Zieger Elisabeth, Schwaha Thomas, Burger Katharina, Bergheim Ina, Wanninger Andreas, Calcino Andrew D
Integrative Zoology, Department of Evolutionary Biology, University of Vienna, Vienna, Austria.
Molecular Nutritional Science, Department of Nutritional Sciences, University of Vienna, Vienna, Austria.
Front Cell Dev Biol. 2022 Jun 14;10:894434. doi: 10.3389/fcell.2022.894434. eCollection 2022.
Intercellular lumen formation is a crucial aspect of animal development and physiology that involves a complex interplay between the molecular and physical properties of the constituent cells. Embryos of the invasive freshwater mussel are ideal models for studying this process due to the large intercellular cavities that readily form during blastomere cleavage. Using this system, we show that recruitment of the transmembrane water channel protein aquaporin exclusively to the midbody of intercellular cytokinetic bridges is critical for lumenogenesis. The positioning of aquaporin-positive midbodies thereby influences the direction of cleavage cavity expansion. Notably, disrupting cytokinetic bridge microtubules impairs not only lumenogenesis but also cellular osmoregulation. Our findings reveal a simple mechanism that provides tight spatial and temporal control over the formation of luminal structures and likely plays an important role in water homeostasis during early cleavage stages of a freshwater invertebrate species.
细胞间腔形成是动物发育和生理学的一个关键方面,涉及组成细胞的分子和物理特性之间的复杂相互作用。侵入性淡水贻贝的胚胎是研究这一过程的理想模型,因为在卵裂球分裂过程中很容易形成大的细胞间腔。利用这个系统,我们表明跨膜水通道蛋白水通道蛋白专门募集到细胞间胞质分裂桥的中体对于管腔形成至关重要。水通道蛋白阳性中体的定位从而影响分裂腔扩展的方向。值得注意的是,破坏胞质分裂桥微管不仅会损害管腔形成,还会损害细胞渗透调节。我们的研究结果揭示了一种简单的机制,该机制对管腔结构的形成提供了严格的空间和时间控制,并且可能在淡水无脊椎动物物种早期分裂阶段的水平衡中发挥重要作用。