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Effects of melittin on lipid-protein interactions in sarcoplasmic reticulum membranes.

机译:蜂毒肽对肌质网膜脂蛋白相互作用的影响。

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摘要

To investigate the physical mechanism by which melittin inhibits Ca-adenosine triphosphatase (ATPase) activity in sarcoplasmic reticulum (SR) membranes, we have used electron paramagnetic resonance spectroscopy to probe the effect of melittin on lipid-protein interactions in SR. Previous studies have shown that melittin substantially restricts the rotational mobility of the Ca-ATPase but only slightly decreases the average lipid hydrocarbon chain fluidity in SR. Therefore, in the present study, we ask whether melittin has a preferential effect on Ca-ATPase boundary lipids, i.e., the annular shell of motionally restricted lipid that surrounds the protein. Paramagnetic derivatives of stearic acid and phosphatidylcholine, spin-labeled at C-14, were incorporated into SR membranes. The electronic paramagnetic resonance spectra of these probes contained two components, corresponding to motionally restricted and motionally fluid lipids, that were analyzed by spectral subtraction. The addition of increasing amounts of melittin, to the level of 10 mol melittin/mol Ca-ATPase, progressively increased the fraction of restricted lipids and increased the hyperfine splitting of both components in the composite spectra, indicating that melittin decreases the hydrocarbon chain rotational mobility for both the fluid and restricted populations of lipids. No further effects were observed above a level of 10 mol melittin/mol Ca-ATPase. In the spectra from control and melittin-containing samples, the fraction of restricted lipids decreased significantly with increasing temperature. The effect of melittin was similar to that of decreased temperature, i.e., each spectrum obtained in the presence of melittin (10:1) was nearly identical to the spectrum obtained without melittin at a temperature approximately 5 degrees C lower. The results suggest that the principal effect of melittin on SR membranes is to induce protein aggregation and this in turn, augmented by direct binding of melittin to the lipid, is responsible for the observed decreases in lipid mobility. Protein aggregation is concluded to be the main cause of inactivation of the Ca-ATPase by melittin, with possible modulation also by the decrease in mobility of the boundary layer lipids.
机译:为了研究蜂毒肽抑制肌浆网(SR)膜中Ca-腺苷三磷酸酶(ATPase)活性的物理机制,我们使用电子顺磁共振波谱来研究蜂毒肽对SR中脂蛋白相互作用的影响。先前的研究表明,蜂毒肽实质上限制了Ca-ATPase的旋转迁移率,但仅略微降低了SR中平均脂质烃链的流动性。因此,在本研究中,我们询问蜂毒肽是否对Ca-ATPase边界脂质,即围绕蛋白质的运动受限脂质的环形壳具有优先作用。硬脂酸和磷脂酰胆碱的顺磁性衍生物(在C-14处自旋标记)被掺入SR膜中。这些探针的电子顺磁共振波谱包含两个成分,分别对应于运动受限和运动流体脂质,通过光谱减法对其进行了分析。加入增加量的蜂毒蛋白至10 mol蜂毒蛋白/ mol Ca-ATPase的水平,逐渐增加了受限脂质的比例,并增加了复合光谱中两个组分的超精细分裂,表明蜂毒蛋白降低了烃链的旋转迁移率对于脂质的液体和受限人群。在10 mol蜂毒素/ mol Ca-ATPase水平以上未观察到进一步的作用。在对照和含蜂毒肽样品的光谱中,受限脂质的比例随温度升高而显着降低。蜂毒肽的作用类似于降低温度的作用,即,在存在蜂毒素(10:1)的情况下获得的每个光谱与在温度低约5℃时没有蜂毒素的情况下获得的光谱几乎相同。结果表明,蜂毒肽对SR膜的主要作用是诱导蛋白质聚集,而蜂毒肽与脂质的直接结合又增强了这种作用,这是观察到的脂质运动性下降的原因。结论是蛋白质聚集是蜂毒蛋白使Ca-ATPase失活的主要原因,可能是由于边界层脂质的迁移率降低而引起的。

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