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PURIFICATION OF STABILIZED BAND 3 PROTEIN OF THE HUMAN ERYTHROCYTE MEMBRANE AND ITS RECONSTITUTION INTO LIPOSOMES.

机译:人红细胞膜稳定带3蛋白质的纯化及其脂质体的重构。

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摘要

The evidence implicating Band 3 protein of the human erythrocyte membrane as the anion channel is quite substantial. An important part of this proof has been the isolation and reconstitution of this protein into liposomes and subsequent demonstration of its ability to mediate anion transport. Several laboratories have accomplished this; however, the Band 3 preparations in each case have been contaminated with other membrane proteins, notably Bands 4.2, 4.5 and glycophorin (PAS-1). An additional problem has been that isolated Band 3 preparations are notoriously unstable and rapidly form high molecular weight aggregates.;Band 3 was purified from ghosts which were first washed with isotonic saline to remove Band 6 (glyceraldehyde-3-phosphate dehydrogenase) and then extracted overnight with 0.5% Triton. The Triton extract was concentrated and applied to DEAE cellulose column to remove lower molecular weight proteins (mostly in the 4.5 region). Higher salt concentrations were then used to elute a fraction containing mostly Band 3, Band 4.2 and glycophorin and this fraction was then passed through pCMB aminoethyl Agarose 4B affinity gel. During this time glycophorin and some Band 4.2 eluted. The gel was then washed with the same high salt buffer in which the protein was applied and with a low salt buffer before pure Band 3 was eluted with 0.1 mM cysteine. Some additional Band 3 could be eluted with 50 mM cysteine, but this fraction contained some Band 4.2 as well. Upon elution of Band 3, 15 mM mercaptoethanol was added immediately as this was found to keep the protein from aggregating. Preparations routinely containing at least 95% Band 3 ((TURN)1% dimer) and less than 1.5% Band 4.2 have been obtained. Using the above method, pure Band 3 could be isolated from the Triton extract in less than 4 hours.;Band 3, according to sedimentation analysis on sucrose gradients existed as a dimer in buffer from which Triton was removed. After removal of Triton, Band 3 incorporated into liposomes composed of 96% phosphatidyl choline, 4% phosphatidic acid, increased sulfate efflux more than 70-fold over control. When 10 (mu)M 4,4'-diisothiocyano-2,2'-stilbene disulfonate was added to the outside of Band 3-containing liposomes, 30 - 40% of the efflux was inhibited. When the inhibitor was added to the protein before incorporation, nearly complete inhibition was attained. When transport was carried out with no external transportable anions, sulfate efflux was markedly reduced indicating efflux proceeds mainly by an exchange mechanism as in the intact red cell. At 0(DEGREES)C in 36 mM Na(,2)HPO(,4), 15 mM mercaptoethanol, pH 7.50, Band 3 remained functional and monomeric for at least a week.;A new quick method has been developed for the purification of a functional Band 3 protein essentially free from all other contaminants. This method employs the use of pCMB aminoethyl Agarose 4B affinity gel which was synthesized by significant modifications of a method of Cuatrecasas. These modifications ensure complete substitution of the free amino groups on the spacer molecule with pCMB. Using this gel, glycophorin has been removed from Band 3 preparations since this protein does not contain any sulfhydryl groups and does not bind to the pCMB on the gel. This was not possible using the gels synthesized by the method of Cuatrecasas or purchased commercially (Bio Rad, Affi-Gel 501) since these gels absorbed excessive amounts of glycophorin probably due to the binding of this protein to spacer molecules not coupled to pCMB. It should be noted that this modified pCMB affinity gel can also be used to purify glycophorin.
机译:有证据表明,人类红细胞膜的Band 3蛋白是阴离子通道。该证据的重要部分是将该蛋白分离并重组为脂质体,并随后证明了其介导阴离子转运的能力。有几个实验室已经做到了这一点。但是,在每种情况下,Band 3制剂都被其他膜蛋白污染,特别是4.2、4.5和糖蛋白(PAS-1)。另一个问题是,众所周知,分离的Band 3制剂不稳定,并迅速形成高分子量聚集体。从幽灵中纯化Band 3,首先用等渗盐水洗涤以去除Band 6(3-磷酸甘油醛脱氢酶),然后提取用0.5%Triton过夜。浓缩Triton提取物,并施加到DEAE纤维素柱上以除去较低分子量的蛋白质(主要在4.5区域)。然后将较高的盐浓度用于洗脱主要包含Band 3,Band 4.2和糖蛋白的馏分,然后使该馏分通过pCMB氨乙基琼脂糖4B亲和凝胶。在此期间,糖蛋白和一些Band 4.2洗脱。然后用相同的高盐缓冲液(其中应用了蛋白质)和低盐缓冲液洗涤凝胶,然后用0.1 mM半胱氨酸洗脱纯的Band 3。可用50 mM半胱氨酸洗脱一些额外的Band 3,但该馏分也包含一些Band 4.2。带3洗脱后,立即添加15 mM巯基乙醇,因为这可以防止蛋白质聚集。已获得通常含有至少95%的Band 3((TURN)1%二聚体)和少于1.5%的Band 4.2的制剂。使用上述方法,可以在不到4小时的时间内从Triton提取物中分离出纯的Band3。Band 3,根据对蔗糖梯度的沉降分析,该梯度以缓冲液形式存在,从中除去了Triton。除去Triton后,将带3掺入由96%磷脂酰胆碱,4%磷脂酸组成的脂质体中,硫酸盐外排量比对照增加70倍以上。当将10μM的4,4′-二异硫氰基-2,2′-二苯乙烯二磺酸盐添加到含Band 3的脂质体的外部时,流出的30-40%被抑制。当在结合之前将抑制剂添加到蛋白质中时,获得了几乎完全的抑制。当在没有外部可运输阴离子的条件下进行运输时,硫酸盐外排明显减少,表明外排主要通过交换机制进行,如在完整的红细胞中一样。在36 mM Na(,2)HPO(,4),15 mM巯基乙醇,pH 7.50中的0(DEGREES)C下,带3保持功能和单体状态至少一周。;已经开发了一种新的快速纯化方法基本不含所有其他污染物的功能性Band 3蛋白。该方法使用了pCMB氨乙基琼脂糖4B亲和凝胶,该凝胶是通过对Cuatrecasas方法的重大改进而合成的。这些修饰确保间隔分子上的游离氨基被pCMB完全取代。使用该凝胶,已从Band 3制剂中去除了糖蛋白,因为该蛋白不含任何巯基并且不与凝胶上的pCMB结合。使用通过Cuatrecasas的方法合成的或商业购买的凝胶(Bio Rad,Affi-Gel 501)是不可能的,因为这些凝胶吸收过量的糖蛋白,可能是由于该蛋白质与未偶联至pCMB的间隔分子结合所致。应当指出,这种修饰的pCMB亲和力凝胶也可以用于纯化糖蛋白。

著录项

  • 作者单位

    University of Connecticut.;

  • 授予单位 University of Connecticut.;
  • 学科 Biology.
  • 学位 Ph.D.
  • 年度 1980
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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