Role of Plasma Membrane Calcium ATPases in Calcium Clearance from Olfactory Sensory Neurons
Odorants cause Ca2+ to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell body. Ca2+ not only excites but also produces negative feedback on the transduction pathway. To relieve this Ca2+-dependent adaptation, Ca2+ must...
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Published in | Chemical senses Vol. 34; no. 4; pp. 349 - 358 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
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Oxford University Press
01.05.2009
Oxford Publishing Limited (England) |
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Abstract | Odorants cause Ca2+ to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell body. Ca2+ not only excites but also produces negative feedback on the transduction pathway. To relieve this Ca2+-dependent adaptation, Ca2+ must be cleared from the cilia and dendritic knob by mechanisms that are not well understood. This work focuses on the roles of plasma membrane calcium pumps (PMCAs) through the use of inhibitors and mice missing 1 of the 4 PMCA isoforms (PMCA2). We demonstrate a significant contribution of PMCAs in addition to contributions of the Na+/Ca2+ exchanger and endoplasmic reticulum (ER) calcium pump to the rate of calcium clearance after OSN stimulation. PMCAs in neurons can shape the Ca2+ signal. We discuss the contributions of the specific PMCA isoforms to the shape of the Ca2+ transient that controls signaling and adaptation in OSNs. |
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AbstractList | Odorants cause Ca
2+
to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell body. Ca
2+
not only excites but also produces negative feedback on the transduction pathway. To relieve this Ca
2+
-dependent adaptation, Ca
2+
must be cleared from the cilia and dendritic knob by mechanisms that are not well understood. This work focuses on the roles of plasma membrane calcium pumps (PMCAs) through the use of inhibitors and mice missing 1 of the 4 PMCA isoforms (PMCA2). We demonstrate a significant contribution of PMCAs in addition to contributions of the Na
+
/Ca
2+
exchanger and endoplasmic reticulum (ER) calcium pump to the rate of calcium clearance after OSN stimulation. PMCAs in neurons can shape the Ca
2+
signal. We discuss the contributions of the specific PMCA isoforms to the shape of the Ca
2+
transient that controls signaling and adaptation in OSNs. Odorants cause Ca2+ to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell body. Ca2+ not only excites but also produces negative feedback on the transduction pathway. To relieve this Ca2+ -dependent adaptation, Ca2+ must be cleared from the cilia and dendritic knob by mechanisms that are not well understood. This work focuses on the roles of plasma membrane calcium pumps (PMCAs) through the use of inhibitors and mice missing 1 of the 4 PMCA isoforms (PMCA2). We demonstrate a significant contribution of PMCAs in addition to contributions of the Na+ /Ca2+ exchanger and endoplasmic reticulum (ER) calcium pump to the rate of calcium clearance after OSN stimulation. PMCAs in neurons can shape the Ca2+ signal. We discuss the contributions of the specific PMCA isoforms to the shape of the Ca2+ transient that controls signaling and adaptation in OSNs. Odorants cause Ca[sup]2+ to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell body. Ca[sup]2+ not only excites but also produces negative feedback on the transduction pathway. To relieve this Ca[sup]2+-dependent adaptation, Ca[sup]2+ must be cleared from the cilia and dendritic knob by mechanisms that are not well understood. This work focuses on the roles of plasma membrane calcium pumps (PMCAs) through the use of inhibitors and mice missing 1 of the 4 PMCA isoforms (PMCA2). We demonstrate a significant contribution of PMCAs in addition to contributions of the Na[sup]+/Ca[sup]2+ exchanger and endoplasmic reticulum (ER) calcium pump to the rate of calcium clearance after OSN stimulation. PMCAs in neurons can shape the Ca[sup]2+ signal. We discuss the contributions of the specific PMCA isoforms to the shape of the Ca[sup]2+ transient that controls signaling and adaptation in OSNs. Odorants cause Ca(2+) to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell body. Ca(2+) not only excites but also produces negative feedback on the transduction pathway. To relieve this Ca(2+)-dependent adaptation, Ca(2+) must be cleared from the cilia and dendritic knob by mechanisms that are not well understood. This work focuses on the roles of plasma membrane calcium pumps (PMCAs) through the use of inhibitors and mice missing 1 of the 4 PMCA isoforms (PMCA2). We demonstrate a significant contribution of PMCAs in addition to contributions of the Na(+)/Ca(2+) exchanger and endoplasmic reticulum (ER) calcium pump to the rate of calcium clearance after OSN stimulation. PMCAs in neurons can shape the Ca(2+) signal. We discuss the contributions of the specific PMCA isoforms to the shape of the Ca(2+) transient that controls signaling and adaptation in OSNs. |
Author | Weeraratne, S.D. Van Houten, Judith L. Valentine, M. Delay, R. Saidu, S. Ponissery |
AuthorAffiliation | 1 Department of Biology and Vermont Chemosensory Group, University of Vermont, Burlington, VT 05405, USA 2 Department of Neurology, Harvard Medical School, Children's Hospital, Boston, MA 02115, USA |
AuthorAffiliation_xml | – name: 1 Department of Biology and Vermont Chemosensory Group, University of Vermont, Burlington, VT 05405, USA – name: 2 Department of Neurology, Harvard Medical School, Children's Hospital, Boston, MA 02115, USA |
Author_xml | – sequence: 1 givenname: S. Ponissery surname: Saidu fullname: Saidu, S. Ponissery organization: Department of Biology and Vermont Chemosensory Group, University of Vermont, Burlington, VT 05405, USA – sequence: 2 givenname: S.D. surname: Weeraratne fullname: Weeraratne, S.D. organization: Department of Neurology, Harvard Medical School, Children's Hospital, Boston, MA 02115, USA – sequence: 3 givenname: M. surname: Valentine fullname: Valentine, M. organization: Department of Biology and Vermont Chemosensory Group, University of Vermont, Burlington, VT 05405, USA – sequence: 4 givenname: R. surname: Delay fullname: Delay, R. organization: Department of Biology and Vermont Chemosensory Group, University of Vermont, Burlington, VT 05405, USA – sequence: 5 givenname: Judith L. surname: Van Houten fullname: Van Houten, Judith L. email: judith.vanhouten@uvm.edu organization: Department of Biology and Vermont Chemosensory Group, University of Vermont, Burlington, VT 05405, USA |
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Keywords | mouse pumps calcium kinetics PMCA olfactory neurons Calcium Rodentia Clearance Vertebrata Mammalia Mouse Animal Plasma membrane Olfaction Perception Sensory neuron Kinetics |
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Snippet | Odorants cause Ca2+ to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell body.... Odorants cause Ca(2+) to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell... Odorants cause Ca[sup]2+ to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell... Odorants cause Ca 2+ to rise in olfactory sensory neurons (OSNs) first within the ciliary compartment, then in the dendritic knob, and finally in the cell... |
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SubjectTerms | Animals Biological and medical sciences calcium Calcium - metabolism Cell Membrane - enzymology Cells, Cultured Colforsin - pharmacology Enzyme Inhibitors - pharmacology Fundamental and applied biological sciences. Psychology Gene Knockout Techniques Indoles - pharmacology Kinetics Mice Mice, Inbred C57BL Mice, Knockout mouse Olfaction. Taste olfactory neurons Olfactory Receptor Neurons - drug effects Olfactory Receptor Neurons - enzymology Perception Plasma Membrane Calcium-Transporting ATPases - metabolism PMCA Protein Isoforms - metabolism Psychology. Psychoanalysis. Psychiatry Psychology. Psychophysiology pumps Sodium - metabolism Sodium-Calcium Exchanger - metabolism |
Title | Role of Plasma Membrane Calcium ATPases in Calcium Clearance from Olfactory Sensory Neurons |
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