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The pros and cons of common actin labeling tools for visualizing actin dynamics during Drosophila oogenesis

机译:常见肌动蛋白标记工具在果蝇卵子发生过程中可视化肌动蛋白动力学的利弊

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摘要

Dynamic remodeling of the actin cytoskeleton is required for both development and tissue homeostasis. While fixed image analysis has provided significant insight into such events, a complete understanding of cytoskeletal dynamics requires live imaging. Numerous tools for the live imaging of actin have been generated by fusing the actin-binding domain from an actin-interacting protein to a fluorescent protein. Here we comparatively assess the utility of three such tools – Utrophin, Lifeact, and F-tractin – for characterizing the actin remodeling events occurring within the germline-derived nurse cells during Drosophila mid-oogenesis or follicle development. Specifically, we used the UAS/GAL4 system to express these tools at different levels and in different cells, and analyzed these tools for effects on fertility, alterations in the actin cytoskeleton, and ability to label filamentous actin (F-actin) structures by both fixed and live imaging. While both Utrophin and Lifeact robustly label F-actin structures within the Drosophila germline, when strongly expressed they cause sterility and severe actin defects including cortical actin breakdown resulting in multi-nucleate nurse cells, early F-actin filament and aggregate formation during stage 9 (S9), and disorganized parallel actin filament bundles during stage 10B (S10B). However, by using a weaker germline GAL4 driver in combination with a higher temperature, Utrophin can label F-actin with minimal defects. Additionally, strong Utrophin expression within the germline causes F-actin formation in the nurse cell nuclei and germinal vesicle during mid-oogenesis. Similarly, Lifeact expression results in nuclear F-actin only within the germinal vesicle. F-tractin expresses at a lower level than the other two labeling tools, but labels cytoplasmic F-actin structures well without causing sterility or striking actin defects. Together these studies reveal how critical it is to evaluate the utility of each actin labeling tool within the tissue and cell type of interest in order to identify the tool that represents the best compromise between acceptable labeling and minimal disruption of the phenomenon being observed. In this case, we find that F-tractin, and perhaps Utrophin, when Utrophin expression levels are optimized to label efficiently without causing actin defects, can be used to study F-actin dynamics within the Drosophila nurse cells.
机译:肌动蛋白细胞骨架的动态重塑对于发育和组织稳态都是必需的。虽然固定图像分析已经提供了对此类事件的重要见解,但对细胞骨架动力学的完整理解需要实时成像。通过将肌动蛋白结合域从肌动蛋白相互作用蛋白融合到荧光蛋白,已经产生了许多肌动蛋白实时成像工具。在这里,我们比较地评估了三种此类工具(Utrophin,Lifeact和F-tractin)在表征果蝇中期卵子发生或卵泡发育过程中发生在种系衍生护士细胞内的肌动蛋白重塑事件的效用。具体来说,我们使用UAS / GAL4系统在不同水平和不同细胞中表达这些工具,并分析了这些工具对生育力,肌动蛋白细胞骨架的改变以及通过两种方式标记丝状肌动蛋白(F-actin)结构的能力固定和实时成像。虽然Utrophin和Lifeact都在果蝇种系中牢固标记F-肌动蛋白结构,但当它们强烈表达时会引起不育和严重的肌动蛋白缺陷,包括皮质肌动蛋白分解,导致多核护士细胞,早期F-肌动蛋白丝和在第9阶段形成聚集体( S9),以及在阶段10B(S10B)期间杂乱的平行肌动蛋白丝束。但是,通过将较弱的种系GAL4驱动程序与较高的温度结合使用,Utrophin可以以最小的缺陷标记F-肌动蛋白。此外,种系内强烈的Utrophin表达会在产卵中期发生,导致哺乳细胞核和发芽囊泡中的F-肌动蛋白形成。同样,Lifeact表达仅在生发小泡内产生核F-肌动蛋白。 F-tractin的表达水平低于其他两种标记工具,但可以很好地标记细胞质F-肌动蛋白结构,而不会引起无菌或引起肌动蛋白缺陷。这些研究共同表明,评估每个肌动蛋白标记工具在目标组织和细胞类型内的实用性以鉴定代表可接受的标记和观察到的现象的最小破坏之间的最佳折衷的工具至关重要。在这种情况下,我们发现当优化Utrophin的表达水平以有效标记而不引起肌动蛋白缺陷时,F-tractin甚至Utrophin可以用于研究果蝇哺乳细胞内的F-actin动态。

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