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抑制性Smads的结构-功能关系:结构灵活性导致功能差异。

Structure-function relationship of inhibitory Smads: Structural flexibility contributes to functional divergence.

作者信息

Hariharan Ramkumar, Pillai M Radhakrishna

机构信息

Department of Molecular Medicine, Rajiv Gandhi Centre for Biotechnology, Thiruvananthapuram, Kerala, India.

出版信息

Proteins. 2008 Jun;71(4):1853-62. doi: 10.1002/prot.21869.

Abstract

Smads are a small family of eukaryotic transcription regulators that play key roles in the transforming growth factor-beta signaling cascade. Smad6 and Smad7, the inhibitory or I-Smads, inhibit signaling downstream of TGF-beta type I receptors, thereby acting as negative regulators of signaling mediated by TGF-beta superfamily of ligands. Smad6 is known to specifically inhibit BMP type I receptor mediated signaling, while Smad7 is a more general inhibitor, able to block signaling mediated by a set of related TGF-beta type I receptors, including type I receptors for BMP and TGF-beta/Activin. In this study we have sought to understand the structural basis for this functional divergence of I-Smads. We have created homology-based models for the MH1 and MH2 domains of the two I-Smads and have carried out detailed molecular dynamics (MD) simulations of these proteins in explicit solvent to investigate the flexibility of the domains. The molecular models show that the I-Smads have lost many of the secondary structural elements found in the R-Smads, giving rise to longer loops in the tertiary structure of Smad6 and Smad7. Detailed analysis of the structural models and the MD trajectories clearly reveal that compared to Smad6, Smad7 has a more flexible overall folding, marked by the presence of highly flexible amino acid residues in functionally important regions of the protein. Interestingly, three of these residues-Phe411, Lys401, and Cys406, map to L3 loop of Smad7 MH2 domain, which is a critical structural determinant in Smad-type I receptor interactions. The increased structural flexibility of Smad7, arising out of longer, more flexible loops in its MH2 domain, might enable Smad7 to interact with a set of related yet structurally diverse type I receptors. Taken together with experimental evidence published in recent literature that hint at structural factors underlying the generic nature of inhibition by Smad7, our results strongly suggest that structural flexibility could be a prime contributor to the functional differences between Smad6 and Smad7. Additionally, we have been able to use the Smad7 structural model to successfully rationalize the results of in vitro site-specific mutagenesis experiments in published literature. This also provides biological validation for our model. Apart from this, analysis of the MH1 molcular model of Smad6 delineates a basic patch on the surface of the domain that might take part in nonspecific DNA binding by Smad6. This finding is consistent with earlier experimental data and is relevant since the characteristic beta-hairpin DNA binding element of R-Smads is completely absent in the I-Smads. Finally, the molecular models described here can serve to guide future biochemical and genetic studies on I-Smads.

摘要

Smads是真核转录调节因子的一个小家族,在转化生长因子-β信号级联反应中起关键作用。Smad6和Smad7,即抑制性Smads或I-Smads,抑制TGF-β I型受体下游的信号传导,从而作为由TGF-β配体超家族介导的信号传导的负调节因子。已知Smad6特异性抑制BMP I型受体介导的信号传导,而Smad7是一种更通用的抑制剂,能够阻断由一组相关的TGF-β I型受体介导的信号传导,包括BMP和TGF-β/激活素的I型受体。在本研究中,我们试图了解I-Smads这种功能差异的结构基础。我们为两种I-Smads的MH1和MH2结构域创建了基于同源性的模型,并在明确的溶剂中对这些蛋白质进行了详细的分子动力学(MD)模拟,以研究结构域的灵活性。分子模型表明,I-Smads失去了许多在R-Smads中发现的二级结构元件,导致Smad6和Smad7的三级结构中有更长的环。对结构模型和MD轨迹的详细分析清楚地表明,与Smad6相比,Smad7具有更灵活的整体折叠,其特征是在蛋白质的功能重要区域存在高度灵活的氨基酸残基。有趣的是,其中三个残基——苯丙氨酸411、赖氨酸401和半胱氨酸406,位于Smad7 MH2结构域的L3环上,这是Smad与I型受体相互作用的关键结构决定因素。Smad7的结构灵活性增加,源于其MH2结构域中更长、更灵活的环,这可能使Smad7能够与一组相关但结构多样的I型受体相互作用。结合最近文献中发表的实验证据,这些证据暗示了Smad7抑制的普遍性背后的结构因素,我们的结果强烈表明结构灵活性可能是Smad6和Smad7功能差异的主要原因。此外,我们能够使用Smad7结构模型成功地解释已发表文献中体外位点特异性诱变实验的结果。这也为我们的模型提供了生物学验证。除此之外,对Smad6的MH1分子模型的分析描绘了该结构域表面上可能参与Smad6非特异性DNA结合的一个碱性区域。这一发现与早期的实验数据一致,并且是相关的,因为R-Smads特有的β-发夹DNA结合元件在I-Smads中完全不存在。最后,这里描述的分子模型可用于指导未来对I-Smads的生化和遗传学研究。

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