Iyengar R, Stuehr D J, Marletta M A
Proc Natl Acad Sci U S A. 1987 Sep;84(18):6369-73. doi: 10.1073/pnas.84.18.6369.
The macrophage cell line RAW 264.7 when activated with Escherichia coli lipopolysaccharide and interferon-gamma synthesized nitrite (NO3-) and nitrate (NO3-). Medium change after the activation showed that L-arginine was the only amino acid essential for this synthesis. D-Arginine would not substitute for L-arginine. Other analogues that could replace L-arginine were L-homoarginine, L-arginine methyl ester, L-arginamide, and the peptide L-arginyl-L-aspartate. L-Argininic acid, L-agmatine, L-ornithine, urea, L-citrulline, and ammonia were among the nonprecursors, while L-canavanine inhibited this L-arginine-derived NO2-/NO3- synthesis. When morpholine was added to the culture medium of the activated RAW 264.7 macrophages, N-nitrosation took place, generating N-nitrosomorpholine. GC/MS experiments using L-[guanido-15N2]arginine established that the NO2-/NO3- and the nitrosyl group of N-nitrosomorpholine were derived exclusively from one or both of the terminal guanido nitrogens of arginine. Chromatographic analysis showed that the other product of the L-arginine synthesis of NO2-/NO3- was L-citrulline. The role of the respiratory burst in NO2-/NO3- synthesis was examined using the macrophage cell lines J774.16 and J774 C3C. Both cell lines synthesized similar amounts of NO2-/NO3-. However, J774 C3C cells do not produce superoxide and hence do not exhibit the respiratory burst. Additional experiments also ruled out the involvement of the respiratory burst in NO2-/NO3- synthesis.
巨噬细胞系RAW 264.7在用大肠杆菌脂多糖和γ-干扰素激活后会合成亚硝酸盐(NO3-)和硝酸盐(NO3-)。激活后更换培养基表明,L-精氨酸是这种合成所必需的唯一氨基酸。D-精氨酸不能替代L-精氨酸。其他可替代L-精氨酸的类似物有L-高精氨酸、L-精氨酸甲酯、L-精氨酰胺和肽L-精氨酰-L-天冬氨酸。L-精氨酸、L-胍丁胺、L-鸟氨酸、尿素、L-瓜氨酸和氨均不是前体物质,而L-刀豆氨酸会抑制这种由L-精氨酸衍生的NO2-/NO3-合成。当将吗啉添加到激活的RAW 264.7巨噬细胞的培养基中时,会发生N-亚硝化反应,生成N-亚硝基吗啉。使用L-[胍基-15N2]精氨酸进行的气相色谱/质谱实验证实,NO2-/NO3-和N-亚硝基吗啉的亚硝基仅来源于精氨酸末端胍基的一个或两个氮原子。色谱分析表明,L-精氨酸合成NO2-/NO3-的另一种产物是L-瓜氨酸。使用巨噬细胞系J774.16和J774 C3C研究了呼吸爆发在NO2-/NO3-合成中的作用。两种细胞系合成的NO2-/NO3-量相似。然而,J774 C3C细胞不产生超氧化物,因此不表现出呼吸爆发。其他实验也排除了呼吸爆发参与NO2-/NO3-合成的可能性。