Usefulness of <sup>18</sup>F-FPP-RGD<sub>2</sub> PET in pathophysiological evaluation of lung fibrosis using a bleomycin-induced rat model.

Hiroyama, Shuichi; Matsunaga, Keiko; Ito, Miwa; Iimori, Hitoshi; Tajiri, Minako; Nakano, Yoshiyuki; Shimosegawa, Eku; Abe, Kohji · Eur J Nucl Med Mol Imaging · 2022

basic_science · Level V

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Abstract

Integrins α<sub>v</sub> are key molecules in the pathogenesis of fibrosis in multiple organs. To assess the potential utility of integrin α<sub>v</sub>β<sub>3</sub> imaging for idiopathic pulmonary fibrosis (IPF), we evaluated an <sup>18</sup>F-FPP-RGD<sub>2</sub> PET probe in a rat model of bleomycin-induced lung fibrosis. Pulmonary fibrosis was induced by single intratracheal instillation of bleomycin (3 mg/rat). Positron emission tomography (PET)/computerized tomography scans were performed 4 weeks after bleomycin administration using <sup>18</sup>F-FPP-RGD<sub>2</sub>. Total distribution volume (V<sub>T</sub>) was estimated using one-tissue/two-compartment, two-tissue/three-compartment models, and Logan graphical analysis (Logan plot; t* = 30 min). Plasma-free fractions were estimated from images of the left ventricle. Correlation between Logan V<sub>T</sub> and lung pathology was assessed by Spearman's rank correlation. Histopathological evaluation demonstrated the development of fibrosis in IPF-model group. Integrin α<sub>v</sub> protein expression and lung radioactivity were higher in IPF-model group compared with control group. The lung radioactivity of <sup>18</sup>F-FPP-RGD<sub>2</sub> rapidly reached the peak after administration and then gradually decreased, whereas left ventricular radioactivity rapidly disappeared. Logan graphical analysis was found to be suitable for <sup>18</sup>F-FPP-RGD<sub>2</sub> kinetic analysis in the IPF-model lung. Logan V<sub>T</sub> values for <sup>18</sup>F-FPP-RGD<sub>2</sub> were significantly higher in IPF rats compared with control rats and strongly correlated with lung fibrosis, pathology, integrin α<sub>v</sub> protein expression, and oxygen partial pressure. Our findings demonstrate that the integrin α<sub>v</sub>β<sub>3</sub> PET probe <sup>18</sup>F-FPP-RGD<sub>2</sub> can detect pathophysiological changes in lungs, including fibrosis accompanying upregulated integrin α<sub>v</sub> of IPF-model rats. These findings support the utility of <sup>18</sup>F-FPP-RGD<sub>2</sub> PET imaging for the pathophysiological evaluation of pulmonary fibrosis.

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