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Hansen, N. W.

Publications and source records attributed to Hansen, N. W..

2 recordsLinked to original sources

Glutamate receptor-dependent cytosolic acidification in hippocampal neurons involves passive flux of protons from the extracellular space

Glutamate receptor-dependent cytosolic acidification can be induced in hippocampal neurons by pharmacological or seizure-like stimulation. This acidification is thought to arise from Ca2+ and metabolism-related processes, however, the exact underlying mechanism as well as its functional role remains uncertain. To reassess the mechanism of cytosolic acidification in excitatory hippocampal neurons and address the physiological relevance of the phenomenon, we combined pH/Ca2+ biosensors to study activity-induced pH dynamics in hippocampal neurons. First, we addressed cytosolic acidification in relation to LTP at hippocampal CA3-CA1 synapses. Using hippocampal slices from adult rats of both sexes, we show that LTP-inducing stimulation at the Schaffer collaterals evokes transient cytosolic acidification in hippocampal CA1 neurons. This highlights neuronal pH shifts as a trait of general hippocampal neurotransmission rather than a marker of excitotoxicity, possibly serving as a secondary messenger. Moreover, using dissociated hippocampal neurons from rat embryos, we show that glutamate receptor agonists typically induce larger cytosolic acid shifts compared to simple depolarization or spontaneous activity, suggesting that glutamate receptor-mediated acidification involves several separate mechanisms; pyruvate-dependent dampening of neuronal acidification may reflect a direct inhibition of NMDA receptors rather than reduced glycolytic activity, questioning the previously reported involvement of metabolism in cytosolic acidification; and whereas acid shifts induced by simple depolarization show exclusive dependence on cytosolic Ca2+, AMPA-induced acidification depends both on cytosolic Ca2+ and on an inward electrochemical driving force for protons. These results suggest that glutamate receptor-induced cytosolic acidification relies both on cytosolic Ca2+ and on a passive proton influx, possibly mediated by the receptor itself. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=166 HEIGHT=200 SRC="FIGDIR/small/624027v1_ufig1.gif" ALT="Figure 1"> View larger version (48K): org.highwire.dtl.DTLVardef@1393cfcorg.highwire.dtl.DTLVardef@d2dc9corg.highwire.dtl.DTLVardef@191b24corg.highwire.dtl.DTLVardef@50b2f3_HPS_FORMAT_FIGEXP M_FIG C_FIG Significance statementAlthough several studies report that hippocampal pyramidal neurons show significant cytosolic acidification in response to activation by drugs, epilepsy and stroke, the molecular mechanism and functional impact of the phenomenon remains uncertain. Using live imaging of both Ca and H dynamics, we demonstrate that the induction of LTP at hippocampal synapses is associated with cytosolic acidification in the postsynaptic neurons, suggesting that the cytosolic acid shifts may be a general trait of neurotransmission and related plasticity. We further revisit the mechanistic relation between the two ion systems. Our results suggest that glutamate receptor-induced cytosolic acidification involves two distinct mechanisms, one related to cytosolic Ca and another involving a passive H influx, possibly mediated by the receptor itself.

neuroscience↗

GIP receptor reduces osteoclast activity and improves osteoblast survival by activating multiple signaling pathways

Bone is a dynamic tissue that is remodeled throughout life by bone resorbing osteoclasts and bone forming osteoblasts, to adapt to physiological or mechanical demands. These processes are impaired in osteoporosis, and understanding how bone remodeling is regulated could improve anti-osteoporotic treatments. Clinical investigations show that short-term treatment with glucose-dependent insulinotropic polypeptide (GIP) acutely decreases serum markers of bone resorption and may increase bone formation. However, evidence for direct effects of GIP intracellular signaling and functions in mature human osteoclasts and osteoblasts have not been investigated. We report that the GIP receptor (GIPR) is robustly expressed in mature human osteoclasts. Exposure of osteoclasts to GIP inhibits osteoclastogenesis, delays bone resorption, and increases osteoclast apoptosis by acting upon multiple signaling pathways (cAMP, Src, Akt, calcium, p38) to impair nuclear translocation of nuclear factor of activated T cells 1 (NFATc1) and nuclear factor-{kappa}B (NF{kappa}B). Human osteoblasts also express GIPR, and GIP improves osteoblast survival via cAMP and Akt-mediated pathways. GIP treatment of co-cultures of osteoclasts and osteoblasts also decreased bone resorption. Antagonizing GIPR with GIP(3-30)NH2 abolished the effects of GIP on osteoclasts and osteoblasts. This study demonstrates that GIP inhibits bone resorption and improves survival of human osteoblasts, which could increase bone mass and strength, supporting clinical investigations of the effect of GIP on bone. Moreover, this study demonstrates that GIPR agonism could be beneficial in the treatment of disorders of bone remodeling, such as osteoporosis. One-sentence SummaryGIP acts directly on bone cells to regulate bone remodeling

cell biology↗