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An intracellular complement system drives metabolic and proinflammatory reprogramming of vascular fibroblasts in pulmonary hypertension
Ram Raj Prasad, Sushil Kumar, Hui Zhang, Min Li, Cheng-Jun Hu, Suzette Riddle, Brittany A. McKeon, M.G. Frid, Konrad Hoetzenecker, Slaven Crnkovic, Grazyna Kwapiszewska, Rubin M. Tuder, Kurt R. Stenmark
Ram Raj Prasad, Sushil Kumar, Hui Zhang, Min Li, Cheng-Jun Hu, Suzette Riddle, Brittany A. McKeon, M.G. Frid, Konrad Hoetzenecker, Slaven Crnkovic, Grazyna Kwapiszewska, Rubin M. Tuder, Kurt R. Stenmark
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Research Article Pulmonology Vascular biology

An intracellular complement system drives metabolic and proinflammatory reprogramming of vascular fibroblasts in pulmonary hypertension

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Abstract

The complement system is central to the innate immune response, playing a critical role in proinflammatory and autoimmune diseases such as pulmonary hypertension (PH). Recent discoveries highlight the emerging role of intracellular complement, or the “complosome,” in regulating cellular processes such as glycolysis, mitochondrial dynamics, and inflammatory gene expression. This study investigated the hypothesis that intracellular complement proteins C3, CFB, and CFD are upregulated in PH fibroblasts (PH-Fibs) and drive their metabolic and inflammatory states, contributing to PH progression. Our results revealed a pronounced upregulation of CFD, CFB, and C3 in PH-Fibs from human samples and bovine models, both in vivo and in vitro. The finding of elevated levels of C3 activation fragments, including C3b, C3d, and C3a, emphasized enhanced C3 activity. PH-Fibs exhibited notable metabolic reprogramming and increased levels of proinflammatory mediators such as MCP1, SDF1, IL-6, IL-13, and IL-33. Silencing CFD via shRNA reduced CFB activation and C3a production, while normalizing glycolysis, tricarboxylic acid (TCA) cycle activity, and fatty acid metabolism. Metabolomic and gene expression analyses of CFD-knockdown PH-Fibs revealed restored metabolic and inflammatory profiles, underscoring CFD’s crucial role in these changes. This study emphasizes the crucial role of intracellular complement in PH pathogenesis, highlighting the potential for complement-targeted therapies in PH.

Authors

Ram Raj Prasad, Sushil Kumar, Hui Zhang, Min Li, Cheng-Jun Hu, Suzette Riddle, Brittany A. McKeon, M.G. Frid, Konrad Hoetzenecker, Slaven Crnkovic, Grazyna Kwapiszewska, Rubin M. Tuder, Kurt R. Stenmark

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Figure 8

CFD knockdown decreased expression of proinflammatory genes in PH-Fibs.

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CFD knockdown decreased expression of proinflammatory genes in PH-Fibs.
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(A) qRT-PCR analysis of cytokines/chemokines in bovine control and PH-Fibs were stably transfected with either scramble or CFD shRNA. CFD knockdown in PH-Fibs reduced levels of proinflammatory genes, including SDF1, MCP1, IL-6, IL-33, and IL-13. (B) Pharmacological inhibition of CFD in PH-Fibs using ALXN2050 (vemircopan) at a concentration of 10 μM results in a reduction in expression levels of MCP1, SDF1, and IL-6. (C) C3aR inhibition using SB290157 at a concentration of 20 μM in IPAH fibroblasts results in a decrease in expression of SDF1 and IL-6. For comparisons involving more than 2 groups with one variable, 1-way ANOVA followed by Holm-Šidák post-hoc test was used; and paired 2-tailed t test was used to compare 2 groups of samples. Data are presented as mean ± SEM from bovine CO-Fibs (Scr-sh transfected) and PH-Fibs (Scr-sh and CFD-sh transfected), bovine PH-Fibs (DMSO and CFD inhibitor treated), and human IPAH fibroblasts (DMSO and C3aR1 inhibitor treated); n = 4. *P ≤ 0.05, **P < 0.01.

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