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Myllymaki, S.-M.

Publications and source records attributed to Myllymaki, S.-M..

2 recordsLinked to original sources

Spatially coordinated cell cycle activity and motility govern mammary ductal growth and tip bifurcation

Branching morphogenesis is the common evolutionary solution of multiple organs to combine maximal epithelial function with compact organ size. It involves successive rounds of branch elongation and branch point generation to generate a branched epithelial network. Branch points form most commonly at the tips of branches as they split into two. However, it is unclear how epithelial cells in tips drive both elongation and branching. In this study, we used ex vivo live imaging to identify these fundamental cellular mechanisms in the embryonic mammary gland. Our 4D analyses show that tips of branches are driven forward by directional cell migration, while elongation of the subtending duct is supported by cell proliferation that feeds a retrograde flow of lagging cells into the duct, established upon differential cell motility. Tip bifurcation involved localized repression of both cell cycle and cell motility at the branch point. Cells in the nascent daughter tips remained proliferative, but changed the direction of their movement to elongate new branches. Our study also reports the fundamental importance of the contractile actin cytoskeleton in regulating branch point generation in the mammary epithelium.

cell biology↗

Unraveling the principles of mammary gland branching morphogenesis

Branching morphogenesis is a characteristic feature of many essential organs such as the lung, kidney, and most glands, and the net result of two tissue behaviors: branch point initiation and elongation. Each branched organ has a distinct architecture customized to its physiological function, but how patterning occurs in these ramified tubular structures is a fundamental problem of development. Here we use quantitative 3D morphometrics, time-lapse imaging, manipulation of ex vivo cultured embryonic organs, and mice deficient in the planar cell polarity component Vangl2 to address this question in the developing mammary gland. Our results show that the embryonic epithelial trees are highly complex in topology owing to the flexible use of two distinct modes of branch point initiation: lateral branching and tip bifurcation. This non-stereotypy was contrasted by the remarkably constant average branch frequency indicating a ductal growth-invariant, yet stochastic propensity to branch. The probability to branch was malleable and could be tuned by manipulating the Fgf10 and Tgf-{beta}1 pathways. Finally, our in vivo and ex vivo time-lapse imaging suggested the involvement of tissue rearrangements in mammary branch elongation.

developmental biology↗