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2.
Nature ; 619(7968): 167-175, 2023 Jul.
Article in English | MEDLINE | ID: mdl-37344586

ABSTRACT

Healthy skin is a mosaic of wild-type and mutant clones1,2. Although injury can cooperate with mutated Ras family proteins to promote tumorigenesis3-12, the consequences in genetically mosaic skin are unknown. Here we show that after injury, wild-type cells suppress aberrant growth induced by oncogenic Ras. HrasG12V/+ and KrasG12D/+ cells outcompete wild-type cells in uninjured, mosaic tissue but their expansion is prevented after injury owing to an increase in the fraction of proliferating wild-type cells. Mechanistically, we show that, unlike HrasG12V/+ cells, wild-type cells respond to autocrine and paracrine secretion of EGFR ligands, and this differential activation of the EGFR pathway explains the competitive switch during injury repair. Inhibition of EGFR signalling via drug or genetic approaches diminishes the proportion of dividing wild-type cells after injury, leading to the expansion of HrasG12V/+ cells. Increased proliferation of wild-type cells via constitutive loss of the cell cycle inhibitor p21 counteracts the expansion of HrasG12V/+ cells even in the absence of injury. Thus, injury has a role in switching the competitive balance between oncogenic and wild-type cells in genetically mosaic skin.


Subject(s)
Cell Proliferation , Genes, ras , Mosaicism , Mutation , Skin , ras Proteins , Cell Cycle , Cell Proliferation/genetics , ErbB Receptors/metabolism , ras Proteins/genetics , ras Proteins/metabolism , Skin/cytology , Skin/injuries , Skin/metabolism , Skin/pathology , Cyclin-Dependent Kinase Inhibitor p21/deficiency , Cyclin-Dependent Kinase Inhibitor p21/genetics , Cyclin-Dependent Kinase Inhibitor p21/metabolism
3.
J Cell Biol ; 222(7)2023 07 03.
Article in English | MEDLINE | ID: mdl-37102999

ABSTRACT

Skin homeostasis is maintained by stem cells, which must communicate to balance their regenerative behaviors. Yet, how adult stem cells signal across regenerative tissue remains unknown due to challenges in studying signaling dynamics in live mice. We combined live imaging in the mouse basal stem cell layer with machine learning tools to analyze patterns of Ca2+ signaling. We show that basal cells display dynamic intercellular Ca2+ signaling among local neighborhoods. We find that these Ca2+ signals are coordinated across thousands of cells and that this coordination is an emergent property of the stem cell layer. We demonstrate that G2 cells are required to initiate normal levels of Ca2+ signaling, while connexin43 connects basal cells to orchestrate tissue-wide coordination of Ca2+ signaling. Lastly, we find that Ca2+ signaling drives cell cycle progression, revealing a communication feedback loop. This work provides resolution into how stem cells at different cell cycle stages coordinate tissue-wide signaling during epidermal regeneration.


Subject(s)
Calcium Signaling , Calcium , Cell Cycle Checkpoints , Epidermis , Animals , Mice , Calcium/metabolism , Cell Cycle , Epidermis/metabolism
4.
Elife ; 122023 03 07.
Article in English | MEDLINE | ID: mdl-36880644

ABSTRACT

Stem cell differentiation requires dramatic changes in gene expression and global remodeling of chromatin architecture. How and when chromatin remodels relative to the transcriptional, behavioral, and morphological changes during differentiation remain unclear, particularly in an intact tissue context. Here, we develop a quantitative pipeline which leverages fluorescently-tagged histones and longitudinal imaging to track large-scale chromatin compaction changes within individual cells in a live mouse. Applying this pipeline to epidermal stem cells, we reveal that cell-to-cell chromatin compaction heterogeneity within the stem cell compartment emerges independent of cell cycle status, and instead is reflective of differentiation status. Chromatin compaction state gradually transitions over days as differentiating cells exit the stem cell compartment. Moreover, establishing live imaging of Keratin-10 (K10) nascent RNA, which marks the onset of stem cell differentiation, we find that Keratin-10 transcription is highly dynamic and largely precedes the global chromatin compaction changes associated with differentiation. Together, these analyses reveal that stem cell differentiation involves dynamic transcriptional states and gradual chromatin rearrangement.


Subject(s)
Chromatin , Keratin-10 , Animals , Mice , Keratin-10/genetics , Keratin-10/metabolism , Histones/metabolism , Cell Differentiation/genetics , Stem Cells/metabolism
5.
Nat Cell Biol ; 23(5): 476-484, 2021 05.
Article in English | MEDLINE | ID: mdl-33958758

ABSTRACT

Organs consist of multiple cell types that ensure proper architecture and function. How different cell types coexist and interact to maintain their homeostasis in vivo remains elusive. The skin epidermis comprises mostly epithelial cells, but also harbours Langerhans cells (LCs) and dendritic epidermal T cells (DETCs). Whether and how distributions of LCs and DETCs are regulated during homeostasis is unclear. Here, by tracking individual cells in the skin of live adult mice over time, we show that LCs and DETCs actively maintain a non-random spatial distribution despite continuous turnover of neighbouring basal epithelial cells. Moreover, the density of epithelial cells regulates the composition of LCs and DETCs in the epidermis. Finally, LCs require the GTPase Rac1 to maintain their positional stability, density and tiling pattern reminiscent of neuronal self-avoidance. We propose that these cellular mechanisms provide the epidermis with an optimal response to environmental insults.


Subject(s)
Epidermal Cells/cytology , Epidermis/metabolism , Skin/cytology , T-Lymphocytes/immunology , Animals , Epidermal Cells/immunology , Epidermis/immunology , Homeostasis/immunology , Homeostasis/physiology , Intercellular Junctions/pathology , Mice, Transgenic , Skin/immunology
6.
J Cell Biol ; 218(10): 3212-3222, 2019 10 07.
Article in English | MEDLINE | ID: mdl-31488583

ABSTRACT

Mutations associated with tumor development in certain tissues can be nontumorigenic in others, yet the mechanisms underlying these different outcomes remains poorly understood. To address this, we targeted an activating Hras mutation to hair follicle stem cells and discovered that Hras mutant cells outcompete wild-type neighbors yet are integrated into clinically normal skin hair follicles. In contrast, targeting the Hras mutation to the upper noncycling region of the skin epithelium leads to benign outgrowths. Follicular Hras mutant cells autonomously and nonautonomously enhance regeneration, which directs mutant cells into continuous tissue cycling to promote integration rather than aberrancy. This follicular tolerance is maintained under additional challenges that promote tumorigenesis in the epidermis, including aging, injury, and a secondary mutation. Thus, the hair follicle possesses a unique, enhanced capacity to integrate and contain Hras mutant cells within both homeostatic and perturbed tissue, demonstrating that in the skin, multiple, distinct mechanisms exist to suppress oncogenic growth.


Subject(s)
Carcinogenesis , Hair Follicle/metabolism , Neoplasms/metabolism , Neoplasms/pathology , Regeneration , ras Proteins/metabolism , Animals , Mice , Mice, Transgenic
7.
Cell ; 175(6): 1620-1633.e13, 2018 11 29.
Article in English | MEDLINE | ID: mdl-30415836

ABSTRACT

Fibroblasts are an essential cellular and structural component of our organs. Despite several advances, the critical behaviors that fibroblasts utilize to maintain their homeostasis in vivo have remained unclear. Here, by tracking the same skin fibroblasts in live mice, we show that fibroblast position is stable over time and that this stability is maintained despite the loss of neighboring fibroblasts. In contrast, fibroblast membranes are dynamic during homeostasis and extend to fill the space of lost neighboring fibroblasts in a Rac1-dependent manner. Positional stability is sustained during aging despite a progressive accumulation of gaps in fibroblast nuclei organization, while membrane occupancy continues to be maintained. This work defines positional stability and cell occupancy as key principles of skin fibroblast homeostasis in vivo, throughout the lifespan of mice, and identifies membrane extension in the absence of migration as the core cellular mechanism to carry out these principles.


Subject(s)
Cell Membrane/metabolism , Cell Nucleus/metabolism , Fibroblasts/metabolism , Homeostasis/physiology , Skin/metabolism , Animals , Cell Membrane/genetics , Cell Nucleus/genetics , Cells, Cultured , Fibroblasts/cytology , Mice , Mice, Transgenic , Skin/cytology
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