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Office of Undergraduate Research Home » 2019 Undergraduate Research Symposium Schedules

Found 3 projects

Poster Presentation 1

11:00 AM to 1:00 PM
Spectroscopic Studies of Purified Rat TRPV1
Presenter
  • Marium Raza, Senior, Biochemistry, Comparative History of Ideas UW Honors Program
Mentors
  • Sharona Gordon, Physiology & Biophysics
  • Gilbert Martinez, Physiology & Biophysics
Session
    Poster Session 1
  • Commons East
  • Easel #71
  • 11:00 AM to 1:00 PM

  • Other students mentored by Sharona Gordon (1)
  • Other students mentored by Gilbert Martinez (1)
Spectroscopic Studies of Purified Rat TRPV1close

Transient receptor potential vanilloid-1 (TRPV1) ion channels are polymodal signal integrators of noxious stimuli including heat, vanilloids such as capsaicin, peptide toxins, acid, and inflammatory mediators. It is unknown whether activation of TRPV1 by different stimuli is achieved through the same structural mechanism or if different stimuli activate the channel through different structural mechanisms. Clinical trials using TRPV1 antagonists resulted in patients exhibiting hyperthermia, suggesting that TRPV1 plays a role in maintaining body temperature, and highlighting the need to ensure that therapeutics targeting the channel do not disrupt thermal homeostasis. Hence, knowledge of different structural mechanisms for channel activation would aid in the design of therapeutic agents targeting TRPV1. To address this, we have expressed a series of functional single-cysteine rat TRPV1 channels for spectroscopic analysis, with techniques such as electron paramagnetic resonance, double electron-electron resonance, and Förster resonance energy transfer spectroscopy. By probing several structural regions within TRPV1 we can determine which regions of the channels move during activation and whether those are the same for different noxious stimuli.


Oral Presentation 1

12:30 PM to 2:15 PM
Rigid Uso1 Protein Construction and Testing for Tethering Mechanism
Presenter
  • Weisha Liu, Senior, Bioengineering
Mentor
  • Alexey Merz, Biochemistry, Physiology & Biophysics
Session
    Session 1Q: Biological Structure and Function
  • 12:30 PM to 2:15 PM

  • Other Biochemistry mentored projects (30)
  • Other students mentored by Alexey Merz (1)
Rigid Uso1 Protein Construction and Testing for Tethering Mechanismclose

Membrane trafficking in the eukaryotic cell is a highly controlled and significant process that is related to various inherited disorders and cancers. Among numerous regulatory proteins, Uso1 protein – an essential, long, coiled-coil protein – plays a key role in the tethering process, capturing and pulling the vesicle toward the target membrane. Despite many years of work, the tethering mechanism has not been fully understood. Although several tethering models have been proposed, none of them were tested with Uso1 protein. Hence, to test these models, we engineered a mechanically deficient version of Uso1 protein, which lacks the critical tethering region for functioning. After the protein characterization, in cell survival tests and in test tube tests in chemically defined fusion system have been performed. The failure of the trafficking event, which would support our hypothesis, along with other functional test data, would provide a promising demonstration for the tethering mechanism of the long coiled-coil tether and the role of Uso1 protein.


Poster Presentation 3

2:30 PM to 4:00 PM
Effects of Different Vagus Nerve Stimulation Protocols on Cortical Plasticity in Non-Human Primates
Presenter
  • Hayley Michelle Boyd, Senior, Bioengineering Mary Gates Scholar, UW Honors Program
Mentors
  • Eberhard Fetz, Physiology & Biophysics
  • Irene Rembado, Physiology & Biophysics
Session
    Poster Session 3
  • Commons East
  • Easel #63
  • 2:30 PM to 4:00 PM

  • Other Physiology & Biophysics mentored projects (5)
Effects of Different Vagus Nerve Stimulation Protocols on Cortical Plasticity in Non-Human Primatesclose

Cortical plasticity is the substrate for learning and memory. It is the basis of an organism’s ability to adapt in response to a changing environment and is central to functional recovery after an injury involving the nervous system. Vagus nerve stimulation (VNS) has already been shown to be effective in altering neuroplasticity. Most VNS research has been conducted on epileptic animals and thus offers little information on how VNS may affect a healthy human brain. The final goal of this project is to establish a minimally invasive VNS protocol aiming to augment neuroplasticity and ultimately affect behavioral performance in a cognitive task. Because this study is conducted using non-human primates, and because of the limited invasiveness of the procedure, the outcomes can be directly translated to applications for human subjects. Non-human primates are implanted with cortical electrodes allowing both recording and stimulation of the cortex at select locations. Closed-loop cortical stimulation triggered by the troughs of beta (15-25Hz) oscillations leads to phase-dependent changes in excitability which outlast the oscillatory episodes for a couple of seconds. By delivering current through a clip electrode attached to the right or left cymba concha, we paired the cortical stimulation with auricular branch VNS (abVNS). This stimulation protocol is used to investigate the effects of cycle-triggered cortical stimulation with abVNS. Preliminary results show a suppression of excitability when the abVNS is delivered in phase with cortical stimulation which lasted for minutes after the cycle-triggered stimulation has ended. However, more control experiments need to be run before conclusions can be drawn. These findings of lasting change to cortical plasticity are novel and suggest that vagus nerve stimulation can affect medium-term neural plasticity.


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