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Increased plasma XOR activity induced by NAFLD/NASH and its possible involvement in vascular neointimal proliferation
Yusuke Kawachi, Yuya Fujishima, Hitoshi Nishizawa, Takashi Nakamura, Seigo Akari, Takayo Murase, Takuro Saito, Yasuhiro Miyazaki, Hirofumi Nagao, Shiro Fukuda, Shunbun Kita, Naoto Katakami, Yuichiro Doki, Norikazu Maeda, Iichiro Shimomura
Yusuke Kawachi, Yuya Fujishima, Hitoshi Nishizawa, Takashi Nakamura, Seigo Akari, Takayo Murase, Takuro Saito, Yasuhiro Miyazaki, Hirofumi Nagao, Shiro Fukuda, Shunbun Kita, Naoto Katakami, Yuichiro Doki, Norikazu Maeda, Iichiro Shimomura
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Research Article Hepatology Metabolism

Increased plasma XOR activity induced by NAFLD/NASH and its possible involvement in vascular neointimal proliferation

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Abstract

Xanthine oxidoreductase (XOR) is an enzyme that catalyzes hypoxanthine to xanthine and xanthine to uric acid, respectively. However, the underlying mechanisms of increased plasma XOR and its pathological roles in systemic diseases, such as atherosclerosis, are not fully understood. In this study, we found that changes in plasma XOR activity after bariatric surgery closely associated with those in liver enzymes, but not with those in BMI. In a mouse model of nonalcoholic fatty liver disease/steatohepatitis (NAFLD/NASH), plasma XOR activity markedly increased. Besides, purine catabolism was accelerated in the plasma per se of NASH mice and human patients with high XOR activity. In our NASH mice, we observed an increased vascular neointima formation consisting of dedifferentiated vascular smooth muscle cells (SMCs), which was significantly attenuated by topiroxostat, a selective XOR inhibitor. In vitro, human liver S9–derived XOR promoted proliferation of SMCs with phenotypic modulation and induced ROS production by catabolizing hypoxanthine released from human endothelial cells. Collectively, the results from human and mouse models suggest that increased plasma XOR activity, mainly explained by excess hepatic leakage, was involved in the pathogenesis of vascular injury, especially in NAFLD/NASH conditions.

Authors

Yusuke Kawachi, Yuya Fujishima, Hitoshi Nishizawa, Takashi Nakamura, Seigo Akari, Takayo Murase, Takuro Saito, Yasuhiro Miyazaki, Hirofumi Nagao, Shiro Fukuda, Shunbun Kita, Naoto Katakami, Yuichiro Doki, Norikazu Maeda, Iichiro Shimomura

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Figure 5

Effects of liver S9–derived XOR on proliferation and dedifferentiation in HASMCs.

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Effects of liver S9–derived XOR on proliferation and dedifferentiation i...
(A and B) Unilateral carotid artery ligation was performed on male C57BL/6J mice 5 weeks after a CDAHFD feeding. Then vessels were collected 3 weeks after surgery. Representative immunofluorescence images for αSMA (green; A) or calponin (green; B) with DAPI-stained nuclei (blue) of sham-operated (upper panels) and ligated arteries (lower panels). The border between media and neointima was indicated by the dotted line. Scale bar: 150 μm. (C–F) HASMCs were incubated with or without 1% human liver S9 compartment (S9) in the presence or absence of 10 μM TPX. (C) XDH, XO, and total XOR activity in cell culture media and human plasma of an obese patient with liver dysfunction. The HPLC-FLD method was used to distinguish between XO activity and total XOR (XO plus XDH) activity. (D) The relative incorporation of BrdU. n = 8 for each group. (E) Immunoblots for calponin and GAPDH. (F) Relative protein levels of calponin normalized to GAPDH. n = 3 for each group. (G and H) HUVECs were incubated with or without 1% S9 in the presence or absence of 10 μM TPX for 4 hours. (G) Changes in HX, Xan, and UA concentrations in the culture media. White circles = control; black squares = 1% S9 with vehicle (Veh); open squares = 1% S9 with TPX. n = 3 for each group. (H) ROS production in the culture media measured by a fluorogenic probe, DCFH-DiOxyQ, using DCF standard. n = 3 for each group. Data are shown as mean ± SEM; **P < 0.01 and ***P < 0.001 vs. control (Con, without 1% S9), and ††P < 0.01 and †††P < 0.001 (1-way ANOVA with Tukey’s post hoc test). ND, not detected; HASMCs, human arterial smooth muscle cells; αSMA, α–smooth muscle actin; DCFH-DiOxyQ, dichlorodihydrofluorescin DiOxyQ.

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