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Thrombopoietin mimetic reduces mouse lung inflammation and fibrosis after radiation by attenuating activated endothelial phenotypes
Jeb English, Sriya Dhanikonda, Kathryn E. Tanaka, Wade Koba, Gary Eichenbaum, Weng-Lang Yang, Chandan Guha
Jeb English, Sriya Dhanikonda, Kathryn E. Tanaka, Wade Koba, Gary Eichenbaum, Weng-Lang Yang, Chandan Guha
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Research Article Pulmonology Therapeutics

Thrombopoietin mimetic reduces mouse lung inflammation and fibrosis after radiation by attenuating activated endothelial phenotypes

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Abstract

Radiation-induced lung injury (RILI) initiates radiation pneumonitis and progresses to fibrosis as the main side effect experienced by patients with lung cancer treated with radiotherapy. There is no effective drug for RILI. Sustained vascular activation is a major contributor to the establishment of chronic disease. Here, using a whole thoracic irradiation (WTI) mouse model, we investigated the mechanisms and effectiveness of thrombopoietin mimetic (TPOm) for preventing RILI. We demonstrated that administering TPOm 24 hours before irradiation decreased histologic lung injury score, apoptosis, vascular permeability, expression of proinflammatory cytokines, and neutrophil infiltration in the lungs of mice 2 weeks after WTI. We described the expression of c-MPL, a TPO receptor, in mouse primary pulmonary microvascular endothelial cells, showing that TPOm reduced endothelial cell–neutrophil adhesion by inhibiting ICAM-1 expression. Seven months after WTI, TPOm-treated lung exhibited less collagen deposition and expression of MMP-9, TIMP-1, IL-6, TGF-β, and p21. Moreover, TPOm improved lung vascular structure, lung density, and respiration rate, leading to a prolonged survival time after WTI. Single-cell RNA sequencing analysis of lungs 2 weeks after WTI revealed that TPOm shifted populations of capillary endothelial cells toward a less activated and more homeostatic phenotype. Taken together, TPOm is protective for RILI by inhibiting endothelial cell activation.

Authors

Jeb English, Sriya Dhanikonda, Kathryn E. Tanaka, Wade Koba, Gary Eichenbaum, Weng-Lang Yang, Chandan Guha

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Figure 3

Effect of TPOm on neutrophil adherence and activation of irradiated mouse PMVECs.

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Effect of TPOm on neutrophil adherence and activation of irradiated mous...
Mouse primary PMVECs were isolated from C57B/6J mouse and cultured. (A) Western blot analysis of c-MPL expression in lung tissue and PMVECs. β-Actin was used as loading control. (B) Immunofluorescence staining of c-MPL (green) and CD31 (red) in PMVECs. Counterstained with DAPI (blue). Scale bar: 40 μm. (C) Representative images of fluorescently labeled mouse neutrophils (green) coincubated on non- and irradiated PMVECs for 30 minutes and then washed with PBS. PMVECs were pretreated with PBS or TPOm 2 hours before irradiating at 10 Gy and then cultured for another 48 hours before adhesion assay. Adherent neutrophils were imaged by fluorescent microscopy. Scale bar: 100 μm. (D) Averaged fluorescence intensity of each group measured at an excitation and emission of 488/515 nm. The intensity of 0 Gy control is designated as 100% for comparison (n = 6/group). (E) Western blot images of ICAM-1 expression in mouse PMVECs from 0 Gy control and irradiated PMVECs at 10 Gy 48 hours after IR. The irradiated PMVECs were pretreated with PBS and TPOm 2 hours before IR. β-Actin was used as loading control. (F) Quantification of relative ICAM-1 protein levels compared with 0 Gy control set as 1 (n = 3/group). (G) Representative images of crystal violet staining of PMVECs from 0 Gy control and irradiated PMVECs at 10 Gy 24 hours after IR. The irradiated PMVECs were pretreated with PBS and TPOm 2 hours before IR. Scale bar: 100 μm. (H) Quantification of crystal violet staining after elution with methanol, followed by reading at 570 nm on a microplate reader. The OD reading of the 0 Gy control is designated as 100% for comparison (n = 6/group). Data are shown as mean ± SD. *P < 0.05 vs. 0 Gy and #P < 0.05 vs. 10 Gy. Data were analyzed using nonparametric methods, using a 1-way ANOVA with Tukey’s test as post hoc comparison.

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