Comprehensive analysis of mechanism underlying hypouricemic effect of glucosyl hesperidin

高尿酸血症 橙皮苷 化学 尿酸 痛风 排泄 黄嘌呤氧化酶 肾 尿酸 内分泌学 内科学 丙磺舒 别嘌呤醇 生物化学 药理学 医学 酶 替代医学 病理
作者
Ami Ota-Kontani,Hiroshi Hirata,Masatsune Ogura,Youichi Tsuchiya,Mariko Harada‐Shiba
出处
期刊:Biochemical and Biophysical Research Communications [Elsevier BV]
卷期号:521 (4): 861-867 被引量:19
标识
DOI:10.1016/j.bbrc.2019.10.199
摘要

Hyperuricemia is caused by hepatic overproduction of uric acid and/or underexcretion of urate from the kidneys and small intestine. Although increased intake of citrus fruits, a fructose-rich food, is associated with increased risk of gout in humans, hesperidin, a flavonoid naturally present in citrus fruits, reportedly reduces serum uric acid (SUA) levels by inhibiting xanthine oxidase (XOD) activity in rats. However, the effects of hesperidin on renal and intestinal urate excretion were previously unknown. In this study, we used glucosyl hesperidin (GH), which has greater bioavailability than hesperidin, to clarify comprehensive mechanisms underlying the hypouricemic effects of hesperidin in vivo. GH dose-dependently decreased SUA levels in mice with hyperuricemia induced by potassium oxonate and a fructose-rich diet, and inhibited XOD activity in the liver. GH decreased renal urate excretion without changes in kidney URAT1, ABCG2 or GLUT9 expressions, suggesting that reducing uric acid pool size by inhibiting XOD decreased renal urate excretion. We also found that GH had no effect on intestinal urate excretion or protein expression of ABCG2. Therefore, we concluded that GH exhibits a hypouricemic effect by inhibiting XOD activity in the liver without increasing renal or intestinal urate excretion. Of note, this is the first study to elucidate the effect of a flavonoid on intestinal urate excretion using a mice model, whose findings should prove useful in future food science research in the area of urate metabolism. Taking these findings together, GH may be useful for preventing hyperuricemia, especially in people with the overproduction type.
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