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A photoactivatable small-molecule inhibitor for light-controlled spatiotemporal regulation of Rho kinase in live embryos

机译:光活化的小分子抑制剂用于光控制活胚胎中Rho激酶的时空调控

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摘要

To uncover the molecular mechanisms of embryonic development, the ideal loss-of-function strategy would be capable of targeting specific regions of the living embryo with both temporal and spatial precision. To this end, we have developed a novel pharmacological agent that can be light activated to achieve spatiotemporally limited inhibition of Rho kinase activity in vivo. A new photolabile caging group, 6-nitropiperonyloxymethyl (NPOM), was installed on a small-molecule inhibitor of Rho kinase, Rockout, to generate a ‘caged Rockout’ derivative. Complementary biochemical, cellular, molecular and morphogenetic assays in both mammalian cell culture and Xenopus laevis embryos validate that the inhibitory activity of the caged compound is dependent on exposure to light. Conveniently, this unique reagent retains many of the practical advantages of conventional small-molecule inhibitors, including delivery by simple diffusion in the growth medium and concentration-dependent tuneability, but can be locally activated by decaging with standard instrumentation. Application of this novel tool to the spatially heterogeneous problem of embryonic left-right asymmetry revealed a differential requirement for Rho signaling on the left and right sides of the primitive gut tube, yielding new insight into the molecular mechanisms that generate asymmetric organ morphology. As many aromatic/heterocyclic small-molecule inhibitors are amenable to installation of this caging group, our results indicate that photocaging pharmacological inhibitors might be a generalizable technique for engendering convenient loss-of-function reagents with great potential for wide application in developmental biology.
机译:为了揭示胚胎发育的分子机制,理想的功能丧失策略应能够以时间和空间精度靶向活胚的特定区域。为此,我们开发了一种新型药理剂,可以对其进行光活化以实现体内时空限制的Rho激酶活性抑制。在Rho激酶的小分子抑制剂Rockout上安装了一个新的对光不稳定的笼养基团6-硝基哌啶基氧基甲基(NPOM),以生成“笼养的Rockout”衍生物。在哺乳动物细胞培养和非洲爪蟾胚胎中的互补生化,细胞,分子和形态发生分析证实了笼中化合物的抑制活性取决于暴露于光。方便地,这种独特的试剂保留了常规小分子抑制剂的许多实用优势,包括通过在生长培养基中的简单扩散进行递送以及浓度依赖性的可调节性,但可以通过使用标准仪器进行降级来局部激活。该新工具在胚胎左右不对称的空间异质性问题中的应用揭示了原始肠管左右两侧对Rho信号的不同需求,从而对产生不对称器官形态的分子机制有了新的认识。由于许多芳香族/杂环小分子抑制剂都适合安装该笼罩基团,因此我们的结果表明,光笼式药理抑制剂可能是一种通用的技术,用于产生方便的功能丧失的试剂,在发展生物学中具有广泛的应用潜力。

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