Vinogradov S N, Sharma P K, Qabar A N, Wall J S, Westrick J A, Simmons J H, Gill S J
Department of Biochemistry, Wayne State University School of Medicine, Detroit, Michigan 48201.
J Biol Chem. 1991 Jul 15;266(20):13091-6.
Repeated dissociation of the approximately 3600-kDa hexagonal bilayer extracellular hemoglobin of Lumbricus terrestris in 4 M urea followed by gel filtration at neutral pH produces a subunit that retains the oxygen affinity of the native molecule (approximately 12 torr), but only two-thirds of the cooperativity (nmax = 2.1 +/- 0.2 versus 3.3 +/- 0.3). The mass of this subunit was estimated to be 202 +/- 15 kDa by gel filtration and 202 +/- 26 kDa from mass measurements of unstained freeze-dried specimens by scanning transmission electron microscopy. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis of this subunit showed that it consists predominantly of the heme-containing subunits M (chain I, 17 kDa) and T (disulfide-bonded chains II-IV, 50 kDa). Mixing of subunits M and T isolated concurrently with the 200-kDa subunit resulted in partial association into particles that had a mass of 191 +/- 13 kDa determined by gel filtration and 200 +/- 38 kDa determined by scanning transmission electron microscopy and whose oxygen affinity and cooperativity were the same as those of the 200-kDa subunit. The results imply that the 200-kDa subunit is a dodecamer of globin chains, consisting of three copies each of subunits M and T (3 x chains (I + II + III + IV], in good agreement with the mass of 209 kDa calculated from the amino acid sequences of the four chains, and represents the largest functional subunit of Lumbricus hemoglobin. Twelve copies of this subunit would account for two-thirds of the total mass of the molecule, as suggested earlier (Vinogradov, S. N., Lugo, S. L., Mainwaring, M. G., Kapp, O. H., and Crewe, A. V. (1986) Proc. Natl. Acad. Sci. U. S. A. 83, 8034-8038). The retention of only partial cooperativity by the 200-kDa subunit implies that full cooperativity is dependent on the presence of a complete hexagonal bilayer structure, wherein 12 200-kDa subunits are linked together by approximately 30-kDa heme-deficient chains.
将地龙的约3600 kDa六方双层细胞外血红蛋白在4 M尿素中反复解离,随后在中性pH下进行凝胶过滤,产生了一个亚基,该亚基保留了天然分子的氧亲和力(约12托),但只有三分之二的协同性(nmax = 2.1±0.2,而天然分子为3.3±0.3)。通过凝胶过滤估计该亚基的质量为202±15 kDa,通过扫描透射电子显微镜对未染色的冻干标本进行质量测量,其质量为202±26 kDa。该亚基的十二烷基硫酸钠-聚丙烯酰胺凝胶电泳表明,它主要由含血红素的亚基M(链I,17 kDa)和T(二硫键连接的链II-IV,50 kDa)组成。与200 kDa亚基同时分离得到的亚基M和T混合后,部分缔合形成颗粒,通过凝胶过滤测定其质量为191±13 kDa,通过扫描透射电子显微镜测定为200±38 kDa,其氧亲和力和协同性与200 kDa亚基相同。结果表明,200 kDa亚基是球蛋白链的十二聚体,由亚基M和T各三个拷贝组成(3×链(I + II + III + IV)),与根据四条链的氨基酸序列计算出的209 kDa质量高度吻合,并且代表了地龙血红蛋白最大的功能亚基。如前所述(Vinogradov,S. N.,Lugo,S. L.,Mainwaring,M. G.,Kapp,O. H.,和Crewe,A. V.(1986)Proc. Natl. Acad. Sci. U. S. A. 83,8034 - 8038),该亚基的十二个拷贝将占分子总质量的三分之二。200 kDa亚基仅保留部分协同性这一结果表明,完全的协同性依赖于完整的六方双层结构的存在,其中12个200 kDa亚基通过约30 kDa的血红素缺陷链连接在一起。