PROJECT 4: MOLECULAR AND CELLULAR MECHANISMS FOR THERMAL ROBUSTNESS AND MULTISEN
PROJECT 4: MOLECULAR AND CELLULAR MECHANISMS FOR THERMAL ROBUSTNESS AND MULTISEN
批准号:
8485962
负责人:
Yun Zhang
金额:
$56.23万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至
关键词:
Afferent NeuronsAlgorithmsAnatomyAnimalsAsthmaBehaviorBehavioralBehavioral AssayBiological AssayBiological ModelsCaenorhabditis elegansCellsChemicalsChemotactic FactorsChemotaxisCodeCuesDefectDetectionDiseaseEnvironmentEtiologyExcisionFinancial compensationGenesGeneticGenetic ScreeningIndividualInterneuronsKineticsMapsMeasuresMicrofluidicsModalityMolecularMolecular ProbesMotor NeuronsMovementNervous system structureNeuronsOpticsOutputPathologyPathway interactionsPerformancePhysiologicalPhysiologyPlayPropertyRegulationResolutionRoleSensorySourceSynapsesTechniquesTemperatureTemperature SenseWorkbasechronic paingenetic analysishuman diseaseinsightmultisensorymutantneural circuitneurogeneticsneurophysiologynoveloptogeneticspositional cloningpresynapticresponsetool
中文摘要
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英文摘要
A robust themnosensory response in natural environments requires an animal to integrate circuits for
temperature detection with circuits for other sensory modalities. The circuits for all sensory modalities must
also work robustly over a range of temperatures. C elegans offers an excellent opportunity to prot)e the
molecular and cellular mechanisms that regulate circuit function across different temperatures as well as
mechanisms that integrate thermosensory and non-thermosensory inputs. The use of novel quantitative
behavioral assays, optical neurophysiology and the rich neurogenetics available in C elegans allows us to
identify and characterize the molecular, neuronal and circuit determinants of thermal robustness and
multisensory integration during navigational behavior. Here, we propose to probe the interplay between
thermosensory and chemosensory navigational behaviors in C elegans. The principal thermosensory
neurons (AFD), NaCI-sensing neurons (ASE), and olfactory neurons for chemoattractants (AWC) are
presynaptic to the same interneurons (AIY). Thus, mechanisms for multisensory integration between
thermosensory and chemosensory inputs may be located in the first synapse, and moreover, the
thermosensory circuit, may play a direct role in temperature-dependent regulation of the chemosensory
circuit. Our proposed multifaceted analyses will uncover novel mechanisms of thermal robustness and
multisensory integration, principles of which are likely to be highly conserved.
期刊论文(0)
专著(0)
科研奖励(0)
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海外基金