Burute Mithila, Prioux Magali, Blin Guillaume, Truchet Sandrine, Letort Gaëlle, Tseng Qingzong, Bessy Thomas, Lowell Sally, Young Joanne, Filhol Odile, Théry Manuel
CytoMorpho Lab, A2T, UMRS1160, Institut Universitaire d'Hématologie, Hôpital Saint Louis, INSERM/AP-HP/Université Paris Diderot, 1 Avenue Claude Vellefaux, 75010 Paris, France; CytoMorpho Lab, LPCV, UMR5168, Biosciences & Biotechnology Institute of Grenoble, CEA/INRA/CNRS/Université Grenoble-Alpes, 17 rue des Martyrs, 38054 Grenoble, France; CYTOO SA, 7 Parvis Louis Néel, 38040 Grenoble, France.
CytoMorpho Lab, LPCV, UMR5168, Biosciences & Biotechnology Institute of Grenoble, CEA/INRA/CNRS/Université Grenoble-Alpes, 17 rue des Martyrs, 38054 Grenoble, France.
Dev Cell. 2017 Jan 23;40(2):168-184. doi: 10.1016/j.devcel.2016.12.004. Epub 2016 Dec 29.
During epithelial-to-mesenchymal transition (EMT), cells lining the tissue periphery break up their cohesion to migrate within the tissue. This dramatic reorganization involves a poorly characterized reorientation of the apicobasal polarity of static epithelial cells into the front-rear polarity of migrating mesenchymal cells. To investigate the spatial coordination of intracellular reorganization with morphological changes, we monitored centrosome positioning during EMT in vivo, in developing mouse embryos and mammary gland, and in vitro, in cultured 3D cell aggregates and micropatterned cell doublets. In all conditions, centrosomes moved from their off-centered position next to intercellular junctions toward extracellular matrix adhesions on the opposite side of the nucleus, resulting in an effective internal polarity reversal. This move appeared to be supported by controlled microtubule network disassembly. Sequential release of cell confinement using dynamic micropatterns, and modulation of microtubule dynamics, confirmed that centrosome repositioning was responsible for further cell disengagement and scattering.
在上皮-间质转化(EMT)过程中,组织周边的细胞会破坏它们之间的黏附,以便在组织内迁移。这种剧烈的重组涉及将静态上皮细胞的顶-基极性重新定向为迁移间充质细胞的前-后极性,而这种重新定向的特征尚不明确。为了研究细胞内重组与形态变化的空间协调性,我们在体内(发育中的小鼠胚胎和乳腺)以及体外(培养的三维细胞聚集体和微图案化细胞双联体)监测了EMT过程中的中心体定位。在所有条件下,中心体都从其靠近细胞间连接的偏心位置移向细胞核另一侧的细胞外基质黏附处,导致有效的内部极性反转。这一移动似乎受到微管网络可控解聚的支持。使用动态微图案依次释放细胞限制,并调节微管动力学,证实了中心体重新定位是导致细胞进一步脱离和分散的原因。