The FASEB Journal · 2020 · 32 citations · 44 references
DysbiosisGeneticsRetinoic AcidCell ProliferationCellular PhysiologyOxidative StressCell RegulationIntestinal MicrobiotaMetabolic SignalingCell SignalingMolecular SignalingHealth SciencesMolecular PhysiologyMicrobiotaMuscle Progenitor CellsGut Microbiota HomeostasisMolecular MicrobiologyMicrobiomeGene ExpressionCell BiologyDysbacteriosis‐induced Lps ElevationDevelopmental BiologyMetabolic RegulationMicrobiologyGut BarrierGut Microbiota DysbiosisMedicineCell Development
Whether myogenesis is affected by the maternal gut dysbacteriosis still remains ambiguous. In this study, first we show the elevated level of lipopolysaccharides (LPS) in a gut microbiota dysbiosis mouse model. Second, we demonstrate that the diameter of muscle fibers, limb development, and somitogenesis were inhibited in both the gut microbiota dysbiosis and LPS exposed mice and chicken embryos. These might be due to LPS disturbed the cell survival and key genes which regulate the somitogenesis and myogenesis. RNA sequencing and subsequent validation experiments verified that retinoic acid (RA) signaling perturbation was mainly responsible for the aberrant somite formation and differentiation. Subsequently, we found that LPS-induced reactive oxygen species (ROS generation and antioxidant genes such as Nrf2, AKR1B10) contributed to the above -mentioned interference with RA signaling. These findings highlight that the gut microbiota homeostasis is also involved in regulating the development of muscle progenitor cells during pregnancy.
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Acetate mediates a microbiome–brain–β-cell axis to promote metabolic syndrome
Rachel J. Perry, Liang Peng, Natasha A. Barry et al. · Nature · 2016 · 1.3K citations
Expression of a Delta homologue in prospective neurons in the chick
Domingos Henrique, Julie Adam, Anna Myat et al. · Nature · 1995 · 1K citations
Delta Homologue, Neural Mechanism, Molecular Neuroscience +11