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Dive into the research topics where Hugh O'Neill is active.

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Featured researches published by Hugh O'Neill.


Biosensors and Bioelectronics | 2003

Palladium-bacterial cellulose membranes for fuel cells

Barbara R. Evans; Hugh O'Neill; Valerie P. Malyvanh; Ida Lee; Jonathan Woodward

Bacterial cellulose is a versatile renewable biomaterial that can be used as a hydrophilic matrix for the incorporation of metals into thin, flexible, thermally stable membranes. In contrast to plant cellulose, we found it catalyzed the deposition of metals within its structure to generate a finely divided homogeneous catalyst layer. Experimental data suggested that bacterial cellulose possessed reducing groups capable of initiating the precipitation of palladium, gold, and silver from aqueous solution. Since the bacterial cellulose contained water equivalent to at least 200 times the dry weight of the cellulose, it was dried to a thin membranous structure suitable for the construction of membrane electrode assemblies (MEAs). Results of our study with palladium-cellulose showed that it was capable of catalyzing the generation of hydrogen when incubated with sodium dithionite and generated an electrical current from hydrogen in an MEA containing native cellulose as the polyelectrolyte membrane (PEM). Advantages of using native and metallized bacterial cellulose membranes in an MEA over other PEMs such as Nafion 117 include its higher thermal stability to 130 degrees C and lower gas crossover.


Nature Nanotechnology | 2010

Self-organized photosynthetic nanoparticle for cell-free hydrogen production.

Ifeyinwa J. Iwuchukwu; Michael Vaughn; Natalie Myers; Hugh O'Neill; Paul D. Frymier; Barry D. Bruce

There is considerable interest in making use of solar energy through photosynthesis to create alternative forms of fuel. Here, we show that photosystem I from a thermophilic bacterium and cytochrome-c(6) can, in combination with a platinum catalyst, generate a stable supply of hydrogen in vitro upon illumination. The self-organized platinization of the photosystem I nanoparticles allows electron transport from sodium ascorbate to photosystem I via cytochrome-c(6) and finally to the platinum catalyst, where hydrogen gas is formed. Our system produces hydrogen at temperatures up to 55 degrees C and is temporally stable for >85 days with no decrease in hydrogen yield when tested intermittently. The maximum yield is approximately 5.5 micromol H(2) h(-1) mg(-1) chlorophyll and is estimated to be approximately 25-fold greater than current biomass-to-fuel strategies. Future work will further improve this yield by increasing the kinetics of electron transfer, extending the spectral response and replacing the platinum catalyst with a renewable hydrogenase.


Biomacromolecules | 2010

Breakdown of Cell Wall Nanostructure in Dilute Acid Pretreated Biomass

Sai Venkatesh Pingali; Volker S. Urban; William T. Heller; Joseph McGaughey; Hugh O'Neill; Marcus Foston; Dean A. A. Myles; Arthur J. Ragauskas; Barbara R. Evans

The generation of bioethanol from lignocellulosic biomass holds great promise for renewable and clean energy production. A better understanding of the complex mechanisms of lignocellulose breakdown during various pretreatment methods is needed to realize this potential in a cost and energy efficient way. Here we use small-angle neutron scattering (SANS) to characterize morphological changes in switchgrass lignocellulose across molecular to submicrometer length scales resulting from the industrially relevant dilute acid pretreatment method. Our results demonstrate that dilute acid pretreatment increases the cross-sectional radius of the crystalline cellulose fibril. This change is accompanied by removal of hemicellulose and the formation of R(g) ∼ 135 A lignin aggregates. The structural signature of smooth cell wall surfaces is observed at length scales larger than 1000 A, and it remains remarkably invariable during pretreatment. This study elucidates the interplay of the different biomolecular components in the breakdown process of switchgrass by dilute acid pretreatment. The results are important for the development of efficient strategies of biomass to biofuel conversion.


Green Chemistry | 2014

Common processes drive the thermochemical pretreatment of lignocellulosic biomass

Paul Langan; Loukas Petridis; Hugh O'Neill; Sai Venkatesh Pingali; Marcus Foston; Yoshiharu Nishiyama; Roland Schulz; Benjamin Lindner; B. Leif Hanson; Shane E. Harton; William T. Heller; Volker S. Urban; Barbara R. Evans; S. Gnanakaran; Arthur J. Ragauskas; Jeremy C. Smith; Brian H. Davison

Lignocellulosic biomass, a potentially important renewable organic source of energy and chemical feedstock, resists degradation to glucose in industrial hydrolysis processes and thus requires expensive thermochemical pretreatments. Understanding the mechanism of biomass breakdown during these pretreatments will lead to more efficient use of biomass. By combining multiple probes of structure, sensitive to different length scales, with molecular dynamics simulations, we reveal two fundamental processes responsible for the morphological changes in biomass during steam explosion pretreatment: cellulose dehydration and lignin-hemicellulose phase separation. We further show that the basic driving forces are the same in other leading thermochemical pretreatments, such as dilute acid pretreatment and ammonia fiber expansion.


Journal of Biological Chemistry | 2013

Organization and flexibility of cyanobacterial thylakoid membranes examined by neutron scattering.

Michelle Liberton; Lawrence Page; William B. O'Dell; Hugh O'Neill; Eugene Mamontov; Volker S. Urban; Himadri B. Pakrasi

Background: In cyanobacteria, light harvesting and photosynthesis occur in the thylakoid membranes. Results: The distances between thylakoid membranes are correlated with the size of the phycobilisome antenna and change reversibly and rapidly upon illumination. Conclusion: Thylakoid membranes have a structural plasticity tied to the regulation of photosynthesis. Significance: Characterizing the structural changes in photosynthetic membranes is crucial for understanding light harvesting and photosynthetic productivity. Cyanobacteria are prokaryotes that can use photosynthesis to convert sunlight into cellular fuel. Knowledge of the organization of the membrane systems in cyanobacteria is critical to understanding the metabolic processes in these organisms. We examined the wild-type strain of Synechocystis sp. PCC 6803 and a series of mutants with altered light-harvesting phycobilisome antenna systems for changes in thylakoid membrane architecture under different conditions. Using small-angle neutron scattering, it was possible to resolve correlation distances of subcellular structures in live cells on the nanometer scale and capture dynamic light-induced changes to these distances. Measurements made from samples with varied scattering contrasts confirmed that these distances could be attributed to the thylakoid lamellar system. We found that the changes to the thylakoid system were reversible between light- and dark-adapted states, demonstrating a robust structural flexibility in the architecture of cyanobacterial cells. Chemical disruption of photosynthetic electron transfer diminished these changes, confirming the involvement of the photosynthetic apparatus. We have correlated these findings with electron microscopy data to understand the origin of the changes in the membranes and found that light induces an expansion in the center-to-center distances between the thylakoid membrane layers. These combined data lend a dynamic dimension to the intracellular organization in cyanobacterial cells.


Plant Physiology | 2016

A Structural Study of CESA1 Catalytic Domain of Arabidopsis Cellulose Synthesis Complex: Evidence for CESA Trimers

Venu Gopal Vandavasi; Daniel K. Putnam; Qiu Zhang; Loukas Petridis; William T. Heller; B. Tracy Nixon; Candace H. Haigler; Udaya C. Kalluri; Leighton Coates; Paul Langan; Jeremy C. Smith; Jens Meiler; Hugh O'Neill

Assembly into stable trimers provides strong evidence for 18 protein subunits to assemble in a cellulose synthesis complex that synthesizes an 18-chain cellulose microfibril. A cellulose synthesis complex with a “rosette” shape is responsible for synthesis of cellulose chains and their assembly into microfibrils within the cell walls of land plants and their charophyte algal progenitors. The number of cellulose synthase proteins in this large multisubunit transmembrane protein complex and the number of cellulose chains in a microfibril have been debated for many years. This work reports a low resolution structure of the catalytic domain of CESA1 from Arabidopsis (Arabidopsis thaliana; AtCESA1CatD) determined by small-angle scattering techniques and provides the first experimental evidence for the self-assembly of CESA into a stable trimer in solution. The catalytic domain was overexpressed in Escherichia coli, and using a two-step procedure, it was possible to isolate monomeric and trimeric forms of AtCESA1CatD. The conformation of monomeric and trimeric AtCESA1CatD proteins were studied using small-angle neutron scattering and small-angle x-ray scattering. A series of AtCESA1CatD trimer computational models were compared with the small-angle x-ray scattering trimer profile to explore the possible arrangement of the monomers in the trimers. Several candidate trimers were identified with monomers oriented such that the newly synthesized cellulose chains project toward the cell membrane. In these models, the class-specific region is found at the periphery of the complex, and the plant-conserved region forms the base of the trimer. This study strongly supports the “hexamer of trimers” model for the rosette cellulose synthesis complex that synthesizes an 18-chain cellulose microfibril as its fundamental product.


Letters in Applied Microbiology | 2007

Statistical analysis of optimal culture conditions for Gluconacetobacter hansenii cellulose production

Stacy A. Hutchens; R. V. Leon; Hugh O'Neill; Barbara R. Evans

Aim:  The purpose of this study was to analyse the effects of different culture parameters on Gluconacetobacter hansenii (ATCC 10821) to determine which conditions provided optimum cellulose growth.


Journal of Applied Crystallography | 2014

The Bio-SANS instrument at the High Flux Isotope Reactor of Oak Ridge National Laboratory

William T. Heller; Volker S. Urban; Gary W. Lynn; Kevin L. Weiss; Hugh O'Neill; Sai Venkatesh Pingali; Shuo Qian; Kenneth C. Littrell; Yuri B. Melnichenko; Michelle V. Buchanan; Douglas L Selby; G. D. Wignall; Paul Butler; Dean A. A. Myles

Small-angle neutron scattering (SANS) is a powerful tool for characterizing complex disordered materials, including biological materials. The Bio-SANS instrument of the High Flux Isotope Reactor of Oak Ridge National Laboratory (ORNL) is a high-flux low-background SANS instrument that is, uniquely among SANS instruments, dedicated to serving the needs of the structural biology and biomaterials communities as an open-access user facility. Here, the technical specifications and performance of the Bio-SANS are presented. Sample environments developed to address the needs of the user program of the instrument are also presented. Further, the isotopic labeling and sample preparation capabilities available in the Bio-Deuteration Laboratory for users of the Bio-SANS and other neutron scattering instruments at ORNL are described. Finally, a brief survey of research performed using the Bio-SANS is presented, which demonstrates the breadth of the research that the instruments user community engages in.


Journal of Biological Chemistry | 2011

Small-angle neutron scattering reveals pH-dependent conformational changes in trichoderma reesei cellobiohydrolase I: Implications for enzymatic activity

Sai Venkatesh Pingali; Hugh O'Neill; Joseph McGaughey; Volker S. Urban; Caroline S Rempe; Loukas Petridis; Jeremy C. Smith; Barbara R. Evans; William T. Heller

Cellobiohydrolase I (Cel7A) of the fungus Trichoderma reesei (now classified as an anamorph of Hypocrea jecorina) hydrolyzes crystalline cellulose to soluble sugars, making it of key interest for producing fermentable sugars from biomass for biofuel production. The activity of the enzyme is pH-dependent, with its highest activity occurring at pH 4–5. To probe the response of the solution structure of Cel7A to changes in pH, we measured small angle neutron scattering of it in a series of solutions having pH values of 7.0, 6.0, 5.3, and 4.2. As the pH decreases from 7.0 to 5.3, the enzyme structure remains well defined, possessing a spatial differentiation between the cellulose binding domain and the catalytic core that only changes subtly. At pH 4.2, the solution conformation of the enzyme changes to a structure that is intermediate between a properly folded enzyme and a denatured, unfolded state, yet the secondary structure of the enzyme is essentially unaltered. The results indicate that at the pH of optimal activity, the catalytic core of the enzyme adopts a structure in which the compact packing typical of a fully folded polypeptide chain is disrupted and suggest that the increased range of structures afforded by this disordered state plays an important role in the increased activity of Cel7A through conformational selection.


Soft Matter | 2013

Secondary structure and rigidity in model proteins

Stefania Perticaroli; Jonathan D. Nickels; Georg Ehlers; Hugh O'Neill; Qui Zhang; Alexei P. Sokolov

There is tremendous interest in understanding the role that secondary structure plays in the rigidity and dynamics of proteins. In this work we analyze nanomechanical properties of proteins chosen to represent different secondary structures: α-helices (myoglobin and bovine serum albumin), β-barrels (green fluorescent protein), and α + β + loop structures (lysozyme). Our experimental results show that in these model proteins, the β motif is a stiffer structural unit than the α-helix in both dry and hydrated states. This difference appears not only in the rigidity of the protein, but also in the amplitude of fast picosecond fluctuations. Moreover, we show that for these examples the secondary structure correlates with the temperature- and hydration-induced changes in the protein dynamics and rigidity. Analysis also suggests a connection between the length of the secondary structure (α-helices) and the low-frequency vibrational mode, the so-called boson peak. The presented results suggest an intimate connection of dynamics and rigidity with the protein secondary structure.

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Barbara R. Evans

Oak Ridge National Laboratory

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Volker S. Urban

Oak Ridge National Laboratory

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William T. Heller

Oak Ridge National Laboratory

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Eugene Mamontov

Oak Ridge National Laboratory

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Sai Venkatesh Pingali

Oak Ridge National Laboratory

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Qiu Zhang

Oak Ridge National Laboratory

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Elias Greenbaum

Oak Ridge National Laboratory

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Arthur J. Ragauskas

Georgia Institute of Technology

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Jonathan Woodward

United States Department of Energy

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Alexei P. Sokolov

Oak Ridge National Laboratory

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