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Biology subjects

Crowe, E.

Publications and source records attributed to Crowe, E..

2 recordsLinked to original sources

Critical-Size Defect Tibialis Anterior (TA) Muscle Regeneration using Ex-Vivo Mice Hindlimbs Culturing under Dynamic Mechanical Loading

In this study, we introduced an innovative computer-controlled ex vivo mice hindlimb culturing platform operating under dynamic loading, coupled with injectable cell-laden nanofibrous matrix (PNCOL), to investigate tissue response and therapeutic outcomes in critical size defect tibialis anterior (TA) muscle regeneration. The combination of mechanical stimulation and cell therapy offers a distinctive opportunity to delve into the regenerative rehabilitation field and create sustainable solutions in musculoskeletal (MSK) tissue regeneration. The application of mechanical loading on the whole mice hindlimbs increased total bone area and marrow area suggesting an increase in periosteal bone formation and resorption on the endosteal surface. Viability assessments confirmed the sustained culturing of the samples throughout the study. Then, the effect of mechanical loading and PNCOL injection on muscle regeneration at the TA defect site was evaluated. Histological analyses revealed enhanced muscle regeneration in PNCOL-treated hindlimbs. Structural analysis of the defect area through scanning electron microscopy (SEM) showed regeneration of ECM fibers at the defect site in PNCOL-treated groups. An analysis of cytokine levels in conditioned media at the end experiment showed changes in the number of proteins with the role in wound healing, muscle regeneration WNT, and IGF-1 signaling suggesting an anabolic effect of mechanical stimulation on muscle and bone. Similarly, gene expression analysis showed a significant upregulation of PAX7, Mrf4, MYF5, and TGF{beta}1 mRNA levels, indicating enhanced muscle regeneration after coupled mechanical loading and PNCOL treatments. Lastly, immunostaining showed an increase in tissue regeneration and anti-inflammatory response (CD206) in PNCOL-treated groups. Overall, the ex vivo hindlimb organ culturing platform- maintained tissue functions under mechanical loading, while PNCOL treatment promoted muscle tissue regeneration and reduced inflammation. These findings demonstrated the potential of multidimensional approaches for enhancing therapeutic outcomes in MSK disorders. In addition, this study aligns with the growing emphasis on minimizing the number of animals used in research and developing a robust sense of responsible animal experimentation through introducing dynamic ex-vivo muscle organ culturing platform.

bioengineering↗

PPARG in osteocytes controls cell bioenergetics and systemic energy metabolism independently of sclerostin levels in circulation

ObjectiveThe skeleton is one of the largest organs in the body, wherein metabolism is integrated with systemic energy metabolism. However, the bioenergetic programming of osteocytes, the most abundant bone cells coordinating bone metabolism, is not well defined. Here, using a mouse model with partial penetration of an osteocyte-specific PPARG deletion, we demonstrate that PPARG controls osteocyte bioenergetics and their contribution to systemic energy metabolism independently of circulating sclerostin levels. MethodsIn vivo and in vitro models of osteocyte-specific PPARG deletion, i.e. Dmp1CrePpar{gamma}flfl male and female mice ({gamma}OTKO) and MLO-Y4 osteocyte-like cells with either siRNA-silenced or CRISPR/Cas9-edited Ppar{gamma}. As applicable, the models were analyzed for levels of energy metabolism, glucose metabolism, and metabolic profile of extramedullary adipose tissue, as well as the osteocyte transcriptome, mitochondrial function, bioenergetics, insulin signaling, and oxidative stress. ResultsCirculating sclerostin levels of {gamma}OTKO male and female mice were not different from control mice. Male {gamma}OTKO mice exhibited a high energy phenotype characterized by increased respiration, heat production, locomotion and food intake. This high energy phenotype in males did not correlate with "beiging" of peripheral adipose depots. However, both sexes showed a trend for reduced fat mass and apparent insulin resistance without changes in glucose tolerance, which correlated with decreased osteocytic responsiveness to insulin measured by AKT activation. The transcriptome of osteocytes isolated from {gamma}OTKO males suggested profound changes in cellular metabolism, fuel transport and usage, mitochondria dysfunction, insulin signaling and increased oxidative stress. In MLO-Y4 osteocytes, PPARG deficiency correlated with highly active mitochondria, increased ATP production, shifts in fuel utilization, and accumulation of reactive oxygen species (ROS). ConclusionsPPARG in male osteocytes acts as a molecular break on mitochondrial function, and protection against oxidative stress and ROS accumulation. It also regulates osteocyte insulin signaling and fuel usage to produce energy. These data provide insight into the connection between osteocyte bioenergetics and their sex-specific contribution to the balance of systemic energy metabolism. These findings support the concept that the skeleton controls systemic energy expenditure via osteocyte metabolism. HighlightsO_LIOsteocytes function as a body energostat via their bioenergetics C_LIO_LIPPARG protein acts as a "molecular break" of osteocyte mitochondrial activity C_LIO_LIPPARG deficiency activates TCA cycle, oxidative stress and ROS accumulation C_LIO_LIPPARG controls osteocyte insulin signaling and fuel utilization C_LI

physiology↗