Hoyon Kim, Jamie C Little, Jiashen Li, Bryna Patel, Daniel Kalderon
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引用次数: 0
Abstract
Hedgehog (Hh) proteins elicit dose-dependent transcriptional responses by binding Patched receptors to activate transmembrane Smoothened (Smo) proteins. Activated Smo inhibits Ci/Gli transcription factor phosphorylation by Protein Kinase A and consequent proteolytic processing to repressor forms; it also promotes nuclear transport and activity of full-length Ci/Gli proteins to induce Hh target genes. Smo-activated Fused (Fu) kinase drives Ci activation in Drosophila, while Suppressor of Fused (Su(fu)) counters full-length Ci/Gli activity and stabilizes full-length Ci/Gli by direct binding to at least three surfaces. Here, we used CRISPR-generated designer ci alleles to investigate alterations to Fu phosphorylation sites and to regions around Ci-Su(fu) interfaces under physiological conditions in Drosophila imaginal wing discs. Surprisingly, we identified alterations that activate Ci without significant loss of stabilization by Su(fu) and contributions of multiple Fu target sites to Ci activation in the absence of Su(fu), suggesting that the affected sites mediate Ci activation by regulating Ci-Ci, rather than Ci-Su(fu) interactions. We propose that those interactions maintain full-length Ci in a closed conformation that also facilitates, and is stabilized by, cooperative Ci-Su(fu) binding. Access to binding partners necessary for Ci activation is promoted through phosphorylation of at least four Fu sites on Ci, likely by directly disrupting Ci-Ci contacts and one Ci-Su(fu) interface without substantial Ci-Su(fu) dissociation, contrary to previous proposals. We also found that the Ci binding partner, Costal 2 (Cos2), which silences Ci in the absence of Hh, can facilitate Ci activation by Fu kinase.
Hedgehog (Hh)蛋白通过结合补丁受体激活跨膜平滑(Smo)蛋白,引发剂量依赖性转录反应。激活的Smo抑制了蛋白激酶A对Ci/Gli转录因子的磷酸化,并抑制了随后的蛋白水解过程;它还促进核转运和全长Ci/Gli蛋白的活性,从而诱导Hh靶基因。smo活化的Fused (Fu)激酶驱动果蝇的Ci活化,而Suppressor of Fused (Su(Fu))抑制全长Ci/Gli活性,并通过直接结合至少三个表面来稳定全长Ci/Gli。在这里,我们使用crispr生成的设计ci等位基因来研究生理条件下果蝇想象翅盘Fu磷酸化位点和ci - su界面周围区域的变化。令人惊讶的是,我们发现了在没有Su(fu)稳定性显著丧失的情况下激活Ci的改变,以及在没有Su(fu)的情况下多个fu靶点对Ci激活的贡献,这表明受影响的位点通过调节Ci-Ci而不是Ci-Su(fu)相互作用来调节Ci激活。我们认为这些相互作用使全长Ci保持在一个封闭的构象中,这也促进了Ci- su (fu)的合作结合,并通过合作结合来稳定。与先前的建议相反,通过对Ci上至少四个Fu位点的磷酸化,可能直接破坏Ci-Ci接触和一个Ci- su (Fu)界面,而不进行大量的Ci- su (Fu)解离,从而促进了Ci活化所需的结合伙伴的获取。我们还发现,Ci结合伙伴Costal 2 (Cos2)在没有Hh时沉默Ci,可以促进Fu激酶激活Ci。
期刊介绍:
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