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Biology subjects

Biggs, L. C.

Publications and source records attributed to Biggs, L. C..

3 recordsLinked to original sources

Tissue-scale mechanics controls differentiation strategy and dynamics of epithelial multilayering

Generating and maintaining multilayered epithelia requires coordinated cell division, differentiation, and tissue architecture, yet the precise mechanisms of multilayering remain unclear. Using the developing mouse epidermis, we show that basal stem cells adopt distinct multilayering strategies depending on tissue mechanics. Combining quantitative morphometry, embryo live imaging and physical modeling, we observe that early in development, the epidermis is fluid-like, allowing undifferentiated cells to move suprabasally through perpendicular divisions or basal detachment before differentiating. As the tissue matures and rigidifies, a mechanical barrier is established that only allows upward movement of basal cells that have committed to differentiation. The final step of this commitment is delamination that requires Notch signaling, triggered by increased tissue stiffness and jamming. This mechanical regulation orchestrates a feedback loop that induces cell upward motion precisely when the basal layer becomes crowded. Together, our findings identify tissue mechanics as the key determinant of how tissues drive multilayering and reveal mechanically regulated Notch signaling as a driver of epidermal delamination.

cell biology↗

Piezo1 balances membrane tension and cortical contractility to stabilize intercellular junctions and maintain epithelial barrier integrity

Formation of a bi-directional skin barrier is essential for organismal survival and maintenance of tissue homeostasis. Barrier formation requires positioning of functional tight junctions (TJ) to the most suprabasal viable layer of the epidermis through a mechanical circuit that is driven by generation of high tension at adherens junctions. However, what allows the sensing of tension build-up at these adhesions and how this tension is balanced to match the requirements of tissue mechanical properties is unclear. Here we show that the mechanosensitive ion channel Piezo1 is essential for the maturation of intercellular junctions into functional, continuous adhesions. Deletion of Piezo1 results in an imbalance of cell contractility and membrane tension, leading to a delay in adhesion maturation. Consequently, the requirement for Piezo1 activity can be bypassed by lowering contractility or elevating membrane tension. In vivo, Piezo1 function in adhesion integrity becomes essential only in aged mice where alterations in tissue mechanics lead to impaired TJs and barrier dysfunction. Collectively these studies reveal an essential function of Piezo1 in the timely establishment and maintenance of cell-cell junctions in the context of a mechanically tensed epidermis.

cell biology↗

Mechano-osmotic signals control chromatin state and fate transitions in pluripotent stem cells

Acquisition of specific cell shapes and morphologies is a central component of cell fate transitions. Although signaling circuits and gene regulatory networks that regulate pluripotent stem cell differentiation have been intensely studied, how these networks are integrated in space and time with morphological transitions and mechanical deformations to control state transitions remains a fundamental open question. Here, we focus on two distinct models of pluripotency, primed pluripotent stem cells and pre-implantation inner cell mass cells of human embryos to discover that cell fate transitions associate with rapid changes in nuclear shape and volume which collectively alter the nuclear mechanophenotype. Mechanistic studies in human induced pluripotent stem cells further reveal that these phenotypical changes and the associated active fluctuations of the nuclear envelope arise from growth factor signaling-controlled changes in chromatin mechanics and cytoskeletal confinement. These collective mechano-osmotic changes trigger global transcriptional repression and a condensation-prone environment that primes chromatin for a cell fate transition by attenuating repression of differentiation genes. However, while this mechano-osmotic chromatin priming has the potential to accelerate fate transitions and differentiation, sustained biochemical signals are required for robust induction of specific lineages. Our findings uncover a critical mechanochemical feedback mechanism that integrates nuclear mechanics, shape and volume with biochemical signaling and chromatin state to control cell fate transition dynamics.

cell biology↗