Department of Cardiovascular Medicine, University of Oxford, John Radcliffe Hospital, Oxford OX3 9DU, UK.
Free Radic Biol Med. 2011 Jun 1;50(11):1639-46. doi: 10.1016/j.freeradbiomed.2011.03.010. Epub 2011 Mar 12.
Tetrahydrobiopterin (BH4) is a required cofactor for the synthesis of NO by endothelial nitric oxide synthase (eNOS), and endothelial BH4 bioavailability is a critical factor in regulating the balance between NO and superoxide production (eNOS coupling). Biosynthesis of BH4 is determined by the activity of GTP-cyclohydrolase I (GTPCH). However, BH4 levels may also be influenced by oxidation, forming 7,8-dihydrobiopterin (BH2), which promotes eNOS uncoupling. Conversely, dihydrofolate reductase (DHFR) can regenerate BH4 from BH2, but whether DHFR is functionally important in maintaining eNOS coupling remains unclear. To investigate the mechanism by which DHFR might regulate eNOS coupling in vivo, we treated wild-type, BH4-deficient (hph-1), and GTPCH-overexpressing (GCH-Tg) mice with methotrexate (MTX), to inhibit BH4 recycling by DHFR. MTX treatment resulted in a striking elevation in BH2 and a decreased BH4:BH2 ratio in the aortas of wild-type mice. These effects were magnified in hph-1 but diminished in GCH-Tg mice. Attenuated eNOS activity was observed in MTX-treated hph-1 but not wild-type or GCH-Tg mouse lung, suggesting that inhibition of DHFR in BH4-deficient states leads to eNOS uncoupling. Taken together, these data reveal a key role for DHFR in regulating the BH4 vs BH2 ratio and eNOS coupling under conditions of low total biopterin availability in vivo.
四氢生物蝶呤(BH4)是内皮型一氧化氮合酶(eNOS)合成 NO 所必需的辅助因子,内皮细胞 BH4 生物利用度是调节 NO 和超氧化物产生平衡(eNOS 偶联)的关键因素。BH4 的生物合成由 GTP 环化水解酶 I(GTPCH)的活性决定。然而,BH4 水平也可能受到氧化的影响,形成 7,8-二氢生物蝶呤(BH2),从而促进 eNOS 解偶联。相反,二氢叶酸还原酶(DHFR)可以将 BH2 从 BH4 中再生,但 DHFR 在维持 eNOS 偶联方面是否具有功能重要性尚不清楚。为了研究 DHFR 可能在体内调节 eNOS 偶联的机制,我们用氨甲蝶呤(MTX)处理野生型、BH4 缺乏型(hph-1)和 GTPCH 过表达(GCH-Tg)小鼠,以抑制 DHFR 对 BH4 的循环利用。MTX 处理导致野生型小鼠主动脉中 BH2 显著升高,BH4:BH2 比值降低。这些效应在 hph-1 中放大,但在 GCH-Tg 小鼠中减弱。在 MTX 处理的 hph-1 但不是野生型或 GCH-Tg 小鼠的肺中观察到 eNOS 活性减弱,这表明在 BH4 缺乏状态下抑制 DHFR 会导致 eNOS 解偶联。总之,这些数据揭示了 DHFR 在调节 BH4 与 BH2 比值和 eNOS 偶联方面的关键作用,这在体内总生物蝶呤可用性低的情况下尤为重要。