Codina J, Hildebrandt J D, Sekura R D, Birnbaumer M, Bryan J, Manclark C R, Iyengar R, Birnbaumer L
J Biol Chem. 1984 May 10;259(9):5871-86.
Methods were developed to adequately extract, separate and, without the use of NaF as stabilizing agent, purify to better than 90% purity human erythrocyte Ns and Ni, the stimulatory and inhibitory guanine nucleotide- and Mg-binding regulatory components of adenylyl cyclases, as well as a protein containing Mr = 35,000 subunits. On the basis of a functional assay for Ns, it was purified about 5,000-fold from starting washed erythrocyte membranes with a yield of about 10%. A typical purification yields from 60 units of outdated human blood, between 500 and 1,000 micrograms of pure Ns, and a similar amount of Ni. Pure Ns and Ni contain each at least one alpha and one beta subunit (Northup, J.K., Sternweis, P.C., Smigel, M.D., Schleifer, L.S., Ross, E.M., and Gilman, A.G. (1980) Proc. Natl. Acad. Sci. U.S.A. 74, 6516-6520; Codina, J., Hildebrandt, J.D., Iyengar, R., Birnbaumer, L., Sekura, R.D., and Manclark, C.R. (1983) Proc. Natl. Acad. Sci. U.S.A. 77, 4276-4280). Polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate at varying acrylamide concentrations yielded Mr values of 42,000 and 40,000 for the alpha subunits of Ns and Ni, and of 35,000 for the beta subunits of Ns and Ni. Two-dimensional thin layer analysis of tryptic peptides obtained from digesting 125I-labeled subunits of Ns and Ni confirmed the finding of Manning, D., and Gilman, A.G. (1983) J. Biol. Chem. 258, 7059-7063) that while their alpha subunits are clearly different, their beta subunits are the same. Hydrodynamic analysis of the molecular weights of the nondenatured proteins showed behavior consistent with Mr = 95,500 for Ns, the same for Ni, and Mr = 40,000 for the protein containing the Mr = 35,000 beta subunit. Sedimentation coefficients and Stokes radii of the purified Ns were indistinguishable from those of Ns activity present in initial cholate extracts from human erythrocyte membranes. Further, the overall kinetics with which Ns activity in cholate extracts and Ns activity in the purified protein reconstituted the Ns-deficient adenylyl cyclase system of cyc- S49 cells was also indistinguishable. We conclude that we have purified the native unactivated form of Ns, and by serendipity the Ni, as well as a protein containing the 35 kDa beta subunit of Ns and Ni.(ABSTRACT TRUNCATED AT 400 WORDS)
已开发出相应方法,可在不使用氟化钠作为稳定剂的情况下,充分提取、分离并纯化人红细胞Ns和Ni,其纯度优于90%,Ns和Ni分别是腺苷酸环化酶的刺激性和抑制性鸟嘌呤核苷酸及镁结合调节成分,以及一种含有分子量为35,000亚基的蛋白质。基于对Ns的功能测定,它从起始洗涤红细胞膜中纯化了约5000倍,产率约为10%。典型的纯化过程从60单位过期人血中可得到500至1000微克纯Ns,以及类似量的Ni。纯Ns和Ni各自至少包含一个α亚基和一个β亚基(Northup, J.K., Sternweis, P.C., Smigel, M.D., Schleifer, L.S., Ross, E.M., and Gilman, A.G. (1980) Proc. Natl. Acad. Sci. U.S.A. 74, 6516 - 6520; Codina, J., Hildebrandt, J.D., Iyengar, R., Birnbaumer, L., Sekura, R.D., and Manclark, C.R. (1983) Proc. Natl. Acad. Sci. U.S.A. 77, 4276 - 4280)。在不同丙烯酰胺浓度下,于十二烷基硫酸钠存在的情况下进行聚丙烯酰胺凝胶电泳,得到Ns和Ni的α亚基的分子量值分别为42,000和40,000,Ns和Ni的β亚基的分子量值为35,000。对从消化125I标记的Ns和Ni亚基获得的胰蛋白酶肽进行二维薄层分析,证实了Manning, D.和Gilman, A.G.(1983)J. Biol. Chem. 258, 7059 - 7063的发现,即虽然它们的α亚基明显不同,但它们的β亚基相同。对未变性蛋白质分子量的流体动力学分析表明,Ns的行为符合分子量为95,500,Ni相同,而含有分子量为35,000β亚基的蛋白质的分子量为40,000。纯化的Ns的沉降系数和斯托克斯半径与来自人红细胞膜的初始胆酸盐提取物中存在的Ns活性的沉降系数和斯托克斯半径无法区分。此外,胆酸盐提取物中的Ns活性和纯化蛋白中的Ns活性重组cyc - S49细胞的Ns缺陷型腺苷酸环化酶系统的整体动力学也无法区分。我们得出结论,我们已纯化出天然未活化形式的Ns,偶然地还纯化出了Ni,以及一种含有Ns和Ni的35 kDaβ亚基的蛋白质。(摘要截断于400字)