Banta:Publications

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Publications

  1. Park JP, Cropek DM, and Banta S. High affinity peptides for the recognition of the heart disease biomarker troponin I identified using phage display. Biotechnol Bioeng 2010 Mar 1; 105(4) 678-86. doi:10.1002/bit.22597 pmid:19891006. PubMed HubMed PubGet [Paper25]
  2. Szilvay GR, Blenner MA, Shur O, Cropek DM, and Banta S. A FRET-based method for probing the conformational behavior of an intrinsically disordered repeat domain from Bordetella pertussis adenylate cyclase. Biochemistry 2009 Dec 1; 48(47) 11273-82. doi:10.1021/bi901447j pmid:19860484. PubMed HubMed PubGet [Paper24]
  3. Wheeldon IR, Campbell E, and Banta S. A chimeric fusion protein engineered with disparate functionalities-enzymatic activity and self-assembly. J Mol Biol 2009 Sep 11; 392(1) 129-42. doi:10.1016/j.jmb.2009.06.075 pmid:19577577. PubMed HubMed PubGet [Paper23]
  4. Simon MJ, Gao S, Kang WH, Banta S, and Morrison B 3rd. TAT-mediated intracellular protein delivery to primary brain cells is dependent on glycosaminoglycan expression. Biotechnol Bioeng 2009 Sep 1; 104(1) 10-9. doi:10.1002/bit.22377 pmid:19449355. PubMed HubMed PubGet [Paper22]
  5. Chockalingam K, Lu HD, and Banta S. Development of a Bacteriophage-Based System for the Selection of Structured Peptides. Anal Biochem 2009 Feb 4. doi:10.1016/j.ab.2009.01.042 pmid:19454225. PubMed HubMed PubGet [Paper21]
  6. Gao S, Simon MJ, Morrison B 3rd, and Banta S. Bifunctional chimeric fusion proteins engineered for DNA delivery: optimization of the protein to DNA ratio. Biochim Biophys Acta 2009 Mar; 1790(3) 198-207. pmid:19402206. PubMed HubMed PubGet [Paper20]
  7. Glykys DJ and Banta S. Metabolic control analysis of an enzymatic biofuel cell. Biotechnol Bioeng 2009 Apr 15; 102(6) 1624-35. doi:10.1002/bit.22199 pmid:19061242. PubMed HubMed PubGet [Paper19]
  8. Chen XJ, West AC, Cropek DM, and Banta S. Detection of the superoxide radical anion using various alkanethiol monolayers and immobilized cytochrome c. Anal Chem 2008 Dec 15; 80(24) 9622-9. doi:10.1021/ac800796b pmid:19072268. PubMed HubMed PubGet [Paper18]
  9. Wheeldon IR, Gallaway JW, Barton SC, and Banta S. Bioelectrocatalytic hydrogels from electron-conducting metallopolypeptides coassembled with bifunctional enzymatic building blocks. Proc Natl Acad Sci U S A 2008 Oct 7; 105(40) 15275-80. doi:10.1073/pnas.0805249105 pmid:18824691. PubMed HubMed PubGet [Paper17]
  10. Casali M, Banta S, Zambonelli C, Megeed Z, and Yarmush ML. Site-directed mutagenesis of the hinge peptide from the hemagglutinin protein: enhancement of the pH-responsive conformational change. Protein Eng Des Sel 2008 Jun; 21(6) 395-404. doi:10.1093/protein/gzn018 pmid:18411225. PubMed HubMed PubGet [Paper16]
  11. Blenner MA and Banta S. Characterization of the 4D5Flu single-chain antibody with a stimulus-responsive elastin-like peptide linker: a potential reporter of peptide linker conformation. Protein Sci 2008 Mar; 17(3) 527-36. doi:10.1110/ps.073257308 pmid:18218715. PubMed HubMed PubGet [Paper15]
  12. Gallaway J, Wheeldon I, Rincon R, Atanassov P, Banta S, and Barton SC. Oxygen-reducing enzyme cathodes produced from SLAC, a small laccase from Streptomyces coelicolor. Biosens Bioelectron 2008 Mar 14; 23(8) 1229-35. doi:10.1016/j.bios.2007.11.004 pmid:18096378. PubMed HubMed PubGet [Paper14]
  13. Wheeldon IR, Barton SC, and Banta S. Bioactive proteinaceous hydrogels from designed bifunctional building blocks. Biomacromolecules 2007 Oct; 8(10) 2990-4. doi:10.1021/bm700858p pmid:17887795. PubMed HubMed PubGet [Paper13]
  14. Chockalingam K, Blenner M, and Banta S. Design and application of stimulus-responsive peptide systems. Protein Eng Des Sel 2007 Apr; 20(4) 155-61. doi:10.1093/protein/gzm008 pmid:17376876. PubMed HubMed PubGet [Paper12]
  15. Banta S, Megeed Z, Casali M, Rege K, and Yarmush ML. Engineering protein and peptide building blocks for nanotechnology. J Nanosci Nanotechnol 2007 Feb; 7(2) 387-401. pmid:17450770. PubMed HubMed PubGet [Paper11]
  16. Banta S, Vemula M, Yokoyama T, Jayaraman A, Berthiaume F, and Yarmush ML. Contribution of gene expression to metabolic fluxes in hypermetabolic livers induced through burn injury and cecal ligation and puncture in rats. Biotechnol Bioeng 2007 May 1; 97(1) 118-37. doi:10.1002/bit.21200 pmid:17009336. PubMed HubMed PubGet [Paper10]
  17. Banta S, Yokoyama T, Berthiaume F, and Yarmush ML. Effects of dehydroepiandrosterone administration on rat hepatic metabolism following thermal injury. J Surg Res 2005 Aug; 127(2) 93-105. doi:10.1016/j.jss.2005.01.001 pmid:15882877. PubMed HubMed PubGet [Paper9]
  18. Yokoyama T, Banta S, Berthiaume F, Nagrath D, Tompkins RG, and Yarmush ML. Evolution of intrahepatic carbon, nitrogen, and energy metabolism in a D-galactosamine-induced rat liver failure model. Metab Eng 2005 Mar; 7(2) 88-103. doi:10.1016/j.ymben.2004.09.003 pmid:15781418. PubMed HubMed PubGet [Paper8]
  19. Banta S, Yokoyama T, Berthiaume F, and Yarmush ML. Quantitative effects of thermal injury and insulin on the metabolism of the skeletal muscle using the perfused rat hindquarter preparation. Biotechnol Bioeng 2004 Dec 5; 88(5) 613-29. doi:10.1002/bit.20258 pmid:15470703. PubMed HubMed PubGet [Paper7]
  20. Sanli G, Banta S, Anderson S, and Blaber M. Structural alteration of cofactor specificity in Corynebacterium 2,5-diketo-D-gluconic acid reductase. Protein Sci 2004 Feb; 13(2) 504-12. doi:10.1110/ps.03450704 pmid:14718658. PubMed HubMed PubGet [Paper6]
  21. Yarmush ML and Banta S. Metabolic engineering: advances in modeling and intervention in health and disease. Annu Rev Biomed Eng 2003; 5 349-81. doi:10.1146/annurev.bioeng.5.031003.163247 pmid:14527316. PubMed HubMed PubGet [Paper5]
  22. Banta S, Boston M, Jarnagin A, and Anderson S. Mathematical modeling of in vitro enzymatic production of 2-Keto-L-gulonic acid using NAD(H) or NADP(H) as cofactors. Metab Eng 2002 Oct; 4(4) 273-84. pmid:12646322. PubMed HubMed PubGet [Paper4]
  23. Banta S and Anderson S. Verification of a novel NADH-binding motif: combinatorial mutagenesis of three amino acids in the cofactor-binding pocket of Corynebacterium 2,5-diketo-D-gluconic acid reductase. J Mol Evol 2002 Dec; 55(6) 623-31. doi:10.1007/s00239-002-2345-x pmid:12486521. PubMed HubMed PubGet [Paper3]
  24. Banta S, Swanson BA, Wu S, Jarnagin A, and Anderson S. Optimizing an artificial metabolic pathway: engineering the cofactor specificity of Corynebacterium 2,5-diketo-D-gluconic acid reductase for use in vitamin C biosynthesis. Biochemistry 2002 May 21; 41(20) 6226-36. pmid:12009883. PubMed HubMed PubGet [Paper2]
  25. Banta S, Swanson BA, Wu S, Jarnagin A, and Anderson S. Alteration of the specificity of the cofactor-binding pocket of Corynebacterium 2,5-diketo-D-gluconic acid reductase A. Protein Eng 2002 Feb; 15(2) 131-40. pmid:11917149. PubMed HubMed PubGet [Paper1]
All Medline abstracts: PubMed HubMed


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