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Human Bile Acid Transporter ASBT (SLC10A2) Forms Functional Non-Covalent Homodimers and Higher Order Oligomers

机译:人类胆汁酸转运蛋白ASBT(SLC10A2)形成功能性非共价均聚物和高阶低聚物

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摘要

The human apical sodium-dependent bile acid transporter, hASBT/SLC10A2, plays a central role in cholesterol homeostasis via the efficient reabsorption of bile acids from the distal ileum. hASBT has been shown to self-associate in higher order complexes, but while the functional role of endogenous cysteines has been reported, their implication in the oligomerization of hASBT remains unresolved. Here, we determined the self-association architecture of hASBT by site-directed mutagenesis combined with biochemical, immunological and functional approaches. We generated a cysteine-less form of hASBT by creating point mutations at all 13 endogenous cysteines in a stepwise manner. Although Cysless hASBT had significantly reduced function correlated with lowered surface expression, it featured an extra glycosylation site that facilitated its differentiation from wt-hASBT on immunoblots. Decreased protein expression was associated with instability and subsequent proteasome-dependent degradation of Cysless hASBT protein. Chemical cross-linking of wild-type and Cysless species revealed that hASBT exists as an active dimer and/or higher order oligomer with apparently no requirement for endogenous cysteine residues. This was further corroborated by co-immunoprecipitation of differentially tagged (HA-, Flag-) wild-type and Cysless hASBT. Finally, Cysless hASBT exhibited a dominant-negative effect when co-expressed with wild-type hASBT which validated heterodimerization/oligomerization at the functional level. Combined, our data conclusively demonstrate the functional existence of hASBT dimers and higher order oligomers irrespective of cysteine-mediated covalent bonds, thereby providing greater understanding of its topological assembly at the membrane surface.
机译:人类的根尖钠依赖性胆汁酸转运蛋白hASBT / SLC10A2通过有效地从回肠远端吸收胆汁酸,在胆固醇稳态中起着核心作用。已经显示出hASBT可以在高阶复合物中自缔合,但是尽管已经报道了内源性半胱氨酸的功能作用,但是它们在hASBT的低聚中的意义仍然没有得到解决。在这里,我们通过定点诱变结合生化,免疫学和功能方法确定了hASBT的自缔合体系结构。通过逐步在所有13个内源性半胱氨酸上创建点突变,我们生成了无半胱氨酸形式的hASBT。尽管Cysless hASBT的功能显着降低,与表面表达降低有关,但它具有额外的糖基化位点,可促进其与免疫印迹上的wt-hASBT区分。蛋白质表达的降低与Cysless hASBT蛋白质的不稳定性和随后的蛋白酶体依赖性降解有关。野生型和半胱氨酸物种的化学交联表明,hASBT以活性二聚体和/或高阶低聚物的形式存在,显然不需要内源性半胱氨酸残基。通过差异标记的(HA-,Flag-)野生型和Cysless hASBT的共免疫沉淀进一步证实了这一点。最后,当与野生型hASBT共表达时,半胱氨酸hASBT表现出显性负性作用,后者在功能水平上验证了异二聚化/低聚化。结合起来,我们的数据有力地证明了hASBT二聚体和高级寡聚体的功能性存在,而与半胱氨酸介导的共价键无关,从而提供了对其在膜表面的拓扑组装的更深入的了解。

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