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Biology subjects

Ryan, A. K.

Publications and source records attributed to Ryan, A. K..

4 recordsLinked to original sources

Increased tissue tension caused by depletion of CLDN3 in the non-neural ectoderm causes neural fold fusion defects in chick embryos

Neural tube morphogenesis provides a dynamic setting in which to study epithelial cell behaviours. Members of the claudin family of tight junction proteins regulate apical epithelial cell behaviors at all steps of neural tube development. We discovered that CLDN3, expressed in the non-neural ectoderm but not the neural ectoderm, is required to mediate neural fold fusion in chick embryos, particularly in the spinal region of the embryo. Depleting CLDN3 affects apical protein localization and apical domain morphology. Here, we used live imaging to re-examine the process of neural fold fusion in the cranial and spinal regions of the embryo and assessed biomechanical parameters of the non-neural ectoderm that are dependent on CLDN3. Our live imaging confirmed previous reports that unlike neural fold fusion in the cranial region and posterior neuropore, the spinal region does not depend on progressive fusion driven by "zippering" cell behaviors but instead fuses in a multi-step process where contact occurs simultaneously at multiple points along the anterior-posterior axis. We and others refer to the process of spinal neural fold fusion as "buttoning" to highlight the differences in cell behaviors from those observed during zippering (van Straaten et al., 1993). CLDN3-depletion decreased the rate of progression of neural fold buttoning within the spinal region. Using cell segmentation analyses we confirmed that CLDN3 depletion decreased the apical cell area of cells at the edges of the neural folds but not of lateral cells in the non-neural ectoderm. CLDN3 depletion increased pMLC staining within the apical domain of the cell, coinciding with a decrease in cell area, suggesting increased epithelial tension. Laser ablation studies revealed that the non-neural ectoderm of CLDN3-depleted embryos exhibits higher tension during neural fold fusion. We showed that treatment with the myosin II inhibitor blebbistatin is sufficient to partially rescue the neural fold fusion defects in CLDN3-depleted embryos. This work provides further evidence for the importance of non-neural ectodermal tissue tension in neural fold fusion and suggests that loss of CLDN3 may alter tissue tension through cytoskeletal regulation pathways within the apical domain. This work supports that CLDN3 contributes to neural fold fusion and epithelial tissue tension during neural fold fusion via modifications to the apical cytoskeleton. SummaryWe found that the tight junction protein Claudin-3 (CLDN3) plays a role in regulating tissue tension, by directing actomyosin contraction and apical cell shape/size changes essential for chick neural fold fusion.

developmental biology↗

Torsion-Induced Traumatic Optic Neuropathy (TITON): A Physiologically Relevant Animal Model of Traumatic Optic Neuropathy

Traumatic optic neuropathy (TON) is a common cause of irreversible blindness following head injury. TON is characterized by axon damage in the optic nerve followed by retinal ganglion cell death in the days and weeks following injury. At present, no therapeutic or surgical approach has been found to offer any benefit beyond observation alone. This is due in part to the lack of translational animal models suitable for understanding mechanisms and evaluating candidate treatments. In this study, we developed a rat model of TON in which the eye is rapidly rotated, inflicting mechanical stress on the optic nerve and leading to significant visual deficits. These functional deficits were thoroughly characterized up to one week after injury using electrophysiology and immunohistochemistry. The photopic negative response (PhNR) of the light adapted full field electroretinogram (LA ffERG) was significantly altered following injury. This correlated with increased biomarkers of retinal stress, axon disruption, and cell death. Together, this evidence suggests the utility of our model for mimicking clinically relevant TON and that the PhNR may be an early diagnostic for TON. Future studies will utilize this animal model for evaluation of candidate treatments.

bioengineering↗

Mouse nephron formation is impaired by moderate-dose arsenical exposure

BackgroundArsenic is a naturally occurring toxicant and industrial byproduct with significant health risks. Globally, millions of people are exposed to arsenic concentrations that exceed the World Health Organizations recommended limit of 10 g/L. Chronic arsenic exposure is linked to an increased risk of chronic kidney disease (CKD); however, the effects of arsenic exposure on kidney development remain unclear. Eukaryotes methylate inorganic arsenic (iAsIII) using the enzyme arsenic 3 methyltransferase (As3mt), that converts it to methylated intermediates, mono and dimethyl arsonous acid (MMAIII and DMAIII), and mono and dimethyl arsonic acid (MMAV and DMAV). We hypothesized that arsenicals exposure during mouse kidney development impairs nephron formation. MethodsCultured mouse embryonic kidney explants were treated with inorganic arsenite (iAsIII), MMAIII, MMAV, and DMAV. Female mice harboring a humanized version of AS3MT and wild-type mice with murine As3mt were exposed to iAsIII throughout gestation and weaning and their offspring were analyzed for kidney defects. ResultsInorganic arsenic, iAsIII (200 g/L), inhibited ureteric bud branching morphogenesis and growth of mouse kidneys at embryonic day 11.5 (E11.5) and E12.5, but not at E13.5. MMAIII, but not MMAV or DMAV, impaired ureteric bud branching and kidney explant growth. Additionally, iAsIII exposure increased apoptosis in the metanephric mesenchyme of E11.5 explants and decreased Gdnf transcription, which may explain the impairment in ureteric bud branching. Humanized mouse pups exposed to 200 g/L iAsIII in utero, showed a 20% reduction in kidney weight normalized to body weight and a 28% reduction in nephron number, compared to kidneys of wild-type mice. ConclusionExposure to arsenicals during embryonic development impairs ureteric bud branching morphogenesis and decreases nephron endowment, which may predispose to CKD in adulthood.

developmental biology↗

An optical aptamer-based cytokine nanosensor detects macrophage activation by bacterial toxins

Overactive or dysregulated cytokine expression is hallmark of many acute and chronic inflammatory diseases. This is true for acute or chronic infection, neurodegenerative diseases, autoimmune diseases, cardiovascular disease, cancer, and others. Cytokines such as interleukin-6 (IL-6) are known therapeutic targets and biomarkers for such inflammatory diseases. Platforms for cytokine detection are therefore desirable tools for both research and clinical applications. Single-walled carbon nanotubes (SWCNT) are versatile nanomaterials with near-infrared fluorescence that can serve as transducers for optical sensors. When functionalized with an analyte-specific recognition element, SWCNT emission may become sensitive and selective towards the desired target. SWCNT-aptamer sensors are easily assembled, inexpensive, and biocompatible. In this work, we introduced a nanosensor design based on SWCNT and a DNA aptamer specific to IL-6. We first evaluated several SWCNT-aptamer constructs based on this simple direct complexation method, wherein the aptamer both solubilizes the SWCNT and confers sensitivity to IL-6. The sensor limit of detection, 105 ng/mL, lies in the relevant range for pathological IL-6 levels. Upon investigation of sensor kinetics, we found rapid response within seconds of antigen addition which continued over the course of three hours. We found that this sensor construct is stable, and the aptamer is not displaced from the nanotube surface during IL-6 detection. Finally, we investigated the ability of this sensor construct to detect macrophage activation caused by bacterial lipopolysaccharides (LPS) in an in vitro model of disease, finding rapid and sensitive detection of macrophage-expressed IL-6. We are confident further development of this sensor will have novel implications for diagnosis of acute and chronic inflammatory diseases, in addition to contributing to the understanding of the role of cytokines in these diseases.

bioengineering↗