首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >Protein destabilization by electrostatic repulsions in the two-stranded alpha-helical coiled-coil/leucine zipper.
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Protein destabilization by electrostatic repulsions in the two-stranded alpha-helical coiled-coil/leucine zipper.

机译:两链α-螺旋卷曲螺旋/亮氨酸拉链中的静电排斥导致蛋白质不稳定。

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摘要

The destabilizing effect of electrostatic repulsions on protein stability has been studied by using synthetic two-stranded alpha-helical coiled-coils as a model system. The native coiled-coil consists of two identical 35-residue polypeptide chains with a heptad repeat QgVaGbAcLdQeKf and a Cys residue at position 2 to allow formation of an interchain disulfide bridge. This peptide, designed to contain no intrahelical or interhelical electrostatic interactions, forms a stable coiled-coil structure at 20 degrees C in benign medium (50 mM KCl, 25 mM PO4, pH 7) with a [urea]1/2 value of 6.1 M. Four mutant coiled-coils were designed to contain one or two Glu substitutions for Gln per polypeptide chain. The resulting coiled-coils contained potential i to i' + 5 Glu-Glu interchain repulsions (denoted as peptide E2(15,20)), i to i' + 2 Glu-Glu interchain repulsions (denoted E2(20,22)), or no interchain ionic interactions (denoted E2(13,22) and E1(20)). The stabilities of the coiled-coils were determined by measuring the ellipticities at 222 nm as a function of urea or guanidine hydrochloride concentration at 20 degrees C in the presence and absence of an interchain disulfide bridge. At pH 7, in the presence of urea, the stabilities of E2(13,22) and E2(20,22) were identical suggesting that the potential i to i' + 2 interchain Glu-Glu repulsion in the E2(20,22) coiled-coil does not occur. In contrast, the mutant E2(15,20) is substantially less stable than E2(13,22) or E2(15,20) by 0.9 kcal/mol due to the presence of two i to i' + 5 interchain Glu-Glu repulsions, which destabilize the coiled-coil by 0.45 kcal/mol each. At pH 3 the coiled-coils were found to increase in stability as the number of Glu substitutions were increased. This, combined with reversed-phase HPLC results at pH 7 and pH 2, supports the conclusion that the protonated Glu side chains present at low pH are significantly more hydrophobic than Gln side chains which are in turn more hydrophobic than the ionized Glu side chains present at neutral pH. The protonated Glu residues increase the hydrophobicity of the coiled-coil interface leading to higher coiled-coil stability. The guanidine hydrochloride results at pH 7 show similar stabilities between the native and mutant coiled-coils indicating that guanidine hydrochloride masks electrostatic repulsions due to its ionic nature and that Glu and Gln in the e and g positions of the heptad repeat have very similar effects on coiled-coil stability in the presence of GdnHCl.
机译:通过使用合成的双链α-螺旋卷曲螺旋作为模型系统研究了静电排斥对蛋白质稳定性的破坏作用。天然卷曲螺旋由两条相同的35个残基的多肽链组成,在位置2处具有七肽重复序列QgVaGbAcLdQeKf和Cys残基,以形成链间二硫键。设计为不包含螺旋内或螺旋间静电相互作用的该肽在良性培养基(50 mM KCl,25 mM PO4,pH 7)中于20摄氏度下形成稳定的卷曲螺旋结构,其脲1/2值为6.1 M.设计了四个突变卷曲螺旋,每个多肽链包含一个或两个Glu取代Gln。所得的卷曲螺旋包含潜在的i至i'+ 5个Glu-Glu链间斥力(表示为肽E2(15,20)),i至i'+ 2个Glu-Glu链间斥力(表示为E2(20,22))。 ,或没有链间离子相互作用(表示为E2(13,22)和E1(20))。在存在和不存在链间二硫键的情况下,通过测量在222 nm处的椭圆率随尿素或胍盐酸盐浓度在20摄氏度下的变化,来确定线圈的稳定性。在pH值为7的情况下,在存在尿素的情况下,E2(13,22)和E2(20,22)的稳定性相同,这表明E2(20,22)中潜在的i至i'+ 2链间Glu-Glu排斥力)不会出现盘绕线圈。相反,由于存在两个i至i'+ 5个链间Glu-Glu,突变体E2(15,20)的稳定性比E2(13,22)或E2(15,20)差0.9 kcal / mol。排斥力使盘绕线圈的稳定度分别降低0.45 kcal / mol。发现在pH 3下,随着Glu取代数的增加,卷曲螺旋的稳定性会增加。结合在pH 7和pH 2下的反相HPLC结果,得出以下结论:低pH下质子化的Glu侧链比Gln侧链明显疏水,而Gln侧链又比离子化的Glu侧链疏水。在中性pH下。质子化的Glu残留物增加了卷曲螺旋界面的疏水性,从而提高了卷曲螺旋稳定性。 pH值为7时盐酸胍的结果显示出天然和突变螺旋线圈之间的相似稳定性,这表明盐酸胍由于其离子性质而掩盖了静电排斥,并且七肽重复序列e和g位置的Glu和Gln对H的影响非常相似。在GdnHCl存在下盘绕线圈的稳定性。

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