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GLTP-fold interaction with planar phosphatidylcholine surfaces is synergistically stimulated by phosphatidic acid and phosphatidylethanolamine

机译:磷脂酸和磷脂酰乙醇胺协同刺激与平面磷脂酰胆碱表面的GLTP折叠相互作用

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摘要

Among amphitropic proteins, human glycolipid transfer protein (GLTP) forms a structurally-unique fold that translocates on/off membranes to specifically transfer glycolipids. Phosphatidylcholine (PC) bilayers with curvature-induced packing stress stimulate much faster glycolipid intervesicular transfer than nonstressed PC bilayers raising questions about planar cytosol-facing biomembranes being viable sites for GLTP interaction. Herein, GLTP-mediated desorption kinetics of fluorescent glycolipid (tetramethyl-boron dipyrromethene (BODIPY)-label) from lipid monolayers are assessed using a novel microfluidics-based surface balance that monitors lipid lateral packing while simultaneously acquiring surface fluorescence data. At biomembrane-like packing (30–35 mN/m), GLTP uptake of BODIPY-glycolipid from POPC monolayers was nearly nonexistent but could be induced by reducing surface pressure to mirror packing in curvature-stressed bilayers. In contrast, 1-palmitoyl-2-oleoyl-phosphatidylethanolamine (POPE) matrices supported robust BODIPY-glycolipid uptake by GLTP at both high and low surface pressures. Unexpectedly, negatively-charged cytosol-facing lipids, i.e., phosphatidic acid and phosphatidylserine, also supported BODIPY-glycolipid uptake by GLTP at high surface pressure. Remarkably, including both 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphate (5 mol%) and POPE (15 mol%) in POPC synergistically activated GLTP at high surface pressure. Our study shows that matrix lipid headgroup composition, rather than molecular packing per se, is a key regulator of GLTP-fold function while demonstrating the novel capabilities of the microfluidics-based film balance for investigating protein-membrane interfacial interactions.
机译:在两亲性蛋白质中,人糖脂转移蛋白(GLTP)形成结构独特的折叠,可在膜上/外移位,从而特异性地转移糖脂。与非应力PC双层相比,具有曲率诱导的堆积应力的磷脂酰胆碱(PC)双层刺激糖脂的囊泡间转移要快得多,这引发了有关面向细胞质的生物膜是GLTP相互作用的可行位点的问题。本文中,使用新型的基于微流体的表面平衡来评估GLTP介导的荧光糖脂(四甲基硼二吡咯甲烯(BODIPY)-标记)从脂质单层的解吸动力学,该表面平衡监测脂质横向堆积,同时获取表面荧光数据。在类似生物膜的填料(30-35 mN / m)下,几乎不存在来自POPC单层的BODIPY-糖脂的GLTP吸收,但可以通过降低表面压力以镜面压缩双层中的镜面填料来诱导。相反,1-棕榈酰-2-油酰基-磷脂酰乙醇胺(POPE)基质在高和低表面压力下均支持GLTP对BODIPY-糖脂的强力吸收。出乎意料的是,带负电荷的面向细胞溶胶的脂质,即磷脂酸和磷脂酰丝氨酸,也支持GLTP在高表面压力下摄取BODIPY-糖脂。值得注意的是,在高表面压力下,POPC中的1-棕榈酰基-2-油酰基-sn-甘油-3-磷酸酯(5 mol%)和POPE(15 mol%)都包括协同活化的GLTP。我们的研究表明,基质脂质头基组成而不是分子堆积本身是GLTP折叠功能的关键调节剂,同时证明了基于微流体的薄膜天平用于研究蛋白质-膜界面相互作用的新功能。

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