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Modeling Transmembrane Domain Dimers/Trimers of Plexin Receptors: Implications for Mechanisms of Signal Transmission across the Membrane

机译:Plexin受体跨膜域二聚体/三聚体的建模:跨膜信号传输机制的含义。

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摘要

Single-pass transmembrane (TM) receptors transmit signals across lipid bilayers by helix association or by configurational changes within preformed dimers. The structure determination for such TM regions is challenging and has mostly been accomplished by NMR spectroscopy. Recently, the computational prediction of TM dimer structures is becoming recognized for providing models, including alternate conformational states, which are important for receptor regulation. Here we pursued a strategy to predict helix oligomers that is based on packing considerations (using the PREDDIMER webserver) and is followed by a refinement of structures, utilizing microsecond all-atom molecular dynamics simulations. We applied this method to plexin TM receptors, a family of 9 human proteins, involved in the regulation of cell guidance and motility. The predicted models show that, overall, the preferences identified by PREDDIMER are preserved in the unrestrained simulations and that TM structures are likely to be diverse across the plexin family. Plexin-B1 and –B3 TM helices are regular and tend to associate, whereas plexin-A1, -A2, –A3, -A4, -C1 and –D1 contain sequence elements, such as poly-Glycine or aromatic residues that distort helix conformation and association. Plexin-B2 does not form stable dimers due to the presence of TM prolines. No experimental structural information on the TM region is available for these proteins, except for plexin-C1 dimeric and plexin-B1 – trimeric structures inferred from X-ray crystal structures of the intracellular regions. Plexin-B1 TM trimers utilize Ser and Thr sidechains for interhelical contacts. We also modeled the juxta-membrane (JM) region of plexin-C1 and plexin-B1 and show that it synergizes with the TM structures. The structure and dynamics of the JM region and TM-JM junction provide determinants for the distance and distribution of the intracellular domains, and for their binding partners relative to the membrane. The structures suggest experimental tests and will be useful for the interpretation of future studies.
机译:单程跨膜(TM)受体通过螺旋缔合或通过预先形成的二聚体中的构型变化跨脂质双层传输信号。对于此类TM区域的结构确定具有挑战性,并且大多数已通过NMR光谱法完成。最近,对于TM二聚体结构的计算预测已被认可用于提供包括受体构​​象重要的替代构象状态的模型。在此,我们基于装箱考虑(使用PREDDIMER网络服务器),采用了预测螺旋低聚物的策略,然后利用微秒全原子分子动力学模拟对结构进行了细化。我们将此方法应用于plexin TM受体,该家族是9种人类蛋白质的家族,参与细胞指导和运动的调节。预测的模型表明,总体而言,由PREDDIMER识别的偏好保留在不受限制的模拟中,并且TM结构在整个plexin系列中可能会有所不同。 Plexin-B1和–B3 TM螺旋是规则的并且易于缔合,而plexin-A1,-A2,-A3,-A4,-C1和-D1包含序列元素,例如扭曲螺旋构象的聚甘氨酸或芳香族残基和关联。由于TM脯氨酸的存在,Plexin-B2无法形成稳定的二聚体。除了从细胞内区域的X射线晶体结构推断出的plexin-C1二聚体和plexin-B1-三聚体结构外,没有关于这些蛋白质的TM结构的实验结构信息。 Plexin-B1 TM三聚体利用Ser和Thr侧链进行螺旋间接触。我们还对丛蛋白C1和丛蛋白B1的近膜(JM)区域进行了建模,并表明其与TM结构协同作用。 JM区和TM-JM连接的结构和动力学为细胞内结构域的距离和分布及其相对于膜的结合伴侣提供了决定因素。这些结构建议进行实验测试,对将来的研究很有用。

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