首页> 外文期刊>Biochemistry and Biophysics Reports >Characterization of lipid rafts in human platelets using nuclear magnetic resonance: A pilot study
【24h】

Characterization of lipid rafts in human platelets using nuclear magnetic resonance: A pilot study

机译:利用核磁共振表征人血小板中脂质筏的初步研究

获取原文
获取外文期刊封面目录资料

摘要

Lipid microdomains (‘lipid rafts’) are plasma membrane subregions, enriched in cholesterol and glycosphingolipids, which participate dynamically in cell signaling and molecular trafficking operations. One strategy for the study of the physicochemical properties of lipid rafts in model membrane systems has been the use of nuclear magnetic resonance (NMR), but until now this spectroscopic method has not been considered a clinically relevant tool. We performed a proof-of-concept study to test the feasibility of using NMR to study lipid rafts in human tissues. Platelets were selected as a cost-effective and minimally invasive model system in which lipid rafts have previously been studied using other approaches. Platelets were isolated from plasma of medication-free adult research participants ( n =13) and lysed with homogenization and sonication. Lipid-enriched fractions were obtained using a discontinuous sucrose gradient. Association of lipid fractions with GM1 ganglioside was tested using HRP-conjugated cholera toxin B subunit dot blot assays. 1 H high resolution magic-angle spinning nuclear magnetic resonance (HRMAS NMR) spectra obtained with single-pulse Bloch decay experiments yielded spectral linewidths and intensities as a function of temperature. Rates of lipid lateral diffusion that reported on raft size were measured with a two-dimensional stimulated echo longitudinal encode-decode NMR experiment. We found that lipid fractions at 10–35% sucrose density associated with GM1 ganglioside, a marker for lipid rafts. NMR spectra of the membrane phospholipids featured a prominent ‘centerband’ peak associated with the hydrocarbon chain methylene resonance at 1.3 ppm; the linewidth (full width at half-maximum intensity) of this ‘centerband’ peak, together with the ratio of intensities between the centerband and ‘spinning sideband’ peaks, agreed well with values reported previously for lipid rafts in model membranes. Decreasing temperature produced decreases in the 1.3 ppm peak intensity and a discontinuity at ~18 °C, for which the simplest explanation is a phase transition from L d to L o phases indicative of raft formation. Rates of lateral diffusion of the acyl chain lipid signal at 1.3 ppm, a quantitative measure of microdomain size, were consistent with lipid molecules organized in rafts. These results show that HRMAS NMR can characterize lipid microdomains in human platelets, a methodological advance that could be extended to other tissues in which membrane biochemistry may have physiological and pathophysiological relevance. Graphical abstract Display Omitted Highlights ? Lipid raft properties have been studied mainly in model membranes or cell cultures. ? We report a novel 1 H NMR approach to lipid raft characterization in human platelets. ? We find spectroscopy, diffusion, and phase transitions consistent with lipid rafts. ? NMR plus bioassays may be used to study raft-mediated cell function in human tissues.
机译:脂质微区(“脂质筏”)是质膜子区域,富含胆固醇和鞘糖脂,它们动态参与细胞信号转导和分子运输操作。在模型膜系统中研究脂质筏的物理化学性质的一种策略是使用核磁共振(NMR),但是直到现在,这种光谱方法还没有被认为是临床相关工具。我们进行了概念验证研究,以测试使用NMR研究人体组织中脂质筏的可行性。选择血小板作为具有成本效益的微创模型系统,在该系统中以前已使用其他方法研究了脂质筏。从无药物治疗的成人研究参与者的血浆中分离出血小板(n = 13),并通过均质化和超声处理将其裂解。使用不连续的蔗糖梯度获得富含脂质的级分。脂质级分与GM1神经节苷脂的关联使用HRP缀合的霍乱毒素B亚基点印迹试验进行了测试。通过单脉冲布洛赫衰变实验获得的1 H高分辨率魔角旋转核磁共振(HRMAS NMR)光谱得出光谱线宽和强度随温度的变化。用二维受激回波纵向编码-解码NMR实验测量在筏尺寸上报告的脂质横向扩散速率。我们发现蔗糖密度为10–35%的脂质组分与GM1神经节苷脂(脂质筏的标志物)有关。膜磷脂的NMR光谱具有一个突出的“中心带”峰,该峰与1.3 ppm的烃链亚甲基共振有关。该“中心带”峰的线宽(半峰全宽)以及中心带和“旋转边带”峰之间的强度比与先前报道的模型膜中脂筏的值非常吻合。产生的温度降低导致1.3 ppm峰强度降低,在〜18°C处出现不连续性,对此最简单的解释是从L d到L o的相变,表明形成了筏。酰基链脂质信号在1.3 ppm处的横向扩散速率(微域大小的定量度量)与筏中组织的脂质分子一致。这些结果表明,HRMAS NMR可以表征人血小板中的脂质微区,该方法学的进展可以扩展到膜生物化学可能具有生理和病理生理相关性的其他组织。图形摘要显示省略的突出显示?主要在模型膜或细胞培养物中研究了脂质筏的性质。 ?我们报告了一种新颖的1 H NMR方法对人体血小板脂质筏的表征。 ?我们发现光谱,扩散和相变与脂质筏一致。 ? NMR和生物测定法可用于研究人体组织中筏介导的细胞功能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号