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Biology subjects

Millar, S. E.

Publications and source records attributed to Millar, S. E..

4 recordsLinked to original sources

Identification of Meibomian gland stem cell populations and mechanisms of aging

Meibomian glands secrete lipid-rich meibum, which prevents tear evaporation. Aging-related Meibomian gland shrinkage may result in part from stem cell exhaustion and is associated with evaporative dry eye disease, a common condition lacking effective treatment. The identities and niche of Meibomian gland stem cells and the signals controlling their activity are poorly defined. Using snRNA-seq, in vivo lineage tracing, ex vivo live imaging, and genetic studies in mice, we identified markers for stem cell populations that maintain distinct regions of the gland and uncovered Hh signaling as a key regulator of stem cell proliferation. Consistent with this, human Meibomian gland carcinoma exhibited increased Hh signaling. Aged glands displayed decreased Hh and EGF signaling, deficient innervation, and loss of collagen I in niche fibroblasts, indicating that alterations in both glandular epithelial cells and their surrounding microenvironment contribute to age-related degeneration. These findings suggest new approaches to treat aging-associated Meibomian gland loss.

cell biology↗

HDAC1/2 and HDAC3 play distinct roles in controlling adult Meibomian gland homeostasis

PurposeTo investigate the roles of HDAC1/2 and HDAC3 in adult Meibomian gland (MG) homeostasis. MethodsHDAC1/2 or HDAC3 were inducibly deleted in MG epithelial cells of adult mice. The morphology of MG was examined. Proliferation, apoptosis, and expression of MG acinus and duct marker genes, meibocyte differentiation genes, and HDAC target genes, were analyzed via immunofluorescence, TUNEL assay, and RNA in situ hybridization. ResultsCo-deletion of HDAC1/2 in MG epithelium caused gradual loss of acini and formation of cyst-like structures in the central duct. These phenotypes required homozygous deletion of both HDAC1 and HDAC2, indicating that they function redundantly in the adult MG. Short-term deletion of HDAC1/2 in MG epithelium had little effect on meibocyte maturation but caused decreased proliferation of acinar basal cells, excessive DNA damage, ectopic apoptosis, and increased p53 acetylation and p16 expression in the MG. By contrast, HDAC3 deletion in MG epithelium caused dilation of central duct, atrophy of acini, defective meibocyte maturation, increased acinar basal cell proliferation, and ectopic apoptosis and DNA damage. Levels of p53 acetylation and p21 expression were elevated in HDAC3-deficient MGs, while the expression of the differentiation regulator PPAR{gamma} and the differentiation markers PLIN2 and FASN was downregulated. ConclusionsHDAC1 and HDAC2 function redundantly in adult Meibomian gland epithelial progenitor cells and are essential for their proliferation and survival, but not for acinar differentiation, while HDAC3 is required to limit acinar progenitor cell proliferation and permit differentiation. HDAC1/2 and HDAC3 have partially overlapping roles in maintaining survival of MG cells.

molecular biology↗

Wnt/β-catenin signaling controls mouse eyelid growth by mediating epithelial-mesenchymal interactions

Eyelid closure is required for the development of multiple ocular tissues. Interactions between the epithelium and underlying mesenchyme play a pivotal role in regulating eyelid development. However, the molecular mechanisms underlying these interactions remain unclear. Wnt signaling pathways regulate the development of ocular tissues, but their functions in eyelid development are not fully defined. In this study, we find that deletion of {beta}-catenin in supraorbital mesenchyme abolishes eyelid growth by causing decreased proliferation in supraorbital epithelium and underlying mesenchyme. Inhibition of Wnt secretion by deleting Wls in supraorbital epithelium results in failure of eyelid developing, similar to the effects of deleting mesenchymal {beta}-catenin, suggesting that mesenchymal Wnt/{beta}- catenin signaling is controlled by epithelial Wnt ligands during eyelid development. We also found that deletion of p63 results in formation of hypoplastic eyelids and reduced expression of several Wnt ligands in eyelid epithelium, indicating that expression of Wnt ligands in eyelid development is at least partially regulated by p63. Taken together, our data indicate that Wnt/{beta}-catenin signaling controls eyelid growth by orchestrating epithelial- mesenchymal interactions.

developmental biology↗

FRIZZLED 2 regulates limb development by mediating both β-catenin-dependent and independent Wnt signaling pathways

Human Robinow Syndrome and omodysplasia, characterized by skeletal limb and craniofacial defects, are associated with mutations in the Wnt receptor FZD2. However, as FZD2 can activate both canonical and non-canonical Wnt pathways, its precise functions and mechanisms of action in limb development are unclear. To address these questions, we generated mice harboring a single nucleotide insertion in the Dishevelled-interacting domain of Fzd2 (Fzd2em1Smill), causing a frameshift mutation similar to the effects of human syndromic FZD2 mutations. Fzd2em1Smill mutant mice had shortened limbs resembling those of Robinow Syndrome and omodysplasia patients. Fzd2em1Smill mutant embryos displayed decreased canonical Wnt signaling in developing limb mesenchyme and disruption of digit chondrocyte elongation and orientation, which is controlled by the WNT5A/PCP pathway. In line with this, we found that tissue-specific disruption of Fzd2 function in limb mesenchyme caused formation of shortened bone elements and was associated with deficiency in both Wnt/{beta}-catenin and WNT5A/PCP signaling. These findings indicate that FZD2 controls limb development by mediating both canonical and non-canonical Wnt pathways and reveal causality of pathogenic FZD2 mutations in Robinow Syndrome and omodysplasia patients. Summary statementHuman FZD2 mutations are associated with limb defects; using genetic mouse models we revealed causality of these mutations and showed that they disrupt both canonical and non-canonical Wnt signaling.

developmental biology↗