Tozawa R, Ishibashi S, Osuga J, Yagyu H, Oka T, Chen Z, Ohashi K, Perrey S, Shionoiri F, Yahagi N, Harada K, Gotoda T, Yazaki Y, Yamada N
Department of Metabolic Diseases, Faculty of Medicine, University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8655, Japan.
J Biol Chem. 1999 Oct 22;274(43):30843-8. doi: 10.1074/jbc.274.43.30843.
Squalene synthase (SS) catalyzes the reductive head-to-head condensation of two molecules of farnesyl diphosphate to form squalene, the first specific intermediate in the cholesterol biosynthetic pathway. We used gene targeting to knock out the mouse SS gene. The mice heterozygous for the mutation (SS+/-) were apparently normal. SS+/- mice showed 60% reduction in the hepatic mRNA levels of SS compared with SS+/+ mice. Consistently, the SS enzymatic activities were reduced by 50% in the liver and testis. Nevertheless, the hepatic cholesterol synthesis was not different between SS+/- and SS+/+ mice, and plasma lipoprotein profiles were not different irrespective of the presence of the low density lipoprotein receptor, indicating that SS is not a rate-limiting enzyme in the cholesterol biosynthetic pathway. The mice homozygous for the disrupted SS gene (SS-/-) were embryonic lethal around midgestation. E9.5-10.5 SS-/- embryos exhibited severe growth retardation and defective neural tube closure. The lethal phenotype was not rescued by supplementing the dams either with dietary squalene or cholesterol. We speculate that cholesterol is required for the development, particularly of the nervous system, and that the chorioallantoic circulatory system is not mature enough to supply the rapidly growing embryos with maternal cholesterol at this developmental stage.
鲨烯合酶(SS)催化两分子法呢基二磷酸进行还原性头对头缩合反应,生成鲨烯,这是胆固醇生物合成途径中的首个特定中间体。我们利用基因打靶技术敲除了小鼠的SS基因。该突变的杂合子小鼠(SS+/-)外观正常。与SS+/+小鼠相比,SS+/-小鼠肝脏中SS的mRNA水平降低了60%。相应地,肝脏和睾丸中的SS酶活性降低了50%。然而,SS+/-小鼠和SS+/+小鼠的肝脏胆固醇合成并无差异,且无论低密度脂蛋白受体是否存在,血浆脂蛋白谱均无差异,这表明SS并非胆固醇生物合成途径中的限速酶。SS基因被破坏的纯合子小鼠(SS-/-)在妊娠中期左右胚胎致死。E9.5 - 10.5期的SS-/-胚胎表现出严重的生长迟缓以及神经管闭合缺陷。给孕鼠补充膳食鲨烯或胆固醇均无法挽救这种致死表型。我们推测,胆固醇对于发育,尤其是神经系统的发育是必需的,并且在这个发育阶段,绒毛膜尿囊循环系统还不够成熟,无法为快速生长的胚胎提供母体胆固醇。