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Transient Receptor Potential Melastatin 8 (TRPM8) is a non-selective cation channel notable as a primary cold sensor in humans. It is also involved in a variety of (patho)physiological events including pain sensation, chronic cough, diabetes, obesity, and cancer. TRPM8 is modulated by a variety of stimuli including pH, temperature, cooling

Transient Receptor Potential Melastatin 8 (TRPM8) is a non-selective cation channel notable as a primary cold sensor in humans. It is also involved in a variety of (patho)physiological events including pain sensation, chronic cough, diabetes, obesity, and cancer. TRPM8 is modulated by a variety of stimuli including pH, temperature, cooling agents, voltage, lipid, and other proteins. However, the molecular mechanism underlining its function has not yet clear raising the need for isolated proteins to be well-characterized. Over 20 years, E. coli has been a heterologous expression system of interest due to its low cost and high yield. However, the lack of post-translational modifications and chaperone may cause a misfolding or affect protein function. Mammalian expression system addresses these drawbacks and is a good candidate for the functional study of complex human protein. Here I describe my research in optimizing the transfection, expression, and purification of the human TRPM8 from adherent Human Embryonic Kidney (HEK293) cells which can be used for small-scale studies including, but not limited to, planar lipid bilayer electrophysiology.
ContributorsNguyen, Hoang Phuong My (Author) / Van Horn, Wade (Thesis director) / Wang, Xu (Committee member) / Hilton, Jacob (Committee member) / School of Life Sciences (Contributor) / School of Molecular Sciences (Contributor) / Computing and Informatics Program (Contributor) / Barrett, The Honors College (Contributor)
Created2017-12
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Description
Na+/H+ antiporters are vital membrane proteins for cell homeostasis, transporting Na+ ions in exchange for H+ across the lipid bilayer. In humans, dysfunction of these transporters are implicated in hypertension, heart failure, epilepsy, and autism, making them well-established drug targets. Although experimental structures for bacterial homologs of the human Na+/H+

Na+/H+ antiporters are vital membrane proteins for cell homeostasis, transporting Na+ ions in exchange for H+ across the lipid bilayer. In humans, dysfunction of these transporters are implicated in hypertension, heart failure, epilepsy, and autism, making them well-established drug targets. Although experimental structures for bacterial homologs of the human Na+/H+ have been obtained, the detailed mechanism for ion transport is still not well-understood. The most well-studied of these transporters, Escherichia coli NhaA, known to transport 2 H+ for every Na+ extruded, was recently shown to bind H+ and Na+ at the same binding site, for which the two ion species compete. Using molecular dynamics simulations, the work presented in this dissertation shows that Na+ binding disrupts a previously-unidentified salt bridge between two conserved residues, suggesting that one of these residues, Lys300, may participate directly in transport of H+. This work also demonstrates that the conformational change required for ion translocation in a homolog of NhaA, Thermus thermophilus NapA, thought by some to involve only small helical movements at the ion binding site, is a large-scale, rigid-body movement of the core domain relative to the dimerization domain. This elevator-like transport mechanism translates a bound Na+ up to 10 Å across the membrane. These findings constitute a major shift in the prevailing thought on the mechanism of these transporters, and serve as an exciting launchpad for new developments toward understanding that mechanism in detail.
ContributorsDotson, David L (Author) / Beckstein, Oliver (Thesis advisor) / Ozkan, Sefika B (Committee member) / Ros, Robert (Committee member) / Van Horn, Wade (Committee member) / Arizona State University (Publisher)
Created2016
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Description
About 1% of the United States adult population currently suffers from schizophrenia. The symptoms of schizophrenia can be broken down into three main categories including: positive symptoms such as psychoses, negative symptoms such as anhedonia, and cognitive symptoms such as memory difficulties. The early growth response 3 (Egr3) is part

About 1% of the United States adult population currently suffers from schizophrenia. The symptoms of schizophrenia can be broken down into three main categories including: positive symptoms such as psychoses, negative symptoms such as anhedonia, and cognitive symptoms such as memory difficulties. The early growth response 3 (Egr3) is part of a family of genes known as the immediate early genes (IEGs), which are zinc-finger transcription factors. IEGs are not protein synthesis dependent, which means that they can be activated quickly, within 30-45 minutes, in response to certain environmental stimuli such as sleep deprivation. Egr3, an activity dependent gene, may be up-regulated by both genetic and environmental cues. Egr3 is thought to play an integral role in a biochemical pathway that may explain the onset of schizophrenia. However, the exact causes of schizophrenia remain unknown. Egr3 is not only activated in response to environmental factors, but has also been linked to many genes that are associated with schizophrenia in humans (Huentelman et al., 2015). Post-mortem brain tissue studies of patients with schizophrenia have decreased levels of EGR3 in their prefrontal cortex (PFC) and mice lacking Egr3 (Egr3 -/-) exhibit schizophrenia-like phenotypes such as locomotor hyperactivity. Egr 3 -/- mice also exhibit a diminished head twitch response to 2,5-Dimethoxy-4-iodoamphetamine (DOI), a 5-HT2A agonist (Yamada, et al., 2007; Gallitano-Mendel, et al., 2008). A link was established between schizophrenia patients and the serotonin 2A receptor (5-HT2AR) upon recognizing that 5-HT2AR agonists like lysergic acid diethylamide (LSD) create hallucinations similar to those in schizophrenic patients and 5-HT2AR antagonists such as the second-generation antipsychotic clozapine can reverse those hallucinations (Sommer, 2012). Paradoxically, however, post-mortem studies of schizophrenia patients have actually shown a decrease in PFC 5-HT2ARs as well as a 70% decrease found in the PFC of Egr3 -/- mice (Rasmussen, et al., 2010; Williams, et al., 2012). Therefore, we hypothesize that EGR3 directly regulates expression of 5-HT2ARs. To test this we will use virus-mediated overexpression of 5-HT2ARs in the PFCs of mice to see if we can rescue the schizophrenia-like phenotypes of the Egr3 -/- mice. After bilateral PFC stereotaxic injection of herpes simplex virus (HSV) with enhanced green fluorescent protein (EGFP) or HSV-Htr2a-EGFP in both wild type (WT) and Egr3 -/- mice, the mice were behaviorally tested using locomotor activity and DOI-induced head twitch response. We found that Egr3-/- mice, compared to WT mice, demonstrated locomotor hyperactivity and a decreased DOI-induced head twitch response, confirming prior findings, but no significant main effect of virus. A significant effect of the HSV-Htr2a-EGFP was seen when comparing DOI-induced head twitch response in WT mice to Egr3 -/- mice. WT mice showed a higher number of head twitches in comparison to the knockout mice. These findings suggest further research must be conducted in order to investigate whether a functional 5-HT2AR is being translated and correctly transported to the membrane. These findings may also point to an unknown factor mediating the regulation between Egr3 and 5-HT2ARs.
ContributorsHoebee, Shelby Marie (Author) / Van Horn, Wade (Thesis director) / Gallitano, Amelia (Committee member) / Department of Psychology (Contributor) / School of Molecular Sciences (Contributor) / School of Criminology and Criminal Justice (Contributor) / School of Life Sciences (Contributor) / Barrett, The Honors College (Contributor)
Created2016-05
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Description
Glycosaminoglycan (GAG) binding by the cytokine pleiotrophin (PTN) was examined by expressing both thrombospondin 1 type-1 repeat domains of PTN separately, as PTN-N and PTN-C. PTN-N contains residues 31-89, and PTN-C contains residues 90-146. Nuclear magnetic resonance (NMR) experiments were conducted on both PTN-N and PTN-C to elucidate GAG binding

Glycosaminoglycan (GAG) binding by the cytokine pleiotrophin (PTN) was examined by expressing both thrombospondin 1 type-1 repeat domains of PTN separately, as PTN-N and PTN-C. PTN-N contains residues 31-89, and PTN-C contains residues 90-146. Nuclear magnetic resonance (NMR) experiments were conducted on both PTN-N and PTN-C to elucidate GAG binding regions. Titration with heparin dp6 showed a twofold increase in affinity when expressing PTN-N and PTN-C separately rather than as intact PTN. Paramagnetic relaxation rate enhancement experiments and surface paramagnetic relaxation enhancement (PRE) perturbation experiments were used to determine which residues were involved in GAG binding. One binding site was observed in PTN-N, around residue T82, and two binding sites were observed in PTN-C, one around residue K93 and the other around residue G142. These observed binding sites agree with the binding sites already proposed by the Wang lab group and other studies. Future work on the subject could be done on confirming that other varieties and length GAGs bind at the same sites, as well as examining the effect longer GAG fragments have on the affinity of intact PTN versus separate domains.
ContributorsKuch, Nathaniel Jacob (Author) / Wang, Xu (Thesis director) / Van Horn, Wade (Committee member) / School of Molecular Sciences (Contributor) / School of Life Sciences (Contributor) / Barrett, The Honors College (Contributor)
Created2015-12
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Description

Mutations in the DNA of somatic cells, resulting from inaccuracies in DNA<br/>replication or exposure to harsh conditions (ionizing radiation, carcinogens), may be<br/>loss-of-function mutations, and the compounding of these mutations can lead to cancer.<br/>Such mutations can come in the form of thymine dimers, N-𝛽 glycosyl bond hydrolysis,<br/>oxidation by hydrogen peroxide or

Mutations in the DNA of somatic cells, resulting from inaccuracies in DNA<br/>replication or exposure to harsh conditions (ionizing radiation, carcinogens), may be<br/>loss-of-function mutations, and the compounding of these mutations can lead to cancer.<br/>Such mutations can come in the form of thymine dimers, N-𝛽 glycosyl bond hydrolysis,<br/>oxidation by hydrogen peroxide or other radicals, and deamination of cytosine to uracil.<br/>However, many cells possess the machinery to counteract the deleterious effects of<br/>such mutations. While eukaryotic DNA repair enzymes decrease the incidence of<br/>mutations from 1 mistake per 10^7 nucleotides to 1 mistake per 10^9 nucleotides, these<br/>mutations, however sparse, are problematic. Of particular interest is a mutation in which<br/>uracil is incorporated into DNA, either by spontaneous deamination of cysteine or<br/>misincorporation. Such mutations occur about one in every 107 cytidine residues in 24<br/>hours. DNA uracil glycosylase (UDG) recognizes these mutations and cleaves the<br/>glycosidic bond, creating an abasic site. However, the rate of this form of DNA repair<br/>varies, depending on the nucleotides that surround the uracil. Most enzyme-DNA<br/>interactions depend on the sequence of DNA (which may change the duplex twist),<br/>even if they only bind to the sugar-phosphate backbone. In the mechanism of uracil<br/>excision, UDG flips the uracil out of the DNA double helix, and this step may be<br/>impaired by base pairs that neighbor the uracil. The deformability of certain regions of<br/>DNA may facilitate this step in the mechanism, causing these regions to be less<br/>mutable. In DNA, base stacking, a form of van der Waals forces between the aromatic<br/>nucleic bases, may make these uracil inclusions more difficult to excise. These regions,<br/>stabilized by base stacking interactions, may be less susceptible to repair by<br/>glycosylases such as UDG, and thus, more prone to mutation.

ContributorsUgaz, Bryan T (Author) / Levitus, Marcia (Thesis director) / Van Horn, Wade (Committee member) / Department of Physics (Contributor) / School of Molecular Sciences (Contributor) / Barrett, The Honors College (Contributor)
Created2021-05
ContributorsRavel, Maurice, 1875-1937 (Composer)