Moehs C P, Baxevanis A D, Moudrianakis E N, Spiker S
Department of Genetics, North Carolina State University, Raleigh 27695-7614.
Biochemistry. 1992 Nov 10;31(44):10844-51. doi: 10.1021/bi00159a027.
Gel filtration and sedimentation studies have previously established that the vertebrate animal core histone octamer is in equilibrium with an (H3-H4)2 tetramer and an H2A-H2B dimer [Eickbush, T. H., & Moudrianakis, E. N. (1978) Biochemistry 17, 4955-4964; Godfrey, J. E., Eickbush, T. H., & Moudrianakis, E. N. (1980) Biochemistry 19, 1339-1346]. We have investigated the core histone octamer of wheat (Triticum aestivum L.) and have found it to be much more stable than its vertebrate animal counterpart. When vertebrate animal histone octamers are subjected to gel filtration in 2 M NaCl, a trailing peak of H2A-H2B dimer can be clearly resolved from the main octamer peak. When the plant octamer is subjected to the identical procedure, there is no trailing peak of H2A-H2B dimer, but rather a single peak containing the octamer. A sampling across the octamer peak from leading to trailing edge shows no change in the ratio of H2A-H2B to (H3-H4)2. Surprisingly, the plant octamer shows the same stability at 0.6 M NaCl, a salt concentration in which the vertebrate animal octamer dissociates into dimers and tetramers. Equilibrium sedimentation data indicate that the assembly potential of the wheat histones in 2 M NaCl is very high at all protein concentrations above 0.1 mg mL-1. In order to disrupt the forces stabilizing the plant histone octamer at high histone concentrations, the concentration of NaCl must be lowered to approximately 0.3 M.(ABSTRACT TRUNCATED AT 250 WORDS)
凝胶过滤和沉降研究先前已证实,脊椎动物的核心组蛋白八聚体与(H3-H4)2四聚体和H2A-H2B二聚体处于平衡状态[艾克布什,T. H.,& 穆德里亚纳基斯,E. N.(1978年)《生物化学》17卷,4955 - 4964页;戈弗雷,J. E.,艾克布什,T. H.,& 穆德里亚纳基斯,E. N.(1980年)《生物化学》19卷,1339 - 1346页]。我们研究了小麦(普通小麦)的核心组蛋白八聚体,发现它比脊椎动物的对应物稳定得多。当脊椎动物的组蛋白八聚体在2 M氯化钠中进行凝胶过滤时,H2A-H2B二聚体的拖尾峰可以从主要的八聚体峰中清晰分辨出来。当植物八聚体进行相同操作时,没有H2A-H2B二聚体的拖尾峰,而是只有一个包含八聚体的单峰。从八聚体峰的前沿到后沿取样显示,H2A-H2B与(H3-H4)2的比例没有变化。令人惊讶的是,植物八聚体在0.6 M氯化钠(一种脊椎动物八聚体会解离成二聚体和四聚体的盐浓度)下也表现出相同的稳定性。平衡沉降数据表明,在2 M氯化钠中,所有高于0.1 mg/mL的蛋白质浓度下,小麦组蛋白的组装潜力都非常高。为了破坏高组蛋白浓度下稳定植物组蛋白八聚体的作用力,氯化钠的浓度必须降低到约0.3 M。(摘要截短至250字)