Long-term depression (LTD) is a form of synaptic plasticity that may contribute to information storage in the central nervous system. Here we report that LTD can be elicited in layer 5 pyramidal neurons of the rat prefrontal cortex by pairing low frequency stimulation with a modest postsynaptic depolarization. The induction of LTD required the activation of both metabotropic glutamate receptors of the mGlu1 subtype and voltage-sensitive Ca(2+) channels (VSCCs) of the T/R, P/Q and N types, leading to the stimulation of intracellular inositol trisphosphate (IP3) receptors by IP3 and Ca(2+). The subsequent release of Ca(2+) from intracellular stores activated the protein phosphatase cascade involving calcineurin and protein phosphatase 1. The activation of purinergic P2Y(1) receptors blocked LTD. This effect was prevented by P2Y(1) receptor antagonists and was absent in mice lacking P2Y(1) but not P2Y(2) receptors. We also found that activation of P2Y(1) receptors inhibits Ca(2+) transients via VSCCs in the apical dendrites and spines of pyramidal neurons. In addition, we show that the release of ATP under hypoxia is able to inhibit LTD by acting on postsynaptic P2Y(1) receptors. In conclusion, these data suggest that the reduction of Ca(2+) influx via VSCCs caused by the activation of P2Y(1) receptors by ATP is the possible mechanism for the inhibition of LTD in prefrontal cortex.
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http://dx.doi.org/10.1016/j.neuropharm.2010.05.013 | DOI Listing |
Activation of PLCβ enzymes by G and G proteins is a common mechanism to trigger cytosolic Ca increase. We and others reported that G inhibitor FR900358 (FR) can inhibit both and G- and, surprisingly, G-mediated intracellular Ca mobilization. Thus, the G-G-PLCβ-Ca signaling axis depends entirely on the presence of active G, which reasonably explained FR-inhibited G-induced Ca release.
View Article and Find Full Text PDFPurinergic Signal
November 2024
Department of Physiology, Michigan State University, 567 Wilson Road, East Lansing, MI, 48824, USA.
Purines are important mediators of intercellular communication in the enteric nervous system (ENS) that participate in physiological gut functions and disease. Purinergic transmission is prominent in mechanisms of crosstalk between enteric neurons and glia where enteric glia exhibit high responsiveness to adenosine diphosphate (ADP) through P2Y receptors and neurons to adenosine triphosphate (ATP) through P2X receptors. Despite functional data suggesting that enteric glia are the primary site of P2Y expression in the ENS, gene sequencing suggests that P2Y expression is more enriched in neurons than glia.
View Article and Find Full Text PDFJ Physiol
December 2024
Department of Physiology and Cell Biology, University of Nevada, Reno School of Medicine, Reno, NV, USA.
The peristaltic reflex has been a central concept in gastrointestinal motility; however, evidence was published recently suggesting that post-stimulus responses that follow inhibitory neural responses provide the main propulsive force in colonic motility. This new concept was based on experiments on proximal colon where enteric inhibitory neural inputs are mainly nitrergic. However, the nature of inhibitory neural inputs changes from proximal to distal colon where purinergic inhibitory regulation dominates.
View Article and Find Full Text PDFCNS Neurosci Ther
November 2024
State Key Laboratory of Bioactive Substances and Function of Natural Medicines, Institute of Materia Medica, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, China.
Aim: Potassium 2-(1-hydroxypentyl)-benzoate (dl-PHPB), puerarin and salvianolic acid B are three natural products or derivatives that can inhibit platelet aggregation. However, the mechanisms of dl-PHPB, puerarin and salvianolic acid B to inhibit platelet aggregation are still not clear.
Method: Here, 2-methylthioadenosine diphosphate (2-MeSADP) was used as an inducer to confirm the effects of three drugs on platelet aggregation and illustrate the corresponding mechanisms.
ArXiv
October 2024
Department of Mathematics, University of Utah, Salt Lake City, UT, 84112.
Through experimental studies, many details of the pathway of integrin activation by ADP during the platelet aggregation process have been mapped out. ADP binds to two separate G protein coupled receptors on platelet surfaces, leading to alterations in the regulation of the small GTPase RAP1. We seek to (1) gain insights into the relative contributions of both pathways to RAP1-mediated integrin activation and to (2) predict cell behavior in response to a continuous range of external agonist concentrations.
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