Session 1N
McNair Session - Exploring the Natural World: From Numbers to Nanoparticles and Bats to Bacteria
1:15 PM to 2:45 PM | Moderated by Todd Sperry
- Presenter
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- Jordan Kennedy, Junior, Mechanical Engineering, Montana State University McNair Scholar
- Mentor
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- Jennifer Brown, Chemical Engineering, Montana State University
- Session
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- 1:15 PM to 2:45 PM
Xanthan gum (XG), a biopolymer excreted by bacterium Xanthomanoas campestris, is used in pharmaceuticals, cosmetics, agricultural products, food products, industrial products, and is used in enhance oil recovery processes because of its properties as a thickening agent, dispersion agent, and stabilizer of emulsions and suspensions. Locust bean gum (LBG), a polymer extracted from the seeds of the carob tree (Ceratonia siliqua), is of interest in the biopharmaceutical field as a medium for oral drug delivery. With the addition of nanoparticles, the material properties of the polymer solutions can be significantly altered. Understanding of polymer-particle interactions and their impact on the material response to shear through rheological measurements is necessary for targeted design of material properties for specific applications. Flow and oscillatory testing was performed on XG and LBG solutions with and without the addition of silica dioxide (SiO2) nanoparticles. Under constant shear, XG solution shows a shear thinning behavior typical of weak gels. With the addition of nanoparticles, the shear thinning behavior of XG is still present but at an overall higher viscosity. LBG shows shear thinning behavior with a Newtonian region at lower shear rates. The addition of nanoparticles to solution shows a region of shear thickening at lower shear rates and shear thinning behavior at higher shears at a considerable higher overall viscosity than the LBG solution without nanoparticles. When strain is held constand with increasing frequencies, the storage (G') and elastic (G'') modulus show that XG has a tendency of more elastic behavior than LBG. The addition of nanoparticles results in more viscous solutions with a higher elastic response. LBG behavior is mroe heavily impacted by the addition of SiO2 nanoparticles than XG.
- Presenter
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- Sandy Nguyen, Senior, Microbiology Mary Gates Scholar, McNair Scholar
- Mentors
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- Mary Lidstrom, Chemical Engineering
- Norma Cecilia Martinez-Gomez, Microbiology
- Session
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- 1:15 PM to 2:45 PM
Methylotrophic bacteria have long been recognized for their metabolism of reduced single carbon (C1) compounds. Their potential for biotechnology and the occurrence of C1 metabolism in all organisms signify their importance on an industrial and fundamental scale. Currently, mechanisms used by methylotrophs to regulate and reset their metabolic network in response to perturbations are not well understood. Previous studies suggest abrupt shifts in nucleotide levels drastically affect growth. This project will examine how nucleotide ratios correlate with carbon flux in Methylobacterium extorquens AM1. Once C1 compounds undergo serial oxidation to formate, carbon flux is partitioned for further oxidation or assimilation. Two reactions involved in C1 oxidation are known to generate reducing power: (1) the dehydrogenation of methylene-dH4MPT into methenyl-dH4MPT catalyzed by MtdA or MtdB and (2) the oxidation of formate into CO2 catalyzed by Fdh1 or Fdh2. Genetic studies demonstrated differential phenotypes in which mtdB fdh1 grew similarly to wild type while mtdB fdh2 grew worse relative to the mtdB mutant strain. One possible explanation is a global decrease in NADH production offsets the delicate balance of intracellular nucleotides required for an already reducing power-limited mode of growth. To explore this hypothesis, I will conduct experiments to: (1) quantify the levels of NADP+, NADPH, NAD+, and NADH in WT, mtdB, mtdB fdh1, and mtdB fdh2 and (2) manipulate nucleotide ratios with overexpression and deletion of the pntAB and udhA genes. These genes encode for membrane bound (PntAB) and soluble (UdhA) transhydrogenases capable of interconverting between NADPH and NADH. Since mechanisms exist in other bacteria to alter nucleotides pools to meet metabolic demands, a similar mechanism can be predicted to operate in M. extorquens AM1. Success in this project will lead to better understanding of how cells balance reducing power and energy for oxidation and growth, ultimately leading to improved biotechnological utilization.
- Presenter
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- Hannah Blair, Recent Graduate, Wildlife Ecology & Management, Arkansas State University McNair Scholar
- Mentor
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- Thomas Risch, Biology, Arkansas State University
- Session
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- 1:15 PM to 2:45 PM
Geomyces destructans is a psychrophilic (cold-loving) fungus that causes cutaneous infections in cave dwelling bats and high mortality in North American populations. Geomyces pannorum is a closely related psychrotrophic (cold-tolerant) species that is a rare skin pathogen of vertebrates. Cold-adapted organisms adjust lipid synthesis to lower membrane viscosity and thus survive unfavorable habitats. Lipid profiles, or lipid class composition, may partially explain ecological niche and G. destructans pathogenicity to bats. Additionally, profiles are species specific and may be utilized to differentiate closely related species and detect disease. We incubated Geomyces at 5°, 8°, 15°, 18°, and 22° C and isolated fungal lipid content. Broad lipid classes were determined to be primarily sterols, free fatty acyls (FFAs), and triacylglycerides (TAGs). Geomyces destructans produced higher proportions of unsaturated 18 carbon TAGs than G. pannorum. Geomyces produced more 18:3 (18 carbon, 3 double bonds) TAGs at five degrees than at higher temperatures. Geomyces destructans made higher proportions of TAGs at its growth limits, suggesting alterations in lipid synthesis to decrease cellular toxicity and reproductive effort. Furthermore, these results indicate Geomyces alter lipid structure to survive cold temperatures by increasing lipid unsaturation. Future studies should focus on temperature optima of enzymes involved in TAG synthesis and disruption of lipogenic metabolic processes. Lipid profiles among multiple Geomyces species should be further investigated as a method of disease detection.
- Presenter
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- Cheyenne Gerdes, Senior, Wildlife Ecology and Management, Arkansas State University McNair Scholar
- Mentor
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- Thomas Risch, Biology, Arkansas State University
- Session
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- 1:15 PM to 2:45 PM
White-nose Syndrome (WNS) is a wildlife disease caused by the pathogenic fungus Geomyces destructans that has resulted in the mass mortalities of North American cave bats. One clinical sign of WNS is wing necrosis. Geomyces destructans may secrete proteases that degrade tissue, thus reducing wing strength and elasticity. We isolated Geomyces destructans extracellular enzymes from an in vitro system and applied enzyme solution to bat wing tissue. The toughness, strength, and elasticity of tissues was assessed with tensile testing. Protease activity was assessed with SDS-PAGE and peptide mass fingerprinting by MALDI-TOF MS. Protein profiles generated by SDS-PAGE indicate higher solubilized protein in treated samples. Major bands were identified as integumentary proteins by MS. Tensile testing did not detect damage, but Geomyces destructans proteases may cleave host integument.
- Presenter
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- Laura White, Senior, Mathematics, Arkansas State University McNair Scholar
- Mentor
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- Hong Zhou, Statistics, Arkansas State University
- Session
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- 1:15 PM to 2:45 PM
Statistical designs are a way to layout experiments before conducting your experiment. A well-chosen experimental design allows one to get more information out of the experiment. Regular fractional factorial designs are types of experimental designs that are used for studying effects of two or more constraints simultaneously, but leave large gaps in run size. Run sizes are the amount of experiments an experimenter has to conduct. Non-regular fractional factorial designs can be constructed for every run size that is a multiple of four, which allows run size flexibility and economy. My research focuses on construction of optimal designs of size 32 runs using graphic processing unit (GPU) technology. I have been working on creating a design table of non-regular fractional factorial of size 32 runs. Creating design tables make it possible for engineers and scientist to plan experiments for any combination of runs and number of variables to be studied.
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