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Biology subjects

Varner, V. D.

Publications and source records attributed to Varner, V. D..

4 recordsLinked to original sources

Lats1/2 are essential for developmental vascular remodeling and biomechanical adaptation to shear stress

Blood vessels in mammalian embryos develop from initial aggregates of endothelial cell (EC) progenitors, which coordinate the opening and stabilization of central vascular lumens, all while under progressively increasing flow and pressure from blood circulation. Mechanical cues exerted by shear stress from the blood flow remodel an initial vascular plexus into a ramifying array of large and small vessels. As plasma starts to fill vascular lumens, these forces trigger changes in EC gene expression and dynamic alterations in cell shape and cell adhesion, as cuboidal angioblasts elongate and flatten into ECs. Little is known about how embryonic ECs sense and transduce hemodynamic signals as vessels form in vivo. Here, we report a critical requirement for the Lats1 and Lats2 Hippo pathway kinases during this process. We show that when Lats1/2 are genetically deleted in ECs, embryos develop severe defects in blood vessel formation, which lead to embryonic lethality by E11.5. We find that initial vessel patterning and circulation initiate properly, however remodeling of the initial vascular plexus fails due to lumen collapse and altered blood flow. When Lats1/2 are knocked down using siRNA approaches in cultured ECs, cells fail to elongate and polarize, similar to ECs in the mutant embryos. In addition, VE-cadherin (VEcad) based junctions fail to mature under shear stress. These data show that Lats1/2 deficient cells no longer respond to laminar shear stress, both in vivo and in vitro. This work identifies the Hippo pathway kinases Lats1 and Lats2 as critical transducers of biomechanical cues during the early steps of blood vessel remodeling. This study will provide new targets for treatment of vascular diseases and new directions for efforts to generate vascularized tissues for replacement therapies. HighlightsO_LILats1 and Lats2 mRNA and protein are expressed in murine embryonic endothelial cells (ECs). C_LIO_LIDeletion of Lats1/2 in embryonic endothelium results in severe vascular defects and embryonic lethality. C_LIO_LILoss of Lats1/2 leads to failure of both vascular remodeling and EC elongation upon exposure to flow, in vivo and in vitro. C_LIO_LILats1/2 are required for cell-cell VE-cadherin adhesion maturation under flow. C_LIO_LILoss of Lats1/2 results in cytoskeletal disorganization in response to shear stress. C_LI

developmental biology↗

Photo-induced changes in tissue stiffness alter epithelial budding morphogenesis in the embryonic lung

Extracellular matrix (ECM) stiffness has been shown to influence the differentiation of progenitor cells in culture, but a lack of tools to perturb the mechanical properties within intact embryonic organs has made it difficult to determine how changes in tissue stiffness influence organ patterning and morphogenesis. Photocrosslinking of the ECM has been successfully used to stiffen soft tissues, such as the cornea and skin, which are optically accessible, but this technique has not yet been applied to developing embryos. Here, we use photocrosslinking with Rose Bengal (RB) to locally and ectopically stiffen the pulmonary mesenchyme of explanted embryonic lungs cultured ex vivo. This change in mechanical properties was sufficient to suppress FGF-10-mediated budding morphogenesis along the embryonic airway, without negatively impacting patterns of cell proliferation or apoptosis. A computational model of airway branching was used to determine that FGF-10-induced buds form via a growth-induced buckling mechanism and that increased mesenchymal stiffness is sufficient to inhibit epithelial buckling. Taken together, our data demonstrate that photocrosslinking can be used to create regional differences in mechanical properties within intact embryonic organs and that these differences influence epithelial morphogenesis and patterning. Further, this photocrosslinking assay can be readily adapted to other developing tissues and model systems.

bioengineering↗

Treatment with both TGF-β1 and PDGF-BB disrupts the stiffness-dependent myofibroblast differentiation of corneal keratocytes

During corneal wound healing, stromal keratocytes transform into a repair phenotype that is driven by the release of cytokines, like transforming growth factor-beta 1 (TGF-{beta}1) and platelet-derived growth factor-BB (PDGF-BB). Previous work has shown that TGF-{beta}1 promotes the myofibroblast differentiation of corneal keratocytes in a manner that depends on PDGF signaling. In addition, changes in mechanical properties are known to regulate the TGF-{beta}1-mediated differentiation of cultured keratocytes. While PDGF signaling acts synergistically with TGF-{beta}1 during myofibroblast differentiation, how treatment with multiple growth factors affects stiffness-dependent differences in keratocyte behavior is unknown. Here, we treated primary corneal keratocytes with PDGF-BB and TGF-{beta}1 and cultured them on polyacrylamide (PA) substrata of different stiffnesses. In the presence of TGF-{beta}1 alone, the cells underwent stiffness-dependent myofibroblast differentiation. On stiff substrata, the cells developed robust stress fibers, exhibited high levels of -SMA staining, formed large focal adhesions (FAs), and exerted elevated contractile forces, whereas cells in a compliant microenvironment showed low levels of -SMA immunofluorescence, formed smaller focal adhesions, and exerted decreased contractile forces. When the cultured keratocytes were treated simultaneously with PDGF-BB however, increased levels of -SMA staining and stress fiber formation were observed on compliant substrata, even though the cells did not exhibit elevated contractility or focal adhesion size. Pharmacological inhibition of PDGF signaling disrupted the myofibroblast differentiation of cells cultured on substrata of all stiffnesses. These results indicate that treatment with PDGF-BB can decouple molecular markers of myofibroblast differentiation from the elevated contractile phenotype otherwise associated with these cells, suggesting that crosstalk in the mechanotransductive signaling pathways downstream of TGF-{beta}1 and PDGF-BB can regulate the stiffness-dependent differentiation of cultured keratocytes. Statement of SignificanceIn vitro experiments have shown that changes in ECM stiffness can regulate the differentiation of myofibroblasts. Typically, these assays involve the use of individual growth factors, but it is unclear how stiffness-dependent differences in cell behavior are affected by multiple cytokines. Here, we used primary corneal keratocytes to show that treatment with both TGF-{beta}1 and PDGF-BB disrupts the dependency of myofibroblast differentiation on substratum stiffness. In the presence of both growth factors, keratocytes on soft substrates exhibited elevated -SMA immunofluorescence without a corresponding increase in contractility or focal adhesion formation. This result suggests that molecular markers of myofibroblast differentiation can be dissociated from the elevated contractile behavior associated with the myofibroblast phenotype, suggesting potential crosstalk in mechanotransductive signaling pathways downstream of TGF-{beta}1 and PDGF-BB.

bioengineering↗

Investigating transcriptional differences in mechanotransductive and ECM related genes in cultured primary corneal keratocytes, fibroblasts and myofibroblasts

PurposeAfter stromal injury to the cornea, the release of growth factors and pro-inflammatory cytokines promotes the activation of quiescent keratocytes into a migratory fibroblast and/or fibrotic myofibroblast phenotype. Persistence of the myofibroblast phenotype can lead to corneal fibrosis and scarring, which are leading causes of blindness worldwide. This study aims to establish comprehensive transcriptional profiles for cultured corneal keratocytes, fibroblasts, and myofibroblasts to gain insights into the mechanisms through which these phenotypic changes occur. MethodsPrimary rabbit corneal keratocytes were cultured in either defined serum-free media (SF), fetal bovine serum (FBS) containing media, or in the presence of TGF-{beta}1 to induce keratocyte, fibroblast, or myofibroblast phenotypes, respectively. Bulk RNA sequencing followed by bioinformatic analyses was performed to identify significant differentially expressed genes (DEGs) and enriched biological pathways for each phenotype. ResultsGenes commonly associated with keratocytes, fibroblasts, or myofibroblasts showed high relative expression in SF, FBS, or TGF-{beta}1 culture conditions, respectively. Differential expression and functional analyses revealed novel DEGs for each cell type, as well as enriched pathways indicative of differences in proliferation, apoptosis, extracellular matrix (ECM) synthesis, cell-ECM interactions, cytokine signaling, and cell mechanics. ConclusionsOverall, these data demonstrate distinct transcriptional differences among cultured corneal keratocytes, fibroblasts, and myofibroblasts. We have identified genes and signaling pathways that may play important roles in keratocyte differentiation, including many related to mechanotransduction and ECM biology. Our findings have revealed novel molecular markers for each cell type, as well as possible targets for modulating cell behavior and promoting physiological corneal wound healing.

bioengineering↗