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Next-Generationin SituHybridization Chain Reaction: Higher Gain, Lower Cost, Greater Durability

机译:下一代原位杂交链反应:提高增益,成本较低,耐用性更大

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摘要

Hybridization chain reaction (HCR) provides multiplexed, isothermal, enzyme-free, molecular signal amplification in diverse settings. Within intact vertebrate embryos, where signal-to-background is at a premium, HCR in situ amplification enables simultaneous mapping of multiple target mRNAs, addressing a longstanding challenge in the biological sciences. With this approach, RNA probes complementary to mRNA targets trigger chain reactions in which metastable fluorophore-labeled RNA hairpins self-assemble into tethered fluorescent amplification polymers. The properties of HCR lead to straightforward multiplexing, deep sample penetration, high signal-to-background, and sharp subcellular signal localization within fixed whole-mount zebrafish embryos, a standard model system for the study of vertebrate development. However, RNA reagents are expensive and vulnerable to enzymatic degradation. Moreover, the stringent hybridization conditions used to destabilize nonspecific hairpin binding also reduce the energetic driving force for HCR polymerization, creating a trade-off between minimization of background and maximization of signal. Here, we eliminate this trade-off by demonstrating that low background levels can be achieved using permissive in situ amplification conditions (0% formamide, room temperature) and engineer next-generation DNA HCR amplifiers that maximize the free energy benefit per polymerization step while preserving the kinetic trapping property that underlies conditional polymerization, dramatically increasing signal gain, reducing reagent cost, and improving reagent durability.
机译:杂交链反应(HCR)可在多种环境下提供多重,等温,无酶的分子信号放大。在完整的脊椎动物胚胎中,对背景的信号非常重要,HCR原位扩增能够同时定位多个靶标mRNA,从而解决了生物科学领域的长期挑战。使用这种方法,与mRNA靶标互补的RNA探针可触发链反应,在链反应中,亚稳态的荧光团标记的RNA发夹会自动组装成束缚的荧光扩增聚合物。 HCR的特性导致在固定的整座斑马鱼胚胎内进行直接的多路复用,深入的样品穿透,高的信噪比和清晰的亚细胞信号定位,这是研究脊椎动物发育的标准模型系统。但是,RNA试剂价格昂贵,容易被酶降解。此外,用于使非特异性发夹结合不稳定的严格杂交条件也降低了HCR聚合的能量驱动力,从而在背景最小化和信号最大化之间进行了权衡。在这里,我们通过证明使用允许的原位扩增条件(0%甲酰胺,室温)可以实现低背景水平,并设计出下一代DNA HCR放大器,从而在保持聚合的同时最大化每个聚合步骤的自由能,从而消除了这种折衷作为条件聚合的基础的动力学捕获特性,可显着提高信号增益,降低试剂成本并提高试剂耐久性。

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