Ziqing Liu, Natalie T Tanke, Alexandra Neal, Tianji Yu, Tershona Branch, Arya Sharma, Jean G Cook, Victoria L Bautch
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We developed a semi-automated zonation program to define endothelial cell cycle status in spatially defined and developmentally distinct retinal areas and found predicted cell cycle stage differences in arteries, veins, and remodeled and angiogenic capillaries. Surprisingly, the predicted dearth of S-phase proliferative tip cells relative to stalk cells at the vascular front was accompanied by an unexpected enrichment for endothelial tip and stalk cells in G2, suggesting G2 stalling as a contribution to tip-cell arrest and dynamics at the front. 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引用次数: 0
摘要
细胞周期调控对血管的形成和功能至关重要,但人们对内皮细胞周期如何与血管调控相结合还不甚了解,现有的动态细胞周期报告物也不能精确区分体内所有细胞周期阶段的转变。在这里,我们对最近开发的一种改进型细胞周期报告物(PIP-FUCCI)进行了表征,它能精确划分 S 期和 S/G2 过渡。原代内皮细胞的实时图像分析显示了预测的时间变化和明确的阶段转换。一种新的可诱导小鼠细胞周期报告基因经 Cre 介导激活后可选择性地在出生后视网膜内皮细胞中表达,并预测内皮细胞周期状态。我们开发了一种半自动分区程序,以确定空间上确定的、发育上不同的视网膜区域的内皮细胞周期状态,并发现动脉、静脉以及重塑和血管生成毛细血管中的预测细胞周期阶段差异。令人惊讶的是,在血管前端,预测的 S 期增殖尖端细胞相对于柄细胞的缺乏伴随着意想不到的 G2 期内皮尖端细胞和柄细胞的富集,这表明 G2 停顿是尖端细胞在前端停滞和动态发展的一个原因。因此,这种改良的报告器能精确定义体内内皮细胞周期状态,并揭示可能有助于血管网络扩张的独特方面的新的 G2 调节。
Differential endothelial cell cycle status in postnatal retinal vessels revealed using a novel PIP-FUCCI reporter and zonation analysis.
Cell cycle regulation is critical to blood vessel formation and function, but how the endothelial cell cycle integrates with vascular regulation is not well-understood, and available dynamic cell cycle reporters do not precisely distinguish all cell cycle stage transitions in vivo. Here we characterized a recently developed improved cell cycle reporter (PIP-FUCCI) that precisely delineates S phase and the S/G2 transition. Live image analysis of primary endothelial cells revealed predicted temporal changes and well-defined stage transitions. A new inducible mouse cell cycle reporter allele was selectively expressed in postnatal retinal endothelial cells upon Cre-mediated activation and predicted endothelial cell cycle status. We developed a semi-automated zonation program to define endothelial cell cycle status in spatially defined and developmentally distinct retinal areas and found predicted cell cycle stage differences in arteries, veins, and remodeled and angiogenic capillaries. Surprisingly, the predicted dearth of S-phase proliferative tip cells relative to stalk cells at the vascular front was accompanied by an unexpected enrichment for endothelial tip and stalk cells in G2, suggesting G2 stalling as a contribution to tip-cell arrest and dynamics at the front. Thus, this improved reporter precisely defines endothelial cell cycle status in vivo and reveals novel G2 regulation that may contribute to unique aspects of blood vessel network expansion.
期刊介绍:
Angiogenesis, a renowned international journal, seeks to publish high-quality original articles and reviews on the cellular and molecular mechanisms governing angiogenesis in both normal and pathological conditions. By serving as a primary platform for swift communication within the field of angiogenesis research, this multidisciplinary journal showcases pioneering experimental studies utilizing molecular techniques, in vitro methods, animal models, and clinical investigations into angiogenic diseases. Furthermore, Angiogenesis sheds light on cutting-edge therapeutic strategies for promoting or inhibiting angiogenesis, while also highlighting fresh markers and techniques for disease diagnosis and prognosis.