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Redefining the components of central CO2 chemosensitivity--towards a better understanding of mechanism
Robert T R Huckstepp1, Nicholas Dale
1UCLA, Los Angeles, CA, USA.
Abstract:
The field of CO(2) chemosensitivity has developed considerably in recent years. There has been a mounting number of competing nuclei proposed as chemosensitive along with an ever increasing list of potential chemosensory transducing molecules. Is it really possible that all of these areas and candidate molecules are involved in the detection of chemosensory stimuli? How do we discriminate rigorously between molecules that are chemosensory transducers at the head of a physiological reflex versus those that just happen to display sensitivity to a chemosensory stimulus? Equally, how do we differentiate between nuclei that have a primary chemosensory function, versus those that are relays in the pathway? We have approached these questions by proposing rigorous definitions for the different components of the chemosensory reflex, going from the salient molecules and ions, through the components of transduction to the identity of chemosensitive cells and chemosensitive nuclei. Our definitions include practical and rigorous experimental tests that can be used to establish the identity of these components. We begin by describing the need for central CO(2) chemosensitivity and the problems that the field has faced. By comparing chemosensory mechanisms to those in the visual system we suggest stricter definitions for the components of the chemosensory pathway. We then, considering these definitions, re-evaluate current knowledge of chemosensory transduction, and propose the 'multiple salient signal hypothesis' as a framework for understanding the multiplicity of transduction mechanisms and brain areas seemingly involved in chemosensitivity.
Insights
This study proposes rigorous definitions and experimental tests to identify central carbon dioxide (CO2) chemosensitive cells and nuclei. It introduces the "multiple salient signal hypothesis" to explain CO2 chemosensitivity mechanisms.
Area of Science:
- Neuroscience
- Physiology
Background:
- The field of carbon dioxide (CO2) chemosensitivity has expanded rapidly, with numerous proposed chemosensitive nuclei and transducing molecules.
- Distinguishing primary chemosensory functions from relay pathways and true transducers from mere responders remains a challenge.
Purpose of the Study:
- To propose rigorous definitions and experimental tests for identifying components of the chemosensory reflex.
- To re-evaluate current knowledge of chemosensory transduction in light of these definitions.
- To introduce a framework for understanding the complexity of CO2 chemosensitivity.
Main Methods:
- Comparison of chemosensory mechanisms to the visual system.
- Development of strict definitions for chemosensory pathway components.
- Re-evaluation of existing data on chemosensory transduction.
Main Results:
- Proposed definitions for salient molecules, transduction components, chemosensitive cells, and nuclei.
- Established experimental criteria for identifying these components.
- Introduced the 'multiple salient signal hypothesis' to explain observed phenomena.
Conclusions:
- The proposed definitions and experimental tests provide a rigorous framework for advancing the field of CO2 chemosensitivity.
- The 'multiple salient signal hypothesis' offers a unifying perspective on the diverse mechanisms and brain areas involved in CO2 detection.
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