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Purpose Of Review: This review evaluates the known mechanisms of regulating erythroid regeneration via the sterile alpha motif protein-14 ( Samd14 ) enhancer, Samd14's role in stem cell factor/Kit and erythropoietin (Epo) signaling, possible SAMD14 functions beyond erythropoiesis, and extrapolation to other anemia-response pathways.
Recent Findings: Samd14 expression is controlled by an anemia-activated E-box-GATA transcriptional enhancer required for erythroid regeneration, and the Samd14 protein is needed for acute anemia recovery. Samd14 interacts with actin capping proteins to elevate Kit signaling via MAPK and PI3K/Akt pathways in stress erythroid precursors and promotes Epo signaling at later stages. Whereas canonical cellular stress transcriptional mechanisms are involved in anemia (e.g. hypoxia-inducible HSF1, Nrf2, ATF4, and others), enhancers with sequence and molecular features resembling the Samd14 S14E cis -element - occupied by GATA1 and TAL1 - regulate anemia-activated proteins. Relative to physiological replacement of red blood cells, unique signaling cues are involved in erythroid regeneration at multiple stages.
Summary: Anemia-activated proteins coordinate an acute increase in red blood cell production from erythroid progenitors to regenerate lost cells and restore homeostasis. The Samd14 locus provides an exemplary examination of cell signaling - through both stem cell factor/Kit and Epo as well as transcriptional mechanisms involved in erythroid regeneration.
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http://dx.doi.org/10.1097/MOH.0000000000000873 | DOI Listing |
J Adv Res
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State Key Laboratory of Oral & Maxillofacial Reconstruction and Regeneration, National Clinical Research Center for Oral Diseases, Shaanxi International Joint Research Center for Oral Diseases, Department of Oral Anatomy and Physiology and TMD, School of Stomatology, The Fourth Military Medical Univ
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Department of Anatomy and Cell Biology, Schulich School of Medicine and Dentistry, Western University, London, Ontario, Canada.
Pig skin represents the best analogue for human skin both anatomically and physiologically, with this model used extensively for pre-clinical testing of therapeutics and biomaterials. However, the molecular processes underlying re-epithelialisation in pigs are still not well described compared to murine models. Our objective was to characterise the re-epithelialisation process in porcine full-thickness excisional wounds in Yorkshire pigs.
View Article and Find Full Text PDFInt J Mol Sci
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Department of Medicine and Health Sciences 'V. Tiberio', University of Molise, 86100 Campobasso, Italy.
The use of a wide variety of antioxidants has been advocated as a means to prevent, delay the progression of, or counteract the adverse consequences of sarcopenia, such as loss of muscle strength, muscle quantity/quality, and physical performance. However, these proposals do not always appear to be supported in the literature by a thorough understanding of the contribution of redox perturbations to the pathogenesis of sarcopenia, nor of the biochemical properties, mechanism of action, pharmacokinetics, and pharmacodynamics of different antioxidants. This review discusses these aspects, aiming to provide a rationale for the selection and use of antioxidants in sarcopenia.
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Department of Orthopedics, The Affiliated Hospital of Qingdao University, Qingdao, China.
The accumulation of reactive oxygen species (ROS) leads to enhanced osteoclast activity, causing severe bone destruction in postmenopausal osteoporosis. Immunity-related GTPase family M member 1 (Irgm1) plays an essential role in affecting the production of intracellular ROS. To detect whether deletion of Irgm1 could suppress osteoclastogenesis through cellular redox regulation, we first evaluated whether the Irgm1 level was significantly elevated in mice bone marrow-derived monocytes/macrophages (BMDMs) from ovariectomy (OVX)-induced osteoporosis mice.
View Article and Find Full Text PDFFront Immunol
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Department of Critical Care Medicine, The Second Affiliated Hospital of Zunyi Medical University, Zunyi, China.
Bacterial Sepsis-Associated acute lung injury (ALI) and its progression to acute respiratory distress syndrome (ARDS) are clinically prevalent critical conditions with high morbidity and mortality. As a vital component of lung tissue, alveolar epithelial cells (AECs) play a crucial role in maintaining pulmonary homeostasis and are deeply involved in the pathophysiological processes of bacterial Sepsis-Associated ALI. This review systematically summarizes the pathophysiological changes in AECs during bacterial sepsis, focusing on oxidative stress, programmed cell death, and disruption of the epithelial barrier.
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