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 inChemical senses Vol. 34; no. 4; pp. 349 - 358
Main Authors Saidu, S. Ponissery, Weeraratne, S.D., Valentine, M., Delay, R., Van Houten, Judith L.
Format Journal Article
LanguageEnglish
Published Oxford 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.
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
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Issue 4
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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StartPage 349
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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https://search.proquest.com/docview/20584314
https://search.proquest.com/docview/67154302
https://pubmed.ncbi.nlm.nih.gov/PMC2671884
Volume 34
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