to these activities. However, the involvement of metabolic pathways in myeloid cell functions during the development of renal fibrosis remains understudied. In our study, we initially reanalyzed single-cell RNA sequencing data of renal myeloid cells from Dr. Denby's group and observed an increased gene expression in glycolytic pathway in myeloid cells that are critical for renal inflammation and fibrosis. To investigate the role of myeloid glycolysis in renal fibrosis, we utilized a model of unilateral ureteral obstruction in mice deficient of Pfkfb3, an activator of glycolysis, in myeloid cells (Pfkfb3 ΔMϕ ) and their wild type littermates (Pfkfb3 WT). We observed a significant reduction in fibrosis in the obstructive kidneys of Pfkfb3 ΔMϕ mice compared to Pfkfb3 WT mice. This was accompanied by a substantial decrease in macrophage infiltration, as well as a decrease of M1 and M2 macrophages and a suppression of macrophage to obtain myofibroblast phenotype in the obstructive kidneys of Pfkfb3 ΔMϕ mice. Mechanistic studies indicate that glycolytic metabolites stabilize HIF1α, leading to alterations in macrophage phenotype that contribute to renal fibrosis. In conclusion, our study implicates that targeting myeloid glycolysis represents a novel approach to inhibit renal fibrosis.
Insights
Targeting myeloid cell glycolysis, a key metabolic pathway, can reduce kidney fibrosis. This study shows inhibiting glycolysis in myeloid cells decreases inflammation and fibrosis progression in chronic kidney disease models.
Area of Science:
- Nephrology
- Immunology
- Metabolism
Background:
- Renal fibrosis is a hallmark of chronic kidney disease progression.
- Myeloid cells, especially macrophages, drive kidney fibrosis through inflammation and extracellular matrix deposition.
- The role of metabolic pathways, particularly glycolysis, in myeloid cell function during renal fibrosis is not well understood.
Purpose of the Study:
- To investigate the role of myeloid cell glycolysis in the development of kidney fibrosis.
- To determine if inhibiting glycolysis in myeloid cells can ameliorate renal fibrosis.
Main Methods:
- Reanalysis of single-cell RNA sequencing data to identify upregulated glycolytic pathways in renal myeloid cells.
- Utilized a mouse model of unilateral ureteral obstruction with myeloid-specific deletion of Pfkfb3, a glycolysis activator.
- Assessed kidney fibrosis, macrophage infiltration, macrophage polarization (M1/M2), and myofibroblast differentiation.
Main Results:
- Myeloid cells in fibrotic kidneys show increased gene expression related to glycolysis.
- Mice with myeloid-specific Pfkfb3 deficiency (Pfkfb3ΔMϕ) exhibited significantly reduced renal fibrosis compared to wild-type littermates (Pfkfb3WT).
- Reduced macrophage infiltration, M1/M2 polarization, and suppressed macrophage-to-myofibroblast transition were observed in Pfkfb3ΔMϕ mice, linked to glycolytic metabolite stabilization of HIF1α.
Conclusions:
- Myeloid cell glycolysis is a critical driver of renal fibrosis.
- Targeting myeloid cell glycolysis represents a novel therapeutic strategy for inhibiting kidney fibrosis progression.
- Inhibition of myeloid glycolysis modulates macrophage phenotype and reduces pro-fibrotic activities.

