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A laser pointer driven microheater for precise local heating and conditional gene regulation in vivo. Microheater driven gene regulation in zebrafish

机译:激光指示器驱动的微型加热器,用于在体内精确地进行局部加热和有条件的基因调节。斑马鱼的微加热器驱动基因调控

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Background Tissue heating has been employed to study a variety of biological processes, including the study of genes that control embryonic development. Conditional regulation of gene expression is a particularly powerful approach for understanding gene function. One popular method for mis-expressing a gene of interest employs heat-inducible heat shock protein (hsp) promoters. Global heat shock of hsp-promoter-containing transgenic animals induces gene expression throughout all tissues, but does not allow for spatial control. Local heating allows for spatial control of hsp-promoter-driven transgenes, but methods for local heating are cumbersome and variably effective. Results We describe a simple, highly controllable, and versatile apparatus for heating biological tissue and other materials on the micron-scale. This microheater employs micron-scale fiber optics and uses an inexpensive laser-pointer as a power source. Optical fibers can be pulled on a standard electrode puller to produce tips of varying sizes that can then be used to reliably heat 20-100 μm targets. We demonstrate precise spatiotemporal control of hsp70l:GFP transgene expression in a variety of tissue types in zebrafish embryos and larvae. We also show how this system can be employed as part of a new method for lineage tracing that would greatly facilitate the study of organogenesis and tissue regulation at any time in the life cycle. Conclusion This versatile and simple local heater has broad utility for the study of gene function and for lineage tracing. This system could be used to control hsp-driven gene expression in any organism simply by bringing the fiber optic tip in contact with the tissue of interest. Beyond these uses for the study of gene function, this device has wide-ranging utility in materials science and could easily be adapted for therapeutic purposes in humans.
机译:背景技术已经利用组织加热来研究多种生物学过程,包括研究控制胚胎发育的基因。基因表达的条件调节是了解基因功能的一种特别有效的方法。一种错误表达目的基因的流行方法是使用热诱导性热激蛋白(hsp)启动子。含hsp启动子的转基因动物的整体热激诱导了所有组织的基因表达,但不允许进行空间控制。局部加热允许对hsp启动子驱动的转基因进行空间控制,但是局部加热的方法麻烦且有效。结果我们描述了一种简单,高度可控且用途广泛的设备,用于加热微米级的生物组织和其他材料。该微型加热器采用微米级的光纤,并使用廉价的激光笔作为电源。可以在标准的电极拉拔器上拉出光纤,以产生各种尺寸的尖端,然后将其用于可靠地加热20-100μm的目标。我们展示了hsp70l:GFP转基因表达的精确时空控制在斑马鱼胚胎和幼虫的各种组织类型中。我们还展示了如何将该系统用作谱系追踪新方法的一部分,该方法将极大地促进生命周期中任何时间的器官发生和组织调控的研究。结论这种多功能且简单的局部加热器在研究基因功能和谱系追踪方面具有广泛的用途。仅通过使光纤尖端与目标组织接触,即可将该系统用于控制任何生物中hsp驱动的基因表达。除了用于基因功能研究的这些用途外,该装置在材料科学中具有广泛的用途,并且可以轻松地应用于人类的治疗目的。

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