首页> 外文期刊>Journal of cellular biochemistry. >Potential role of salt‐bridges in the hinge‐like movement of apicomplexa specific β‐hairpin of Plasmodium Plasmodium and Toxoplasma Toxoplasma profilins: A molecular dynamics simulation study
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Potential role of salt‐bridges in the hinge‐like movement of apicomplexa specific β‐hairpin of Plasmodium Plasmodium and Toxoplasma Toxoplasma profilins: A molecular dynamics simulation study

机译:盐桥在血浆疟原虫和弓形致弓形虫弓形虫的Apicomplexa特异性β-发夹的铰链运动中的潜在作用:分子动力学模拟研究

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Abstract Profilin is one of the actin‐binding proteins that regulate dynamics of actin polymerization. It plays a key role in cell motility and invasion. It also interacts with several other proteins notably through its poly‐L‐proline (PLP) binding site. Profilin in apicomplexa is characterized by a unique mini‐domain consisting of a large β‐hairpin extension and an acidic loop which is relatively longer in Plasmodium species. Profilin is essential for the invasive blood stages of Plasmodium falciparum . In the current study, unbound profilins from Plasmodium falciparum ( Pf ), Toxoplasma gondii ( Tg ), and Homo sapiens ( Hs ) were subjected to molecular dynamics (MD) simulations for a timeframe of 100?ns each to understand the conformational dynamics of these proteins. It was found that the β‐hairpin of profilins from Pf and Tg shows a hinge‐like movement. This movement in Pf profilin may possibly be driven by the loss of a salt‐bridge within profilin. The impact of this conformational change on actin binding was assessed by docking three dimensional (3D) structures of profilin from Pf and Tg with their corresponding actins using ClusPro2.0. The stability of docked Pf profilin‐actin complex was assessed through a 50?ns MD simulation. As Hs profilin I does not have the apicomplexa specific mini‐domain, MD simulation was performed for this protein and its dynamics was compared to that of profilins from Pf and Tg . Using an immunoinformatics approach, potential epitope regions were predicted for Pf profilin. This has a potential application in the design of vaccines as they mapped to its unique mini‐domain.
机译:摘要Profilin是调节肌动蛋白聚合动态的肌动蛋白结合蛋白之一。它在细胞运动和入侵中起着关键作用。它还通过其聚-L-脯氨酸(PLP)结合位点特别地与几种其他蛋白质相互作用。 APICOMPLEXA中的profilin的特征在于由大的β-发夹延伸和在疟原虫种类中相对较长的酸性环组成的独特微型结构域。 Profilin对于疟原虫的侵袭性血脂阶段至关重要。在目前的研究中,从疟原虫(PF),弓形虫弓形虫(TG)和Homo Sapiens(HS)的未结合型Propilins进行了100个?ns的时间范围,以了解这些的构象动态蛋白质。发现来自PF和TG的Profilins的β-发夹显示出铰链式的运动。 PF Profilin中的这种运动可能是通过毛素内的盐桥的损失驱动。通过使用CLUSPRO2.0与其相应的actins对接的三维(3D)结构对抗三维(3D)结构来评估这种构象变化对肌动蛋白结合的影响。通过50ΩMD模拟评估停靠PF procilin-actin复合物的稳定性。随着HS Profilin I没有ApiCoMplexa特异性微型结构域,对该蛋白质进行MD模拟,并将其动力学与来自PF和Tg的ProFilins进行了比较。使用免疫信息学方法,预测潜在的表位区域PF Profilin。这在疫苗的设计中具有潜在的应用,因为它们映射到其独特的迷你域。

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