{"id":{"repo_id":"syracuse-diss","oai_identifier":"oai:surface.syr.edu:etd-1959"},"canonical_url":"https://search.dev.ndltd.org/etd/syracuse-diss/oai:surface.syr.edu:etd-1959","repository":{"repo_id":"syracuse-diss","name":"Syracuse University","base_url":"https://surface.syr.edu/do/oai/"},"display":{"title":"Regulation of in vivo excitatory/inhibitory balance by the cystine/glutamate exchanger system xc-","abstract":"<p>System xc- (Sxc-) is a cellular antiporter that links the import of L-cystine with the export of L-glutamate. In the central nervous system (CNS), this export contributes to the ambient glutamate levels found in the synaptic cleft. To wit, a 50% reduction in extracellular glutamate has been demonstrated in animals null for the substrate-specific light chain, xCT. Moreover, in most tissues, including the CNS, cystine import through Sxc- is necessary for the synthesis and maintenance of glutathione (GSH) levels. Given that either a reduction in ambient glutamate levels and/or a redox imbalance involving GSH have been reported to affect synaptic strength and intrinsic neuronal excitability, the main focus of this dissertation was to elucidate whether Sxc- signaling contributes to brain excitatory/inhibitory (E/I) balance in vivo. Using chemoconvulsants to uncover excitability changes in SLC7A11sut/sut mice — mice that are null for Sxc- because of a spontaneous mutation in exon 12 of SLC7A11 — we uncovered a sex-independent alteration in neuronal excitability. Specifically, we found that both female and male SLC7A11sut/sut mice had lower convulsive seizure thresholds than their wild-type (SLC7A11+/+) littermates after acute challenge with two pharmacologically distinct chemoconvulsants: the glutamate receptor agonist, kainic acid (KA), or the GABAA receptor antagonist, pentylenetetrazole (PTZ). Paradoxically, after repeated repeated/chronic administration of the same chemoconvulsants, SLC7A11sut/sut mice exhibit signs of hypo-excitability, a response polar opposite to that which occurs in SLC7A11+/+ littermate controls. Whether the aberrant neuronal excitability in SLC7A11sut/sut mice occurred in association with alterations in brain morphology – at the gross, cellular, and sub-cellular level – or with alterations in redox balance or plasma membrane protein expression levels, was also investigated. Overall, our data demonstrate that neuronal excitability in SLC7A11sut/sut mice provoked by chemoconvulsant challenge deviates from that of SLC7A11+/+ littermates in a complex manner that differs in sign depending on the chemoconvulsant dosing paradigm employed. Moreover, mutations in Sxc- trigger sex-dependent changes in redox status, brain morphology, and plasma membrane protein expression, any or all of which could contribute to the observed E/I imbalance in SLC7A11sut/sut mice.</p>","abstract_html":"&lt;p&gt;System xc- (Sxc-) is a cellular antiporter that links the import of L-cystine with the export of L-glutamate. In the central nervous system (CNS), this export contributes to the ambient glutamate levels found in the synaptic cleft. To wit, a 50% reduction in extracellular glutamate has been demonstrated in animals null for the substrate-specific light chain, xCT. Moreover, in most tissues, including the CNS, cystine import through Sxc- is necessary for the synthesis and maintenance of glutathione (GSH) levels. Given that either a reduction in ambient glutamate levels and/or a redox imbalance involving GSH have been reported to affect synaptic strength and intrinsic neuronal excitability, the main focus of this dissertation was to elucidate whether Sxc- signaling contributes to brain excitatory/inhibitory (E/I) balance in vivo. Using chemoconvulsants to uncover excitability changes in SLC7A11sut/sut mice — mice that are null for Sxc- because of a spontaneous mutation in exon 12 of SLC7A11 — we uncovered a sex-independent alteration in neuronal excitability. Specifically, we found that both female and male SLC7A11sut/sut mice had lower convulsive seizure thresholds than their wild-type (SLC7A11+/+) littermates after acute challenge with two pharmacologically distinct chemoconvulsants: the glutamate receptor agonist, kainic acid (KA), or the GABAA receptor antagonist, pentylenetetrazole (PTZ). Paradoxically, after repeated repeated/chronic administration of the same chemoconvulsants, SLC7A11sut/sut mice exhibit signs of hypo-excitability, a response polar opposite to that which occurs in SLC7A11+/+ littermate controls. Whether the aberrant neuronal excitability in SLC7A11sut/sut mice occurred in association with alterations in brain morphology – at the gross, cellular, and sub-cellular level – or with alterations in redox balance or plasma membrane protein expression levels, was also investigated. Overall, our data demonstrate that neuronal excitability in SLC7A11sut/sut mice provoked by chemoconvulsant challenge deviates from that of SLC7A11+/+ littermates in a complex manner that differs in sign depending on the chemoconvulsant dosing paradigm employed. Moreover, mutations in Sxc- trigger sex-dependent changes in redox status, brain morphology, and plasma membrane protein expression, any or all of which could contribute to the observed E/I imbalance in SLC7A11sut/sut mice.&lt;/p&gt;","abstract_has_math":false,"creators":["Sears, Sheila Marie Shahidzadeh"],"institution":null,"degree_name":"Doctor of Philosophy (PhD)","degree_level":"Dissertation","degree_discipline":"Biology","degree_department":null,"school":null,"contributors":["Sandra J. Hewett"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2018,"date_issued":"2018-12-21T08:00:00Z","date_published":"2018-12-21T08:00:00Z","updated_at":"2026-07-24T04:55:37Z","subjects":["Excitatory/inhibitory balance","System xc-","xCT","Life Sciences"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://surface.syr.edu/etd/958","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Sandra J. 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In the central nervous system (CNS), this export contributes to the ambient glutamate levels found in the synaptic cleft. To wit, a 50% reduction in extracellular glutamate has been demonstrated in animals null for the substrate-specific light chain, xCT. Moreover, in most tissues, including the CNS, cystine import through Sxc- is necessary for the synthesis and maintenance of glutathione (GSH) levels. Given that either a reduction in ambient glutamate levels and/or a redox imbalance involving GSH have been reported to affect synaptic strength and intrinsic neuronal excitability, the main focus of this dissertation was to elucidate whether Sxc- signaling contributes to brain excitatory/inhibitory (E/I) balance in vivo. Using chemoconvulsants to uncover excitability changes in SLC7A11sut/sut mice — mice that are null for Sxc- because of a spontaneous mutation in exon 12 of SLC7A11 — we uncovered a sex-independent alteration in neuronal excitability. Specifically, we found that both female and male SLC7A11sut/sut mice had lower convulsive seizure thresholds than their wild-type (SLC7A11+/+) littermates after acute challenge with two pharmacologically distinct chemoconvulsants: the glutamate receptor agonist, kainic acid (KA), or the GABAA receptor antagonist, pentylenetetrazole (PTZ). Paradoxically, after repeated repeated/chronic administration of the same chemoconvulsants, SLC7A11sut/sut mice exhibit signs of hypo-excitability, a response polar opposite to that which occurs in SLC7A11+/+ littermate controls. Whether the aberrant neuronal excitability in SLC7A11sut/sut mice occurred in association with alterations in brain morphology – at the gross, cellular, and sub-cellular level – or with alterations in redox balance or plasma membrane protein expression levels, was also investigated. Overall, our data demonstrate that neuronal excitability in SLC7A11sut/sut mice provoked by chemoconvulsant challenge deviates from that of SLC7A11+/+ littermates in a complex manner that differs in sign depending on the chemoconvulsant dosing paradigm employed. Moreover, mutations in Sxc- trigger sex-dependent changes in redox status, brain morphology, and plasma membrane protein expression, any or all of which could contribute to the observed E/I imbalance in SLC7A11sut/sut mice.</p>"]},{"key":"dc:title","label":"Title","values":["Regulation of in vivo excitatory/inhibitory balance by the cystine/glutamate exchanger system xc-"]}]}],"canonical_facts":{"dc:contributor":["Sandra J. Hewett"],"dc:creator":["Sears, Sheila Marie Shahidzadeh"],"dc:description.abstract":["<p>System xc- (Sxc-) is a cellular antiporter that links the import of L-cystine with the export of L-glutamate. In the central nervous system (CNS), this export contributes to the ambient glutamate levels found in the synaptic cleft. To wit, a 50% reduction in extracellular glutamate has been demonstrated in animals null for the substrate-specific light chain, xCT. Moreover, in most tissues, including the CNS, cystine import through Sxc- is necessary for the synthesis and maintenance of glutathione (GSH) levels. Given that either a reduction in ambient glutamate levels and/or a redox imbalance involving GSH have been reported to affect synaptic strength and intrinsic neuronal excitability, the main focus of this dissertation was to elucidate whether Sxc- signaling contributes to brain excitatory/inhibitory (E/I) balance in vivo. Using chemoconvulsants to uncover excitability changes in SLC7A11sut/sut mice — mice that are null for Sxc- because of a spontaneous mutation in exon 12 of SLC7A11 — we uncovered a sex-independent alteration in neuronal excitability. Specifically, we found that both female and male SLC7A11sut/sut mice had lower convulsive seizure thresholds than their wild-type (SLC7A11+/+) littermates after acute challenge with two pharmacologically distinct chemoconvulsants: the glutamate receptor agonist, kainic acid (KA), or the GABAA receptor antagonist, pentylenetetrazole (PTZ). Paradoxically, after repeated repeated/chronic administration of the same chemoconvulsants, SLC7A11sut/sut mice exhibit signs of hypo-excitability, a response polar opposite to that which occurs in SLC7A11+/+ littermate controls. Whether the aberrant neuronal excitability in SLC7A11sut/sut mice occurred in association with alterations in brain morphology – at the gross, cellular, and sub-cellular level – or with alterations in redox balance or plasma membrane protein expression levels, was also investigated. Overall, our data demonstrate that neuronal excitability in SLC7A11sut/sut mice provoked by chemoconvulsant challenge deviates from that of SLC7A11+/+ littermates in a complex manner that differs in sign depending on the chemoconvulsant dosing paradigm employed. Moreover, mutations in Sxc- trigger sex-dependent changes in redox status, brain morphology, and plasma membrane protein expression, any or all of which could contribute to the observed E/I imbalance in SLC7A11sut/sut mice.</p>"],"dc:identifier":["https://surface.syr.edu/etd/958"],"dc:subject":["Excitatory/inhibitory balance","System xc-","xCT","Life Sciences"],"dc:title":["Regulation of in vivo excitatory/inhibitory balance by the cystine/glutamate exchanger system xc-"],"thesis:degree_discipline":["Biology"],"thesis:degree_level":["Dissertation"],"thesis:degree_name":["Doctor of Philosophy (PhD)"]},"updated_at":"2026-07-24T04:55:37Z"}