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Solution Structure of the LIM-Homeodomain Transcription Factor Complex Lhx3/Ldb1 and the Effects of a Pituitary Mutation on Key Lhx3 Interactions

机译:LIM同源域转录因子复合物Lhx3 / Ldb1的解决方案结构和垂体突变对关键Lhx3相互作用的影响。

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摘要

Lhx3 is a LIM-homeodomain (LIM-HD) transcription factor that regulates neural cell subtype specification and pituitary development in vertebrates, and mutations in this protein cause combined pituitary hormone deficiency syndrome (CPHDS). The recently published structures of Lhx3 in complex with each of two key protein partners, Isl1 and Ldb1, provide an opportunity to understand the effect of mutations and posttranslational modifications on key protein-protein interactions. Here, we use small-angle X-ray scattering of an Ldb1-Lhx3 complex to confirm that in solution the protein is well represented by our previously determined NMR structure as an ensemble of conformers each comprising two well-defined halves (each made up of LIM domain from Lhx3 and the corresponding binding motif in Ldb1) with some flexibility between the two halves. NMR analysis of an Lhx3 mutant that causes CPHDS, Lhx3(Y114C), shows that the mutation does not alter the zinc-ligation properties of Lhx3, but appears to cause a structural rearrangement of the hydrophobic core of the LIM2 domain of Lhx3 that destabilises the domain and/or reduces the affinity of Lhx3 for both Ldb1 and Isl1. Thus the mutation would affect the formation of Lhx3-containing transcription factor complexes, particularly in the pituitary gland where these complexes are required for the production of multiple pituitary cell types and hormones.
机译:Lhx3是一个LIM同源域(LIM-HD)转录因子,可调节脊椎动物的神经细胞亚型规格和垂体发育,并且该蛋白的突变会导致合并的垂体激素缺乏综合症(CPHDS)。 Lhx3的最新发布的结构与两个关键蛋白质伴侣Isl1和Ldb1的复合体,为了解突变和翻译后修饰对关键蛋白质-蛋白质相互作用的影响提供了机会。在这里,我们使用Ldb1-Lhx3复合物的小角度X射线散射来确认蛋白质在溶液中很好地由我们先前确定的NMR结构表示为一组构象体,每个构象体均包含两个明确定义的两半(每个由Lhx3的LIM结构域和Ldb1中的相应结合基序在两半之间具有一定的灵活性。导致CPHDS Lhx3(Y114C)的Lhx3突变体的NMR分析表明,该突变不会改变Lhx3的锌连接特性,但似乎引起Lhx3 LIM2结构域的疏水核心结构重排,从而破坏了Lhx3的稳定性。域和/或降低Lhx3对Ldb1和Isl1的亲和力。因此,该突变将影响含Lhx3的转录因子复合物的形成,特别是在垂体中,这些复合物是产生多种垂体细胞类型和激素所必需的。

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