Department of Physiology, Biophysics, and Neurosciences, Center for Research and Advanced Studies of the National Polytechnical Institute (Cinvestav-IPN), Mexico City, 07360, Mexico.
Systems Biology Group (SysBio), Institute of Physics of Liquids and Biological Systems (IFLYSIB), National Scientific and Technical Research Council (CONICET) and University of La Plata (UNLP), La Plata, B1900BTE, Argentina; Department of Biological Sciences, Faculty of Exact Sciences, University of La Plata (UNLP), La Plata, 1900, Buenos Aires, Argentina.
Dev Biol. 2020 Jun 15;462(2):141-151. doi: 10.1016/j.ydbio.2020.03.009. Epub 2020 Mar 19.
Organs mainly attain their size by cell growth and proliferation, but sometimes also grow through recruitment of undifferentiated cells. Here we investigate the participation of cell recruitment in establishing the pattern of Vestigial (Vg), the product of the wing selector gene in Drosophila. We find that the Vg pattern overscales along the dorsal-ventral (DV) axis of the wing imaginal disc, i.e., it expands faster than the DV length of the pouch. The overscaling of the Vg pattern cannot be explained by differential proliferation, apoptosis, or oriented-cell divisions, but can be recapitulated by a mathematical model that explicitly considers cell recruitment. When impairing cell recruitment genetically, we find that the Vg pattern almost perfectly scales and adult wings are approximately 20% smaller. Conversely, impairing cell proliferation results in very small wings, suggesting that cell recruitment and cell proliferation additively contribute to organ growth in this system. Furthermore, using fluorescent reporter tools, we provide direct evidence that cell recruitment is initiated between early and mid third-instar larval development. Altogether, our work quantitatively shows when, how, and by how much cell recruitment shapes the Vg pattern and drives growth of the Drosophila wing.
器官主要通过细胞生长和增殖来获得大小,但有时也通过招募未分化细胞来生长。在这里,我们研究了细胞招募在建立果蝇翅膀选择基因产物 Vestigial(Vg)模式中的参与作用。我们发现,Vg 模式在翅膀的背腹(DV)轴上过度扩展,即它的扩展速度比口袋的 DV 长度快。Vg 模式的过度扩展不能用增殖、凋亡或定向细胞分裂的差异来解释,但可以通过一个明确考虑细胞招募的数学模型来再现。当我们从遗传上破坏细胞招募时,我们发现 Vg 模式几乎完美地缩放,而成虫翅膀大约小 20%。相反,破坏细胞增殖会导致翅膀非常小,这表明在这个系统中,细胞招募和细胞增殖对器官生长有累加作用。此外,使用荧光报告工具,我们提供了直接证据表明,细胞招募发生在早期到中期三龄幼虫发育之间。总之,我们的工作定量地显示了细胞招募何时、如何以及在多大程度上塑造了 Vg 模式,并推动了果蝇翅膀的生长。