Search Results - "Drader, Jared J"

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    Novel Interface for High-Throughput Analysis of Biotherapeutics by Electrospray Mass Spectrometry by Park, Hae-Min, Winton, Valerie J, Drader, Jared J, Manalili Wheeler, Sheri, Lazar, Greg A, Kelleher, Neil L, Liu, Yichin, Tran, John C, Compton, Philip D

    Published in Analytical chemistry (Washington) (21-01-2020)
    “…With the rapid rise of therapeutic antibodies and antibody-drug conjugates, significant investments have been made in developing workflows that utilize mass…”
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    Mass spectrometry provides accurate characterization of two genetic marker types in Bacillus anthracis by Van Ert, Matthew N, Hofstadler, Steven A, Jiang, Yun, Busch, Joseph D, Wagner, David M, Drader, Jared J, Ecker, David J, Hannis, James C, Huynh, Lynn Y, Schupp, James M, Simonson, Tatum S, Keim, Paul

    Published in BioTechniques (01-10-2004)
    “…Epidemiological and forensic analyses of bioterrorism events involving Bacillus anthracis could be improved if both variable number tandem repeats (VNTRs) and…”
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    Characterization of Low-Affinity Complexes between RNA and Small Molecules Using Electrospray Ionization Mass Spectrometry by Griffey, Richard H, Sannes-Lowery, Kristin A, Drader, Jared J, Mohan, Venkatraman, Swayze, Eric E, Hofstadler, Steven A

    Published in Journal of the American Chemical Society (18-10-2000)
    “…Electrospray ionization mass spectrometry (ESI-MS) provides a sensitive method for the characterization of low-affinity (∼mM) complexes between nucleic acids…”
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    Human RNase H1 Activity Is Regulated by a Unique Redox Switch Formed between Adjacent Cysteines by Lima, Walt F., Wu, Hongjiang, Nichols, Josh G., Manalili, Sherilynn M., Drader, Jared J., Hofstadler, Steven A., Crooke, Stanley T.

    Published in The Journal of biological chemistry (25-04-2003)
    “…Human RNase H1 is active only under reduced conditions. Oxidation as well as N-ethylmaleimide (NEM) treatment of human RNase H1 ablates the cleavage activity…”
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    Selective Ion Filtering by Digital Thresholding:  A Method To Unwind Complex ESI-Mass Spectra and Eliminate Signals from Low Molecular Weight Chemical Noise by Hofstadler, Steven A, Drader, Jared J, Schink, Amy

    Published in Analytical chemistry (Washington) (15-01-2006)
    “…In this work, we present a simple method by which to preferentially detect either high molecular weight or low molecular weight ions generated by electrospray…”
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    Infrared Multiphoton Dissociation with a Hollow Fiber Waveguide by Drader, Jared J, Hannis, James C, Hofstadler, Steven A

    Published in Analytical chemistry (Washington) (01-08-2003)
    “…A novel scheme for performing infrared multiphoton dissociation (IRMPD) is presented in which a hollow fiber waveguide (HFWG) is used to transmit IR radiation…”
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    Fourier transform ion cyclotron resonance mass spectrometry as a high throughput affinity screen to identify RNA binding ligands by Sannes-Lowery, Kristin A, Drader, Jared J, Griffey, Richard H, Hofstadler, Steven A

    “…The continuing evolution of analytical instrumentation based on high performance mass spectrometry has catalyzed the development of more sophisticated and…”
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    Alternative approaches to infrared multiphoton dissociation in an external ion reservoir by Hofstadler, Steven A, Drader, Jared J, Gaus, Hans, Hannis, James C, Sannes-Lowery, Kristin A

    “…In this work we present variations on in-hexapole infrared multiphoton dissociation (IRMPD) for the characterization of modified oligonucleotides using an…”
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    Digital Quadrature Heterodyne Detection for High-Resolution Fourier Transform Ion Cyclotron Resonance Mass Spectrometry by Drader, Jared J, Shi, Stone D.-H, Blakney, Greg T, Hendrickson, Christopher L, Laude, David A, Marshall, Alan G

    Published in Analytical chemistry (Washington) (15-10-1999)
    “…The pursuit of ever higher mass-resolving power in Fourier transform ion cyclotron resonance mass spectrometry (FT-ICR MS) has driven a demand for higher…”
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    Fourier transform ion cyclotron resonance mass spectrometry in a high homogeneity 25 tesla resistive magnet by Shi, Stone D.-H, Drader, Jared J, Hendrickson, Christopher L, Marshall, Alan G

    “…Many performance parameters of Fourier transform ion cyclotron resonance (FT-ICR) mass spectrometry improve dramatically with increasing magnetic field. Our…”
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    Real-Time Monitoring of the Gas Phase Reactions of a Single Ion Population Using the Remeasurement Experiment in Fourier Transform Ion Cyclotron Resonance Mass Spectrometry by Guan, Ziqiang, Drader, Jared J, Campbell, Victoria L, Laude, David A

    Published in Analytical chemistry (Washington) (15-04-1995)
    “…A single population of multiply charged protein ions formed by electrospray ionization is held in a trapped ion cell and remeasured continuously by Fourier…”
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    Comparison and interconversion of the two most common frequency-to-mass calibration functions for Fourier transform ion cyclotron resonance mass spectrometry by Shi, Stone D.-H., Drader, Jared J., Freitas, Michael A., Hendrickson, Christopher L., Marshall, Alan G.

    Published in International journal of mass spectrometry (21-01-2000)
    “…In a perfect three-dimensional axial quadrupolar electrostatic potential field, Ledford et al. showed that the frequency-to-mass calibration relation m/z = A L…”
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    High throughput drug discovery with ESI-FTICR by Sannes-Lowery, Kristin A., Cummins, Lendell L., Chen, Shuo, Drader, Jared J., Hofstadler, Steven A.

    Published in International journal of mass spectrometry (01-11-2004)
    “…Ribonucleic acids (RNA) are an attractive target for drug discovery since they play critical roles in cellular functions. Because small structured subdomains…”
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    Iron-mediated Cycloaddition Reactions for Fe(1,3-Butadiene)2L+ (L=Ethyne, Propyne) Complexes in the Gas Phase. Butadiene/Butadiene Versus Butadiene/Alkyne Cycloaddition by Bakhtiar, Ray, Drader, Jared J., Arneson, Robin K., Jacobson, Denley B.

    “…Competitive iron‐mediated cycloaddition of butadiene with butadiene versus cycloaddition of butadiene with alkynes in Fe(C4H6) + 2L (L = C 2H 2, C 3H 4)…”
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