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Biology subjects

Mooney, D.

Publications and source records attributed to Mooney, D..

4 recordsLinked to original sources

Development of a physiological insulin resistance model in human stem cell-derived adipocytes

Adipocytes are key regulatory cells of human metabolism, and their dysfunction in insulin signaling is central to metabolic diseases such as type II diabetes mellitus (T2D). However, the progression of insulin resistance that leads to T2D is still poorly understood. This limited understanding is due, in part, to the dearth of suitable models of insulin signaling in human adipocytes. Traditionally, in vitro adipocyte models fail to recapitulate in vivo insulin signaling, possibly due to exposure to supraphysiological nutrient and hormone conditions. Here, we have developed a sensitization protocol for human pluripotent stem cell-derived adipocytes that uses physiologically relevant nutrient conditions to produce a potent signaling response comparable to in vivo adipocytes. After systematically optimizing conditions, this protocol allows for robust insulin-stimulated glucose uptake and transcriptional insulin response. Furthermore, exposure of these sensitized adipocytes to physiologically relevant hyperinsulinemic conditions dampens insulin-stimulated glucose uptake and dysregulates transcription of insulin-responsive genes. Overall, this sensitization methodology provides a novel platform for the mechanistic study of insulin signaling and resistance using human pluripotent stem cell-derived adipocytes. TeaserA new protocol to generate hPSC-adipocytes that respond to physiological insulin levels and can model diabetes.

cell biology↗

Immune-responsive biodegradable scaffolds for enhancing neutrophil regeneration

Neutrophils are essential effector cells for mediating rapid host defense and their insufficiency arising from therapy-induced side-effects, termed neutropenia, can lead to immunodeficiency-associated complications. In autologous hematopoietic stem cell transplantation (HSCT), neutropenia is a complication that limits therapeutic efficacy. Here, we report the development and in vivo evaluation of an injectable, biodegradable hyaluronic acid (HA)-based scaffold, termed HA cryogel, with myeloid responsive degradation behavior. In mouse models of immune deficiency, we show that the infiltration of functional myeloid-lineage cells, specifically neutrophils, is essential to mediate HA cryogel degradation. Post-HSCT neutropenia in recipient mice delayed degradation of HA cryogels by up to 3 weeks. We harnessed the neutrophil-responsive degradation to sustain the release of granulocyte colony stimulating factor (G-CSF) from HA cryogels. Sustained release of G-CSF from HA cryogels enhanced post-HSCT neutrophil recovery, comparable to pegylated G-CSF, which, in turn, accelerated cryogel degradation. HA cryogels are a potential approach for enhancing neutrophils and concurrently assessing immune recovery in neutropenic hosts.

bioengineering↗

Matrix viscoelasticity controls spatio-temporal tissue organization

The spatio-temporal patterning of multicellular tissues is driven by the collective dynamics of cell proliferation and active movement. These processes are mediated by the extracellular matrix environment via a combination of biomolecular and physical cues. Here we show that the passive viscoelastic properties of the matrix that encapsulate a proliferating ball of cells (e.g. a developing organoid) play a critical role in guiding tissue organization in space and time. By varying the viscoelasticity of well-defined model matrices, we show how a spheroidal tissue of breast epithelial cells breaks symmetry and forms finger-like protrusions that invade the matrix. A computational model allows us to recapitulate these observations and leads to a phase diagram that demarcates the regions of morphological stability and instability as a function of matrix viscoelasticity, tissue viscosity, cell motility and cell division rate. Experiments that use biomolecular manipulations to independently vary these parameters confirm our predictions. To further test our theory, we also study the self-organization of an in-vitro intestinal organoid and show that the morphological changes of this system also fits within our paradigm. Altogether, our studies demonstrate the role of stress relaxation mechanisms in determining the dynamics of tissue growth and the symmetry breaking instabilities associated with branching, a fundamental process in morphogenesis and oncogenesis, and suggest ways of controlling tissue form using the extracellular matrix.

biophysics↗

Induced reprogramming of adult murine cardiomyocytes to pluripotency in vivo

Partial cell reprogramming has been demonstrated in certain mouse tissues by in situ overexpression of Oct3/4, Klf4, Sox2 and cMyc (OKSM) transcription factors, and can induce rejuvenation and/or augment regeneration. Reprogramming of adult cardiomyocytes has been elusive until recently, but its success could help overcome the lack of endogenous regenerative capacity of the mammalian myocardium. Here, we generated cardiomyocyte-specific, doxycycline-inducible, reprogrammable mice and demonstrated that sustained OKSM induction reprograms cardiomyocytes fully into teratoma-forming pluripotent cells. However, we also showed that cyclic OKSM upregulation induces significant decrease of epigenetic age in the cardiomyocytes without de-differentiation or reacquisition of pluripotency. In mice with progressive heart failure, cardiomyocyte epigenetic rejuvenation correlated with stabilization of systolic heart function. These findings confirm that OKSM can reprogram adult mouse cardiomyocytes to different states depending on the duration of their expression, and provide further evidence that partially reprogrammed cardiomyocytes may contribute to ameliorate cardiac disease.

developmental biology↗