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Modular Organization and Combinatorial Energetics of Proline–Tyrosine Nuclear Localization Signals

机译:脯氨酸-酪氨酸核定位信号的模块化组织和组合能。

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Proline–tyrosine nuclear localization signals (PY-NLSs) are recognized and transported into the nucleus by human Karyopherin (Kap) β2/Transportin and yeast Kap104p. Multipartite PY-NLSs are highly diverse in sequence and structure, share a common C-terminal R/H/KX2–5PY motif, and can be subdivided into hydrophobic and basic subclasses based on loose N-terminal sequence motifs. PY-NLS variability is consistent with weak consensus motifs, but such diversity potentially renders comprehensive genome-scale searches intractable. Here, we use yeast Kap104p as a model system to understand the energetic organization of this NLS. First, we show that Kap104p substrates contain PY-NLSs, demonstrating their generality across eukaryotes. Previously reported Kapβ2–NLS structures explain Kap104p specificity for the basic PY-NLS. More importantly, thermodynamic analyses revealed physical properties that govern PY-NLS binding affinity: (1) PY-NLSs contain three energetically significant linear epitopes, (2) each epitope accommodates substantial sequence diversity, within defined limits, (3) the epitopes are energetically quasi-independent, and (4) a given linear epitope can contribute differently to total binding energy in different PY-NLSs, amplifying signal diversity through combinatorial mixing of energetically weak and strong motifs. The modular organization of the PY-NLS coupled with its combinatorial energetics lays a path to decode this diverse and evolvable signal for future comprehensive genome-scale identification of nuclear import substrates.
机译:脯氨酸-酪氨酸核定位信号(PY-NLSs)被人核球蛋白(Kap)β2/转运蛋白和酵母Kap104p识别并转运到核中。多部分PY-NLS的序列和结构高度不同,具有共同的C端R / H / KX2-5PY基序,并且可以根据宽松的N端序列基序细分为疏水和基本亚类。 PY-NLS的变异性与弱的共有基元一致,但这种多样性可能使全面的基因组规模搜索变得困难。在这里,我们使用酵母Kap104p作为模型系统来了解此NLS的能量结构。首先,我们证明Kap104p底物包含PY-NLS,证明了它们在真核生物中的普遍性。先前报道的Kapβ2-NLS结构解释了Kap104p对基本PY-NLS的特异性。更重要的是,热力学分析揭示了控制PY-NLS结合亲和力的物理性质:(1)PY-NLS包含三个在能量上重要的线性表位,(2)每个表位在规定的限度内可容纳足够的序列多样性,(3)这些表位在能量上是(4)特定的线性表位可以对不同的PY-NLS中的总结合能做出不同的贡献,通过能量上弱的和强的基元的组合混合来放大信号多样性。 PY-NLS的模块化组织及其组合能效技术为解码这种多样且可进化的信号奠定了一条道路,以便将来对进口核基质进行全面的基因组规模鉴定。

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