{"id":{"repo_id":"wustl","oai_identifier":"oai:openscholarship.wustl.edu:etd-1314"},"canonical_url":"https://search.dev.ndltd.org/etd/wustl/oai:openscholarship.wustl.edu:etd-1314","repository":{"repo_id":"wustl","name":"Washington University in St. Louis","base_url":"https://openscholarship.wustl.edu/do/oai/"},"display":{"title":"Dynamic Measurement Of Soluble Human Aβ In A Combined Microdialysis-Experimental Traumatic Brain Injury Mouse Model","abstract":"The amyloid-&beta; peptide: A&beta;) plays a central pathophysiological role in Alzheimer's disease, but little is known about its dynamics in the brain's extracellular space. A recent microdialysis-based study in human patients with severe brain injuries found that extracellular A&beta; dynamics correlate with changes in neurological status. Because neurological status is generally diminished following injury, this correlation suggests that extracellular A&beta; is reduced relative to baseline. However, human studies cannot assess pre-injury A&beta; levels, very early post-injury A&beta; levels, nor the relationship between extracellular A&beta; and total tissue levels. Therefore, we developed a mouse model that combines experimental TBI with microdialysis to address these gaps. In this model, A&beta; levels were stable at baseline and after sham-injury. Following controlled cortical impact TBI, we found that A&beta;levels were immediately and persistently decreased in the ipsilateral hippocampus. These results were found in both wild-type mice and young pre-plaque PDAPP mice that produce human-sequence A&beta;. Similar decreases were observed in PBS-soluble hippocampal extracts, but no changes were found in carbonate or guanidine extracts. Reductions in A&beta; were not due to changes in microdialysis probe function, APP levels nor A&beta; deposition. Hippocampal depth electrode recordings demonstrated that electroencephalographic activity was decreased over 24 hours following TBI. Thus, we propose that in mice and likely injured human patients, post-injury extracellular A&beta; levels are acutely decreased relative to baseline. Reduced neuronal activity may contribute, though the underlying mechanisms have not been definitively determined. One hypothesized mechanism for reduced extracellular levels is that A&beta; is retained at the synapse following injury. To test this, we prepared synaptosomes in sham and injured PDAPP mice and measured levels of A&beta; and APP by ELISA. No significant differences between sham and 2.0 mm-injured mice were detected. Future experiments will determine whether enhanced clearance accounts for decreased extracellular A&beta;. In summary, we have designed a mouse model to address questions that cannot be answered in patients. Using this model, we measured A&beta; dynamics and their relationship to tissue levels and a possible relationship with neuronal activity. Studies of other peptides and treatment strategies might benefit from use of this model.","abstract_html":"The amyloid-&amp;beta; peptide: A&amp;beta;) plays a central pathophysiological role in Alzheimer&#x27;s disease, but little is known about its dynamics in the brain&#x27;s extracellular space. A recent microdialysis-based study in human patients with severe brain injuries found that extracellular A&amp;beta; dynamics correlate with changes in neurological status. Because neurological status is generally diminished following injury, this correlation suggests that extracellular A&amp;beta; is reduced relative to baseline. However, human studies cannot assess pre-injury A&amp;beta; levels, very early post-injury A&amp;beta; levels, nor the relationship between extracellular A&amp;beta; and total tissue levels. Therefore, we developed a mouse model that combines experimental TBI with microdialysis to address these gaps. In this model, A&amp;beta; levels were stable at baseline and after sham-injury. Following controlled cortical impact TBI, we found that A&amp;beta;levels were immediately and persistently decreased in the ipsilateral hippocampus. These results were found in both wild-type mice and young pre-plaque PDAPP mice that produce human-sequence A&amp;beta;. Similar decreases were observed in PBS-soluble hippocampal extracts, but no changes were found in carbonate or guanidine extracts. Reductions in A&amp;beta; were not due to changes in microdialysis probe function, APP levels nor A&amp;beta; deposition. Hippocampal depth electrode recordings demonstrated that electroencephalographic activity was decreased over 24 hours following TBI. Thus, we propose that in mice and likely injured human patients, post-injury extracellular A&amp;beta; levels are acutely decreased relative to baseline. Reduced neuronal activity may contribute, though the underlying mechanisms have not been definitively determined. One hypothesized mechanism for reduced extracellular levels is that A&amp;beta; is retained at the synapse following injury. To test this, we prepared synaptosomes in sham and injured PDAPP mice and measured levels of A&amp;beta; and APP by ELISA. No significant differences between sham and 2.0 mm-injured mice were detected. Future experiments will determine whether enhanced clearance accounts for decreased extracellular A&amp;beta;. In summary, we have designed a mouse model to address questions that cannot be answered in patients. Using this model, we measured A&amp;beta; dynamics and their relationship to tissue levels and a possible relationship with neuronal activity. Studies of other peptides and treatment strategies might benefit from use of this model.","abstract_has_math":false,"creators":["Schwetye, Katherine"],"institution":null,"degree_name":"Doctor of Philosophy (PhD)","degree_level":"Dissertation","degree_discipline":"Biology and Biomedical Sciences: Neurosciences","degree_department":null,"school":null,"contributors":["David Brody"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2011,"date_issued":"2011-01-01T08:00:00Z","date_published":"2011-01-01T08:00:00Z","updated_at":"2026-07-24T06:12:25Z","subjects":["Neurosciences","Alzheimer's disease","Amyloid-beta","Microdialysis","Mouse model","Translational model","Traumatic brain injury"],"languages":["English (en)"],"rights":[],"rights_urls":[],"identifier_entries":[{"key":"dc:identifier.doi","label":"DOI","values":["https://doi.org/10.7936/K7513W75"],"render_values":[{"text":"https://doi.org/10.7936/K7513W75","href":"https://doi.org/10.7936/K7513W75","code":true}]}]},"links":{"outbound_url":"https://openscholarship.wustl.edu/etd/315","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["David Brody"]},{"key":"dc:creator","label":"Author","values":["Schwetye, Katherine"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.available","label":"Dc Date Available","values":["2010-01-01T08:00:00Z"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Biology and Biomedical Sciences: Neurosciences"]},{"key":"thesis:degree_level","label":"Degree Level","values":["Dissertation"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Doctor of Philosophy (PhD)"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Neurosciences","Alzheimer's disease","Amyloid-beta","Microdialysis","Mouse model","Translational model","Traumatic brain injury"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["English (en)"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://openscholarship.wustl.edu/etd/315"]},{"key":"dc:identifier.doi","label":"DOI","values":["https://doi.org/10.7936/K7513W75"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["The amyloid-&beta; peptide: A&beta;) plays a central pathophysiological role in Alzheimer's disease, but little is known about its dynamics in the brain's extracellular space. A recent microdialysis-based study in human patients with severe brain injuries found that extracellular A&beta; dynamics correlate with changes in neurological status. Because neurological status is generally diminished following injury, this correlation suggests that extracellular A&beta; is reduced relative to baseline. However, human studies cannot assess pre-injury A&beta; levels, very early post-injury A&beta; levels, nor the relationship between extracellular A&beta; and total tissue levels. Therefore, we developed a mouse model that combines experimental TBI with microdialysis to address these gaps. In this model, A&beta; levels were stable at baseline and after sham-injury. Following controlled cortical impact TBI, we found that A&beta;levels were immediately and persistently decreased in the ipsilateral hippocampus. These results were found in both wild-type mice and young pre-plaque PDAPP mice that produce human-sequence A&beta;. Similar decreases were observed in PBS-soluble hippocampal extracts, but no changes were found in carbonate or guanidine extracts. Reductions in A&beta; were not due to changes in microdialysis probe function, APP levels nor A&beta; deposition. Hippocampal depth electrode recordings demonstrated that electroencephalographic activity was decreased over 24 hours following TBI. Thus, we propose that in mice and likely injured human patients, post-injury extracellular A&beta; levels are acutely decreased relative to baseline. Reduced neuronal activity may contribute, though the underlying mechanisms have not been definitively determined. One hypothesized mechanism for reduced extracellular levels is that A&beta; is retained at the synapse following injury. To test this, we prepared synaptosomes in sham and injured PDAPP mice and measured levels of A&beta; and APP by ELISA. No significant differences between sham and 2.0 mm-injured mice were detected. Future experiments will determine whether enhanced clearance accounts for decreased extracellular A&beta;. In summary, we have designed a mouse model to address questions that cannot be answered in patients. Using this model, we measured A&beta; dynamics and their relationship to tissue levels and a possible relationship with neuronal activity. Studies of other peptides and treatment strategies might benefit from use of this model."]},{"key":"dc:title","label":"Title","values":["Dynamic Measurement Of Soluble Human Aβ In A Combined Microdialysis-Experimental Traumatic Brain Injury Mouse Model"]}]}],"canonical_facts":{"dc:contributor":["David Brody"],"dc:creator":["Schwetye, Katherine"],"dc:date.available":["2010-01-01T08:00:00Z"],"dc:description.abstract":["The amyloid-&beta; peptide: A&beta;) plays a central pathophysiological role in Alzheimer's disease, but little is known about its dynamics in the brain's extracellular space. A recent microdialysis-based study in human patients with severe brain injuries found that extracellular A&beta; dynamics correlate with changes in neurological status. Because neurological status is generally diminished following injury, this correlation suggests that extracellular A&beta; is reduced relative to baseline. However, human studies cannot assess pre-injury A&beta; levels, very early post-injury A&beta; levels, nor the relationship between extracellular A&beta; and total tissue levels. Therefore, we developed a mouse model that combines experimental TBI with microdialysis to address these gaps. In this model, A&beta; levels were stable at baseline and after sham-injury. Following controlled cortical impact TBI, we found that A&beta;levels were immediately and persistently decreased in the ipsilateral hippocampus. These results were found in both wild-type mice and young pre-plaque PDAPP mice that produce human-sequence A&beta;. Similar decreases were observed in PBS-soluble hippocampal extracts, but no changes were found in carbonate or guanidine extracts. Reductions in A&beta; were not due to changes in microdialysis probe function, APP levels nor A&beta; deposition. Hippocampal depth electrode recordings demonstrated that electroencephalographic activity was decreased over 24 hours following TBI. Thus, we propose that in mice and likely injured human patients, post-injury extracellular A&beta; levels are acutely decreased relative to baseline. Reduced neuronal activity may contribute, though the underlying mechanisms have not been definitively determined. One hypothesized mechanism for reduced extracellular levels is that A&beta; is retained at the synapse following injury. To test this, we prepared synaptosomes in sham and injured PDAPP mice and measured levels of A&beta; and APP by ELISA. No significant differences between sham and 2.0 mm-injured mice were detected. Future experiments will determine whether enhanced clearance accounts for decreased extracellular A&beta;. In summary, we have designed a mouse model to address questions that cannot be answered in patients. Using this model, we measured A&beta; dynamics and their relationship to tissue levels and a possible relationship with neuronal activity. Studies of other peptides and treatment strategies might benefit from use of this model."],"dc:identifier":["https://openscholarship.wustl.edu/etd/315"],"dc:identifier.doi":["https://doi.org/10.7936/K7513W75"],"dc:language":["English (en)"],"dc:subject":["Neurosciences","Alzheimer's disease","Amyloid-beta","Microdialysis","Mouse model","Translational model","Traumatic brain injury"],"dc:title":["Dynamic Measurement Of Soluble Human Aβ In A Combined Microdialysis-Experimental Traumatic Brain Injury Mouse Model"],"thesis:degree_discipline":["Biology and Biomedical Sciences: Neurosciences"],"thesis:degree_level":["Dissertation"],"thesis:degree_name":["Doctor of Philosophy (PhD)"]},"updated_at":"2026-07-24T06:12:25Z"}