Laboratory for Organismal Patterning, RIKEN Center for Biosystems Dynamics Research, Kobe 650-0047, Japan.
Howard Hughes Medical Institute, Department of Developmental Biology and Institute for Stem Cell Biology and Regenerative Medicine, Stanford University School of Medicine, Stanford, CA 94305, USA.
Development. 2021 May 1;148(9). doi: 10.1242/dev.198846. Epub 2021 Apr 29.
In mammalian ovaries, immature oocytes are reserved in primordial follicles until their activation for potential ovulation. Precise control of primordial follicle activation (PFA) is essential for reproduction, but how this is achieved is unclear. Here, we show that canonical wingless-type MMTV integration site family (WNT) signaling is pivotal for pre-granulosa cell (pre-GC) activation during PFA. We identified several WNT ligands expressed in pre-GCs that act in an autocrine manner. Inhibition of WNT secretion from pre-GCs/GCs by conditional knockout (cKO) of the wntless (Wls) gene led to female infertility. In Wls cKO mice, GC layer thickness was greatly reduced in growing follicles, which resulted in impaired oocyte growth with both an abnormal, sustained nuclear localization of forkhead box O3 (FOXO3) and reduced phosphorylation of ribosomal protein S6 (RPS6). Constitutive stabilization of β-catenin (CTNNB1) in pre-GCs/GCs induced morphological changes of pre-GCs from a squamous into a cuboidal form, though it did not influence oocyte activation. Our results reveal that canonical WNT signaling plays a permissive role in the transition of pre-GCs to GCs, which is an essential step to support oocyte growth.
在哺乳动物的卵巢中,未成熟的卵母细胞储存在原始卵泡中,直到它们被激活以进行潜在的排卵。精确控制原始卵泡的激活(PFA)对于生殖至关重要,但目前尚不清楚如何实现这一目标。在这里,我们表明经典的 Wnt 信号通路对于 PFA 期间的原始颗粒细胞(pre-GC)激活至关重要。我们鉴定了几种在 pre-GC 中表达的 Wnt 配体,它们以自分泌的方式起作用。通过条件敲除(cKO) wntless(Wls)基因抑制 pre-GC/GC 中 WNT 的分泌,导致雌性不育。在 Wls cKO 小鼠中,生长卵泡中的 GC 层厚度大大减小,导致卵母细胞生长受损,FOXO3 的核定位异常且持续,核糖体蛋白 S6(RPS6)的磷酸化减少。β-连环蛋白(CTNNB1)在 pre-GC/GC 中的组成型稳定化诱导 pre-GC 从鳞状变成立方体形的形态变化,尽管它不影响卵母细胞的激活。我们的结果表明,经典的 Wnt 信号通路在 pre-GC 向 GC 的转化中发挥了许可作用,这是支持卵母细胞生长的必要步骤。