Department of Chemical & Biological Engineering, Princeton University, Princeton, NJ 08544, USA.
Department of Molecular Biology, Princeton University, Princeton, NJ 08544, USA.
Development. 2023 Aug 15;150(16). doi: 10.1242/dev.201663. Epub 2023 Aug 17.
Many developmental processes rely on the localized activation of receptor tyrosine kinases and their canonical downstream effectors Erk and Akt, yet the specific roles played by each of these signals is still poorly understood. Gastruloids, 3D cell culture models of mammalian gastrulation and axial elongation, enable quantitative dissection of signaling patterns and cell responses in a simplified, experimentally accessible context. We find that mouse gastruloids contain posterior-to-anterior gradients of Erk and Akt phosphorylation induced by distinct receptor tyrosine kinases, with features of the Erk pattern and expression of its downstream target Snail exhibiting hallmarks of size-invariant scaling. Both Erk and Akt signaling contribute to cell proliferation, whereas Erk activation is also sufficient to induce Snail expression and precipitate profound tissue shape changes. We further uncover that Erk signaling is sufficient to convert the entire gastruloid to one of two mesodermal fates depending on position along the anteroposterior axis. In all, these data demonstrate functional roles for two core signaling gradients in mammalian development and suggest how these modules might be harnessed to engineer user-defined tissues with predictable shapes and cell fates.
许多发育过程依赖于受体酪氨酸激酶及其经典下游效应物 Erk 和 Akt 的局部激活,但这些信号各自的具体作用仍知之甚少。囊胚,哺乳动物原肠胚和轴伸长的 3D 细胞培养模型,能够在简化的、实验可及的背景下定量剖析信号模式和细胞反应。我们发现,小鼠囊胚中存在由不同受体酪氨酸激酶诱导的 Erk 和 Akt 磷酸化的后至前梯度,Erk 模式的特征及其下游靶基因 Snail 的表达表现出大小不变缩放的特征。Erk 和 Akt 信号都有助于细胞增殖,而 Erk 的激活也足以诱导 Snail 的表达并引发组织形状的深刻变化。我们进一步发现,Erk 信号足以根据沿前后轴的位置将整个囊胚转化为两种中胚层命运之一。总之,这些数据表明,在哺乳动物发育过程中,两个核心信号梯度具有功能作用,并提示如何利用这些模块来设计具有可预测形状和细胞命运的用户定义组织。