{"id":{"repo_id":"plymouth","oai_identifier":"oai:pearl.plymouth.ac.uk:psy-theses-1157"},"canonical_url":"https://search.dev.ndltd.org/etd/plymouth/oai:pearl.plymouth.ac.uk:psy-theses-1157","repository":{"repo_id":"plymouth","name":"University of Plymouth","base_url":"https://pearl.plymouth.ac.uk/do/oai"},"display":{"title":"The Effects of Altered Partial Pressures of Gas on Cognitive and Neural Function","abstract":"Oxygen is central to neural function, yet the precise mechanisms and effects by which varying <br/>oxygen levels, whether through Hypoxia, Hyperoxia, or Hyperbaric Oxygen Therapy (HBOT), <br/>shape cognition and brain activity remain incomplete. This thesis adopts a novel, multi-modal <br/>framework that integrates normobaric gas manipulations, cognitive testing, Transcranial <br/>Magnetic Stimulation (TMS), Electroencephalography (EEG), Functional Magnetic Resonance <br/>Imaging (fMRI), and HBOT to examine how gas and pressure variability influences cognitive, <br/>motor, and neural processes. <br/>Chapter 3 presents the findings of a preliminary experiment investigating normobaric oxygen <br/>manipulations on cognition. Standardised cognitive assessments revealed domain-general <br/>impairments (i.e. memory and executive function) under Hypoxia, whereas Hyperoxia <br/>produced smaller, and more inconsistent domain-specific changes. Notably, both conditions <br/>increased movement time but left reaction time unaffected, implicating the motor system <br/>rather than broad cognitive slowing. Chapter 4 extends this by probing the motor system with <br/>TMS to measure Corticospinal Excitability (CSE). Hypoxia increased early motor neuron <br/>recruitment at lower stimulation intensities yet lowered maximum excitability, while <br/>Hyperoxia raised the saturation threshold for excitability, highlighting distinct motor <br/>responsiveness under different levels of oxygen. Based on these motor findings, Chapter 5 <br/>explores neural oscillations and evoked responses with EEG. Hypoxia reduced Critical Flicker <br/>Fusion (CFF) thresholds and altered Visual Evoked Potentials (VEPs), while Hyperoxia <br/>generated smaller more transient changes in CFF and VEPs, with a specific reduced motor <br/>Beta power, suggesting more localised oscillatory disruptions. <br/>Chapter 6 then investigates HBOT using mobile EEG during a hyperbaric “dive,” to understand <br/>the neural impacts of HBOT. The results showed Delta power decreased cumulatively <br/>throughout the session, whereas Alpha, Beta, and Theta power increased during transitions <br/>to a relatively lower partial pressure of oxygen, pointing to “relative Hypoxia” as a potential <br/>driver of neuroplasticity. These results also showed heightened neural entropy during <br/>transitions to higher oxygen levels, emphasising the importance of dynamic pressure changes <br/>for neural adaptability. Chapter 7 examines CO₂-induced anxiety via a Carbon Dioxide <br/>Challenge Model (CCM) and fMRI, revealing transient anxiogenic responses that increased <br/>functional connectivity within networks involving the insula, amygdala, and frontal regions. A <br/>correlation between subjective anxiety and connectivity between the brainstem and frontal <br/>cortex was observed, highlighting the role of top-down emotional regulation and how <br/>physiology interacts with anxiety. <br/>Collectively, these findings demonstrate that oxygen variability significantly impacts cognition, <br/>motor systems, and neural plasticity, with relative Hypoxia emerging as a particularly potent <br/>stimulus for adaptive changes. By illustrating how normobaric manipulations, HBOT, and CO₂<br/>induced anxiety each alter neural excitability and connectivity, this thesis offers an integrated <br/>perspective on oxygen’s role in shaping brain function. It further establishes a framework for <br/>potential novel therapeutic interventions, ranging from enhanced neurorehabilitation <br/>protocols to strategies for managing anxiety and cognitive decline, that leverage controlled <br/>oxygen variability for clinical and performance benefits.<br/>","abstract_html":"Oxygen is central to neural function, yet the precise mechanisms and effects by which varying &lt;br/&gt;oxygen levels, whether through Hypoxia, Hyperoxia, or Hyperbaric Oxygen Therapy (HBOT), &lt;br/&gt;shape cognition and brain activity remain incomplete. This thesis adopts a novel, multi-modal &lt;br/&gt;framework that integrates normobaric gas manipulations, cognitive testing, Transcranial &lt;br/&gt;Magnetic Stimulation (TMS), Electroencephalography (EEG), Functional Magnetic Resonance &lt;br/&gt;Imaging (fMRI), and HBOT to examine how gas and pressure variability influences cognitive, &lt;br/&gt;motor, and neural processes. &lt;br/&gt;Chapter 3 presents the findings of a preliminary experiment investigating normobaric oxygen &lt;br/&gt;manipulations on cognition. Standardised cognitive assessments revealed domain-general &lt;br/&gt;impairments (i.e. memory and executive function) under Hypoxia, whereas Hyperoxia &lt;br/&gt;produced smaller, and more inconsistent domain-specific changes. Notably, both conditions &lt;br/&gt;increased movement time but left reaction time unaffected, implicating the motor system &lt;br/&gt;rather than broad cognitive slowing. Chapter 4 extends this by probing the motor system with &lt;br/&gt;TMS to measure Corticospinal Excitability (CSE). Hypoxia increased early motor neuron &lt;br/&gt;recruitment at lower stimulation intensities yet lowered maximum excitability, while &lt;br/&gt;Hyperoxia raised the saturation threshold for excitability, highlighting distinct motor &lt;br/&gt;responsiveness under different levels of oxygen. Based on these motor findings, Chapter 5 &lt;br/&gt;explores neural oscillations and evoked responses with EEG. Hypoxia reduced Critical Flicker &lt;br/&gt;Fusion (CFF) thresholds and altered Visual Evoked Potentials (VEPs), while Hyperoxia &lt;br/&gt;generated smaller more transient changes in CFF and VEPs, with a specific reduced motor &lt;br/&gt;Beta power, suggesting more localised oscillatory disruptions. &lt;br/&gt;Chapter 6 then investigates HBOT using mobile EEG during a hyperbaric “dive,” to understand &lt;br/&gt;the neural impacts of HBOT. The results showed Delta power decreased cumulatively &lt;br/&gt;throughout the session, whereas Alpha, Beta, and Theta power increased during transitions &lt;br/&gt;to a relatively lower partial pressure of oxygen, pointing to “relative Hypoxia” as a potential &lt;br/&gt;driver of neuroplasticity. These results also showed heightened neural entropy during &lt;br/&gt;transitions to higher oxygen levels, emphasising the importance of dynamic pressure changes &lt;br/&gt;for neural adaptability. Chapter 7 examines CO₂-induced anxiety via a Carbon Dioxide &lt;br/&gt;Challenge Model (CCM) and fMRI, revealing transient anxiogenic responses that increased &lt;br/&gt;functional connectivity within networks involving the insula, amygdala, and frontal regions. A &lt;br/&gt;correlation between subjective anxiety and connectivity between the brainstem and frontal &lt;br/&gt;cortex was observed, highlighting the role of top-down emotional regulation and how &lt;br/&gt;physiology interacts with anxiety. &lt;br/&gt;Collectively, these findings demonstrate that oxygen variability significantly impacts cognition, &lt;br/&gt;motor systems, and neural plasticity, with relative Hypoxia emerging as a particularly potent &lt;br/&gt;stimulus for adaptive changes. By illustrating how normobaric manipulations, HBOT, and CO₂&lt;br/&gt;induced anxiety each alter neural excitability and connectivity, this thesis offers an integrated &lt;br/&gt;perspective on oxygen’s role in shaping brain function. It further establishes a framework for &lt;br/&gt;potential novel therapeutic interventions, ranging from enhanced neurorehabilitation &lt;br/&gt;protocols to strategies for managing anxiety and cognitive decline, that leverage controlled &lt;br/&gt;oxygen variability for clinical and performance benefits.&lt;br/&gt;","abstract_has_math":false,"creators":["Graham, Daniel"],"institution":null,"degree_name":null,"degree_level":null,"degree_discipline":null,"degree_department":null,"school":null,"contributors":["Stephen Hall, Gary Smerdon, Alastair Smith, Jonathan Marsden"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2026,"date_issued":"2026-01-01T08:00:00Z","date_published":"2026-01-01T08:00:00Z","updated_at":"2026-07-24T03:49:48Z","subjects":[],"languages":["eng"],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://pearl.plymouth.ac.uk/psy-theses/157","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Stephen Hall, Gary Smerdon, Alastair Smith, Jonathan Marsden"]},{"key":"dc:creator","label":"Author","values":["Graham, Daniel"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.available","label":"Dc Date Available","values":["2026-02-11T08:00:00Z"]},{"key":"dc:date.issued","label":"Date","values":["2026-01-01T08:00:00Z"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["eng"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://pearl.plymouth.ac.uk/psy-theses/157"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Oxygen is central to neural function, yet the precise mechanisms and effects by which varying <br/>oxygen levels, whether through Hypoxia, Hyperoxia, or Hyperbaric Oxygen Therapy (HBOT), <br/>shape cognition and brain activity remain incomplete. This thesis adopts a novel, multi-modal <br/>framework that integrates normobaric gas manipulations, cognitive testing, Transcranial <br/>Magnetic Stimulation (TMS), Electroencephalography (EEG), Functional Magnetic Resonance <br/>Imaging (fMRI), and HBOT to examine how gas and pressure variability influences cognitive, <br/>motor, and neural processes. <br/>Chapter 3 presents the findings of a preliminary experiment investigating normobaric oxygen <br/>manipulations on cognition. Standardised cognitive assessments revealed domain-general <br/>impairments (i.e. memory and executive function) under Hypoxia, whereas Hyperoxia <br/>produced smaller, and more inconsistent domain-specific changes. Notably, both conditions <br/>increased movement time but left reaction time unaffected, implicating the motor system <br/>rather than broad cognitive slowing. Chapter 4 extends this by probing the motor system with <br/>TMS to measure Corticospinal Excitability (CSE). Hypoxia increased early motor neuron <br/>recruitment at lower stimulation intensities yet lowered maximum excitability, while <br/>Hyperoxia raised the saturation threshold for excitability, highlighting distinct motor <br/>responsiveness under different levels of oxygen. Based on these motor findings, Chapter 5 <br/>explores neural oscillations and evoked responses with EEG. Hypoxia reduced Critical Flicker <br/>Fusion (CFF) thresholds and altered Visual Evoked Potentials (VEPs), while Hyperoxia <br/>generated smaller more transient changes in CFF and VEPs, with a specific reduced motor <br/>Beta power, suggesting more localised oscillatory disruptions. <br/>Chapter 6 then investigates HBOT using mobile EEG during a hyperbaric “dive,” to understand <br/>the neural impacts of HBOT. The results showed Delta power decreased cumulatively <br/>throughout the session, whereas Alpha, Beta, and Theta power increased during transitions <br/>to a relatively lower partial pressure of oxygen, pointing to “relative Hypoxia” as a potential <br/>driver of neuroplasticity. These results also showed heightened neural entropy during <br/>transitions to higher oxygen levels, emphasising the importance of dynamic pressure changes <br/>for neural adaptability. Chapter 7 examines CO₂-induced anxiety via a Carbon Dioxide <br/>Challenge Model (CCM) and fMRI, revealing transient anxiogenic responses that increased <br/>functional connectivity within networks involving the insula, amygdala, and frontal regions. A <br/>correlation between subjective anxiety and connectivity between the brainstem and frontal <br/>cortex was observed, highlighting the role of top-down emotional regulation and how <br/>physiology interacts with anxiety. <br/>Collectively, these findings demonstrate that oxygen variability significantly impacts cognition, <br/>motor systems, and neural plasticity, with relative Hypoxia emerging as a particularly potent <br/>stimulus for adaptive changes. By illustrating how normobaric manipulations, HBOT, and CO₂<br/>induced anxiety each alter neural excitability and connectivity, this thesis offers an integrated <br/>perspective on oxygen’s role in shaping brain function. It further establishes a framework for <br/>potential novel therapeutic interventions, ranging from enhanced neurorehabilitation <br/>protocols to strategies for managing anxiety and cognitive decline, that leverage controlled <br/>oxygen variability for clinical and performance benefits.<br/>"]},{"key":"dc:title","label":"Title","values":["The Effects of Altered Partial Pressures of Gas on Cognitive and Neural Function"]}]}],"canonical_facts":{"dc:contributor":["Stephen Hall, Gary Smerdon, Alastair Smith, Jonathan Marsden"],"dc:creator":["Graham, Daniel"],"dc:date.available":["2026-02-11T08:00:00Z"],"dc:date.issued":["2026-01-01T08:00:00Z"],"dc:description.abstract":["Oxygen is central to neural function, yet the precise mechanisms and effects by which varying <br/>oxygen levels, whether through Hypoxia, Hyperoxia, or Hyperbaric Oxygen Therapy (HBOT), <br/>shape cognition and brain activity remain incomplete. This thesis adopts a novel, multi-modal <br/>framework that integrates normobaric gas manipulations, cognitive testing, Transcranial <br/>Magnetic Stimulation (TMS), Electroencephalography (EEG), Functional Magnetic Resonance <br/>Imaging (fMRI), and HBOT to examine how gas and pressure variability influences cognitive, <br/>motor, and neural processes. <br/>Chapter 3 presents the findings of a preliminary experiment investigating normobaric oxygen <br/>manipulations on cognition. Standardised cognitive assessments revealed domain-general <br/>impairments (i.e. memory and executive function) under Hypoxia, whereas Hyperoxia <br/>produced smaller, and more inconsistent domain-specific changes. Notably, both conditions <br/>increased movement time but left reaction time unaffected, implicating the motor system <br/>rather than broad cognitive slowing. Chapter 4 extends this by probing the motor system with <br/>TMS to measure Corticospinal Excitability (CSE). Hypoxia increased early motor neuron <br/>recruitment at lower stimulation intensities yet lowered maximum excitability, while <br/>Hyperoxia raised the saturation threshold for excitability, highlighting distinct motor <br/>responsiveness under different levels of oxygen. Based on these motor findings, Chapter 5 <br/>explores neural oscillations and evoked responses with EEG. Hypoxia reduced Critical Flicker <br/>Fusion (CFF) thresholds and altered Visual Evoked Potentials (VEPs), while Hyperoxia <br/>generated smaller more transient changes in CFF and VEPs, with a specific reduced motor <br/>Beta power, suggesting more localised oscillatory disruptions. <br/>Chapter 6 then investigates HBOT using mobile EEG during a hyperbaric “dive,” to understand <br/>the neural impacts of HBOT. The results showed Delta power decreased cumulatively <br/>throughout the session, whereas Alpha, Beta, and Theta power increased during transitions <br/>to a relatively lower partial pressure of oxygen, pointing to “relative Hypoxia” as a potential <br/>driver of neuroplasticity. These results also showed heightened neural entropy during <br/>transitions to higher oxygen levels, emphasising the importance of dynamic pressure changes <br/>for neural adaptability. Chapter 7 examines CO₂-induced anxiety via a Carbon Dioxide <br/>Challenge Model (CCM) and fMRI, revealing transient anxiogenic responses that increased <br/>functional connectivity within networks involving the insula, amygdala, and frontal regions. A <br/>correlation between subjective anxiety and connectivity between the brainstem and frontal <br/>cortex was observed, highlighting the role of top-down emotional regulation and how <br/>physiology interacts with anxiety. <br/>Collectively, these findings demonstrate that oxygen variability significantly impacts cognition, <br/>motor systems, and neural plasticity, with relative Hypoxia emerging as a particularly potent <br/>stimulus for adaptive changes. By illustrating how normobaric manipulations, HBOT, and CO₂<br/>induced anxiety each alter neural excitability and connectivity, this thesis offers an integrated <br/>perspective on oxygen’s role in shaping brain function. It further establishes a framework for <br/>potential novel therapeutic interventions, ranging from enhanced neurorehabilitation <br/>protocols to strategies for managing anxiety and cognitive decline, that leverage controlled <br/>oxygen variability for clinical and performance benefits.<br/>"],"dc:identifier":["https://pearl.plymouth.ac.uk/psy-theses/157"],"dc:language":["eng"],"dc:title":["The Effects of Altered Partial Pressures of Gas on Cognitive and Neural Function"],"dc:type":["Thesis"]},"updated_at":"2026-07-24T03:49:48Z"}