Wileman Samantha M, Mann Giovanni E, Pearson Jeremy D, Baydoun Anwar R
Centre for Cardiovascular Biology & Medicine, GKT School of Biomedical Sciences, King's College London, Guy's Campus, London SE1 1UL.
Br J Pharmacol. 2003 Sep;140(1):179-85. doi: 10.1038/sj.bjp.0705407. Epub 2003 Jul 29.
(1) l-citrulline, a coproduct of nitric oxide synthase (NOS)-catalysed metabolism of l-arginine to nitric oxide (NO), is an important intermediate of the urea cycle and a precursor for l-arginine biosynthesis in vascular cells. (2) In the present study, we have examined the characteristics of l-citrulline transport, regulation by lipopolysaccharide (LPS) and interferon-gamma (IFN-gamma) and the ability of l-citrulline to sustain NO synthesis in rat cultured aortic smooth muscle cells. (3) l-citrulline transport was saturable with an apparent Km=1.6+/-0.2 mm and Vmax=5.9+/-0.6 pmol microg-1 protein min-1. Transport was pH-insensitive, partially Na+-dependent and markedly inhibited by substrates selective for amino-acid transport systems L and N but not by l-arginine or substrates for systems A, ASC, xc- or XAG. Moreover, transport was not altered in cells treated with LPS (100 microg ml-1) and IFN-gamma (50 U ml-1) for 0-24 h. (4) Unlike l-arginine, l-citrulline could not sustain maximal NO production in cells expressing iNOS. (5) Our findings provide the first evidence in vascular smooth muscle cells that l-citrulline transport is mediated via a low-affinity carrier with characteristics resembling systems L and N. Moreover, in l-arginine-deprived rat aortic smooth muscle cells, l-citrulline cannot sustain maximal NO release via iNOS.
(1)L-瓜氨酸是一氧化氮合酶(NOS)催化L-精氨酸代谢生成一氧化氮(NO)的副产物,是尿素循环的重要中间产物,也是血管细胞中L-精氨酸生物合成的前体。(2)在本研究中,我们检测了L-瓜氨酸在大鼠培养的主动脉平滑肌细胞中的转运特性、脂多糖(LPS)和干扰素-γ(IFN-γ)对其的调节作用以及L-瓜氨酸维持NO合成的能力。(3)L-瓜氨酸转运具有饱和性,表观Km = 1.6±0.2 mM,Vmax = 5.9±0.6 pmol μg-1蛋白min-1。转运对pH不敏感,部分依赖Na+,并被氨基酸转运系统L和N的选择性底物显著抑制,但不受L-精氨酸或系统A、ASC、xc-或XAG底物的抑制。此外,用LPS(100 μg/ml)和IFN-γ(50 U/ml)处理0-24小时的细胞中转运未改变。(4)与L-精氨酸不同,L-瓜氨酸不能在表达诱导型一氧化氮合酶(iNOS)的细胞中维持最大的NO产生。(5)我们的研究结果首次在血管平滑肌细胞中提供了证据,表明L-瓜氨酸转运是通过一种低亲和力载体介导的,其特性类似于系统L和N。此外,在L-精氨酸缺乏的大鼠主动脉平滑肌细胞中,L-瓜氨酸不能通过iNOS维持最大的NO释放。