Dwivedi Pankaj, Rodriguez Johana, Ibe Nnejiuwa U, Weers Paul M M
Department of Chemistry and Biochemistry, California State University , Long Beach, California 90840, United States.
Biochemistry. 2016 Jul 5;55(26):3607-15. doi: 10.1021/acs.biochem.6b00381. Epub 2016 Jun 23.
Apolipophorin III (apoLp-III) is an exchangeable apolipoprotein found in insects and plays an important function in lipid transport. The protein has an unusual five-helix bundle architecture, deviating from the common four-helix bundle motif. To understand the role of the additional helix in apoLp-III, the N-terminal or C-terminal helix was deleted to create a putative four-helix bundle protein. While the protein lacking helix-1 could be expressed in bacteria albeit at reduced yields, apoLp-III lacking helix-5 could not be produced. Mutational analysis by truncating helix-5 showed that a minimum segment of approximately one-third of the C-terminal helix is required for protein expression. The variant lacking helix-5 was produced by inserting a methionine residue between helix-4 and -5; subsequent cyanogenbromide cleavage generated the four-helix variant. Both N- and C-terminal helix deletion variants displayed significantly reduced helical content, protein stability, and tertiary structure. Despite the significantly altered structure, the variants were still fully functional. The rate of dimyristoylphosphatidylcholine vesicle solubilization was enhanced 4-5-fold compared to the wild-type protein, and the deletion variants were effective in binding to lipolyzed low density lipoprotein thereby preventing lipoprotein aggregation. These results show that the additional helix of apoLp-III is not essential for lipid binding but is required for proper folding to keep the protein into a stable conformation.
载脂蛋白III(apoLp-III)是一种在昆虫体内发现的可交换载脂蛋白,在脂质运输中发挥着重要作用。该蛋白质具有不寻常的五螺旋束结构,不同于常见的四螺旋束基序。为了了解apoLp-III中额外螺旋的作用,删除了N端或C端螺旋以创建一种假定的四螺旋束蛋白。虽然缺少螺旋-1的蛋白质可以在细菌中表达,但其产量有所降低,但缺少螺旋-5的apoLp-III无法产生。通过截断螺旋-5进行的突变分析表明,蛋白质表达需要C端螺旋约三分之一的最小片段。缺少螺旋-5的变体是通过在螺旋-4和-5之间插入一个甲硫氨酸残基产生的;随后的溴化氰裂解产生了四螺旋变体。N端和C端螺旋缺失变体的螺旋含量、蛋白质稳定性和三级结构均显著降低。尽管结构发生了显著变化,但这些变体仍然具有完全的功能。与野生型蛋白质相比,二肉豆蔻酰磷脂酰胆碱囊泡的溶解速率提高了4至5倍,并且缺失变体能够有效地结合脂解低密度脂蛋白,从而防止脂蛋白聚集。这些结果表明,apoLp-III的额外螺旋对于脂质结合不是必需的,但对于正确折叠以使蛋白质保持稳定构象是必需的。