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Yang, Z.-S.

Publications and source records attributed to Yang, Z.-S..

2 recordsLinked to original sources

Fibroblast activation during decidualization: Embryo-derived TNFα induction of PGI2-PPARδ-ACTIVIN A pathway through luminal epithelium

ObjectivesHuman endometrium undergoes cyclical shedding and bleeding, scar-free repair and regeneration in subsequent cycles. Fibroblast activation has been shown to play a key role during normal tissue repair and scar formation. Abnormal fibroblast activation leads to fibrosis. Fibrosis is the main cause of intrauterine adhesion, uterine scaring, and thin endometrium. Endometrial decidualization is a critical step during early pregnancy. There are 75% of pregnancy failures pointed to decidualization defects. Because fibroblast activation and decidualization share similar markers, we assumed that fibroblast activation should be involved in decidualization. Materials and MethodsBoth pregnant and pseudopregnant ICR mice were used in this study. Immunofluorescence and immunohistochemistry were applied to examine fibroblast activation-related markers in mouse uteri. Western blotting was used to identify the impact on decidualization. Western blot and RT were used to show how arachidonic acid and its downstream product prostaglandin activate fibroblasts. Additionally, embryo-derived TNF was shown to stimulate the secretion of arachidonic acid by immunofluorescence, western blot, and ELASA. The aborted decidual tissues with fetal trisomy 16 were compared with control tissues. GraphPad Prism5.0 Students t test was used to compare differences between control and treatment groups ResultsFibroblast activation-related markers are obviously detected in pregnant decidua and under in vitro decidualization. ACTIVIN A secreted under fibroblast activation promotes in vitro decidualization. We showed that arachidonic acid released from uterine luminal epithelium can induce fibroblast activation and decidualization through PGI2 and its nuclear receptor PPAR-{delta}. Based on the significant difference of fibroblast activation-related markers between pregnant and pseudopregnant mice, we found that embryo-derived TNF promotes cPLA2 phosphorylation and arachidonic acid release from luminal epithelium. Fibroblast activation is also detected under human in vitro decidualization. Similar arachidonic acid-PGI2-PPAR{delta}-ACTIVIN A pathway is conserved in human endometrium. Compared to controls, fibroblast activation is obviously compromised in human decidual tissues with fetal trisomy 16. ConclusionsEmbryo-derived TNF promotes cPLA2 phosphorylation and arachidonic acid release from luminal epithelium to induce fibroblast activation and decidualization. Graphic abstract O_FIG O_LINKSMALLFIG WIDTH=144 HEIGHT=200 SRC="FIGDIR/small/509003v1_ufig1.gif" ALT="Figure 1"> View larger version (20K): org.highwire.dtl.DTLVardef@97b4edorg.highwire.dtl.DTLVardef@1e758d6org.highwire.dtl.DTLVardef@1797acaorg.highwire.dtl.DTLVardef@6c8b82_HPS_FORMAT_FIGEXP M_FIG C_FIG

developmental biology↗

Cellular Mechanisms Underlying Central Sensitization in a Mouse Model of Chronic Muscle Pain

Chronic pain disorders are often associated with psychiatric symptoms. The central nucleus of the amygdala (CeA) has emerged as an integrative hub for nociceptive and affective components during the development of central pain. Although the exact cause for this process remains unknown, prior adverse injuries are precipitating factors and thought to transform nociceptors into a primed state for chronic pain. However, the cellular basis underlying the primed state and the subsequent pain chronification remains unknown. Here, we investigated cellular and synaptic alterations of the CeA in a mouse model of chronic muscle pain. In these mice, local infusion of pregabalin, a clinically approved drug for fibromyalgia and other chronic pain disorders, into the CeA or selective inactivation of somatostatin-expressing CeA (CeA-SST) neurons during the priming phase prevented pain chronification. Further, electrophysiological recording revealed that CeA-SST neurons received increased excitatory transmission and showed enhanced excitability in chronic pain states. In line with the possible role of CeA-SST neurons in central sensitization, chemogenetic inactivation of CeA-SST neurons or pharmacological suppression of nociceptive afferents from the brainstem to CeA-SST neurons by pregabalin after the development of chronic muscle pain alleviated pain and negative emotions.

neuroscience↗