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NA+-ACTIVATED SLO2 K+ CHANNELS ARE ESSENTIAL FOR MEDIATING OLFACTORY ADAPTATION IN VIVO IN DROSOPHILA

dc.contributor.authorKruisselbrink, Erica, author
dc.contributor.authorTsunoda, Susan, advisor
dc.contributor.authorHoerndli, Frederic, committee member
dc.contributor.authorTamkun, Michael, committee member
dc.contributor.authorAmberg, Greg, committee member
dc.contributor.authorMoreno, Julie, committee member
dc.date.accessioned2026-08-24T10:39:59Z
dc.date.issued2026
dc.description.abstractOlfactory adaptation is essential for maintaining high sensitivity and detecting changes in odorant concentration in our environment. Despite decades of research, the molecular mechanisms that drive this adaptive process remain surprisingly poorly understood. This thesis introduces Na+-activated K+ channels (KNa), encoded by the Slo2 gene, as critical mediators of olfactory adaptation in vivo. We demonstrate that the Drosophila Slo2 channel (dSlo2) is required for normal adaptive behavior: while wild-type flies show desensitized responses after just 2 minutes of odorant pre-exposure, dSlo2-/- null mutants fail to adapt, even at the highest odorant concentrations. We show that loss of dSlo2 disrupts multiple characteristics of olfactory adaptation. In dSlo2-/- mutants, response curves to increasing odorant concentrations fail to display the characteristic shifts observed in wild-type flies following pre-exposure. Adaptation in these mutants only occurs after extending the duration of pre-exposure to 7 minutes, and they also exhibit a prolonged recovery time from the adapted state. We show that dSlo2 is expressed in the cell bodies of both olfactory receptor neurons (ORNs) and projection neurons (PNs), as well as in the distal axonal segment (DAS) of PNs, both critical regions involved with neural excitability. Additionally, targeted down-regulation of dSlo2 in the olfactory receptor neurons (ORNs) and second-order projection neurons (PNs) impairs adaptive responses in vivo. Using the Ca²⁺-dependent reporter, CaLexA, we further show that dSlo2 is required for the dampening of neural activity in both ORNs and PNs following odorant pre-exposure. Finally, we show that the persistent sodium current (INaP) also contributes to olfactory adaptation, and present evidence supporting a model in which the coupling between INaP and dSlo2 currents in ORNs and PNs mediates olfactory adaptation in vivo.
dc.format.mediumborn digital
dc.format.mediumdoctoral dissertations
dc.identifierKruisselbrink_colostate_0053A_19634.pdf
dc.identifier.urihttps://hdl.handle.net/10217/245412
dc.identifier.urihttps://doi.org/10.25675/3.027426
dc.languageEnglish
dc.language.isoeng
dc.publisherColorado State University. Libraries
dc.relation.ispartof2020-
dc.rightsCopyright and other restrictions may apply. User is responsible for compliance with all applicable laws. For information about copyright law, please see https://libguides.colostate.edu/copyright.
dc.rights.accessEmbargo expires: 08/17/2028.
dc.subjectDrosophila
dc.subjectPersistent Sodium Current
dc.subjectAdaptation
dc.subjectSlo2
dc.subjectOlfactory
dc.titleNA+-ACTIVATED SLO2 K+ CHANNELS ARE ESSENTIAL FOR MEDIATING OLFACTORY ADAPTATION IN VIVO IN DROSOPHILA
dc.typeText
dcterms.embargo.expires2028-08-17
dcterms.embargo.terms2028-08-17
dcterms.rights.dplaThis Item is protected by copyright and/or related rights (https://rightsstatements.org/vocab/InC/1.0/). You are free to use this Item in any way that is permitted by the copyright and related rights legislation that applies to your use. For other uses you need to obtain permission from the rights-holder(s).
thesis.degree.disciplineBiomedical Sciences
thesis.degree.grantorColorado State University
thesis.degree.levelDoctoral
thesis.degree.nameDoctor of Philosophy (Ph.D.)

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