首页> 外文期刊>Thrombosis Research: An International Journal on Vascular Obstruction, Hemorrhage and Hemostasis >Molecular requirements in the recognition of low-density lipoproteins (LDL) by specific platelet membrane receptors.
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Molecular requirements in the recognition of low-density lipoproteins (LDL) by specific platelet membrane receptors.

机译:特定血小板膜受体识别低密度脂蛋白(LDL)的分子要求。

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We have demonstrated that platelet low-density lipoprotein (LDL) receptors differ from classic LDL receptors of nucleated cells. Although positively charged Arg and Lys residues of apoprotein B-100 are known to play a key role in LDL recognition by classic LDL receptors, there are no conclusive data on platelet LDL receptors. This study investigated the molecular requirements of LDL particle recognition by platelet LDL receptors. The involvement of lipid and protein fractions was determined by displacement studies of the binding of 125I-LDL to platelets and fibroblasts (used as a classical LDL receptor model). The role of the protein moiety was evaluated by chemically modifying positively charged apoB residues (Lys, Arg, and Tyr) via copper-induced oxidation, cyclohexanedione, and tetranitromethane, respectively. The involvement of the lipid fraction was determined by ligand binding assays using 125I-LDL particles that had previously been delipidated and subjected to apoB solubilization. The degree of particle modification was analyzed by agarose/acrylamide gel electrophoresis and anion exchange chromatography. Modifying the amino acid residues increased particle electronegativity in the following order of potency: CHD-LDL>TNM-LDL>ox-LDL>native LDL. The results obtained by displacement studies in fibroblasts suggested that the gain in the LDL negative charge was the most important factor in the loss of receptor affinity. The chemical models of protein modification used in our study greatly affected LDL binding to the classical fibroblast receptor. In contrast, there was very slight difference in the displacement capacity on platelet 125I-LDL binding, which suggests that the protein fraction does not play a major role in the interaction of LDL with its platelet receptor. On the other hand, whereas modifying the lipid moiety did not alter the ability of solubilized 125I-apoB to interact with the classical fibroblast LDL receptor, platelet LDL receptors were unable to recognize these particles. In conclusion, our results confirm that the protein fraction plays a key role in the fibroblast LDL-receptor recognition process, whereas the lipid fraction appears to have a more relevant role in platelet LDL-receptor recognition.
机译:我们已经证明,血小板低密度脂蛋白(LDL)受体不同于有核细胞的经典LDL受体。尽管已知载脂蛋白B-100的带正电荷的Arg和Lys残基在经典LDL受体对LDL的识别中起关键作用,但尚无关于血小板LDL受体的确凿数据。这项研究调查了血小板LDL受体识别LDL颗粒的分子要求。通过置换研究125I-LDL与血小板和成纤维细胞(用作经典LDL受体模型)的结合来确定脂质和蛋白质组分的参与。通过分别通过铜诱导的氧化,环己二酮和四硝基甲烷化学修饰带正电荷的apoB残基(Lys,Arg和Tyr)来评估蛋白质部分的作用。脂质级分的参与通过使用先前已脱脂并经历了apoB增溶作用的125 I-LDL颗粒通过配体结合测定来确定。通过琼脂糖/丙烯酰胺凝胶电泳和阴离子交换色谱分析颗粒修饰的程度。修饰氨基酸残基以下列效力顺序增加了颗粒的电负性:CHD-LDL> TNM-LDL> ox-LDL>天然LDL。通过成纤维细胞置换研究获得的结果表明,LDL负电荷的增加是受体亲和力丧失的最重要因素。在我们的研究中使用的蛋白质修饰的化学模型极大地影响了LDL与经典成纤维细胞受体的结合。相比之下,血小板125I-LDL结合的置换能力存在很小的差异,这表明蛋白质部分在LDL与血小板受体的相互作用中不发挥主要作用。另一方面,虽然修饰脂质部分不会改变溶解的125I-apoB与经典成纤维细胞LDL受体相互作用的能力,但血小板LDL受体无法识别这些颗粒。总之,我们的结果证实了蛋白质级分在成纤维细胞LDL受体识别过程中起关键作用,而脂质级分似乎在血小板LDL受体识别中具有更重要的作用。

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