Found 28 results
Author Title [ Type(Desc)] Year
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Journal Article
D. D. Rockey, Chesebro, B. B., Heinzen, R. A., and Hackstadt, T., A 28 kDa major immunogen of Chlamydia psittaci shares identity with Mip proteins of Legionella spp. and Chlamydia trachomatis-cloning and characterization of the C. psittaci mip-like gene., Microbiology (Reading), vol. 142 ( Pt 4), pp. 945-53, 1996.
K. M. Sandoz and Rockey, D. D., Antibiotic resistance in Chlamydiae., Future Microbiol, vol. 5, no. 9, pp. 1427-42, 2010.
K. M. Sandoz, Valiant, W. G., Eriksen, S. G., Hruby, D. E., Allen, R. D., and Rockey, D. D., The broad-spectrum antiviral compound ST-669 restricts chlamydial inclusion development and bacterial growth and localizes to host cell lipid droplets within treated cells., Antimicrob Agents Chemother, vol. 58, no. 7, pp. 3860-6, 2014.
D. D. Rockey, Grosenbach, D., Hruby, D. E., Peacock, M. G., Heinzen, R. A., and Hackstadt, T., Chlamydia psittaci IncA is phosphorylated by the host cell and is exposed on the cytoplasmic face of the developing inclusion., Mol Microbiol, vol. 24, no. 1, pp. 217-28, 1997.
E. D. Cram, Rockey, D. D., and Dolan, B. P., Chlamydia spp. development is differentially altered by treatment with the LpxC inhibitor LPC-011., BMC Microbiol, vol. 17, no. 1, p. 98, 2017.
J. P. Bannantine, Stamm, W. E., Suchland, R. J., and Rockey, D. D., Chlamydia trachomatis IncA is localized to the inclusion membrane and is recognized by antisera from infected humans and primates., Infect Immun, vol. 66, no. 12, pp. 6017-21, 1998.
T. Hackstadt, Rockey, D. D., Heinzen, R. A., and Scidmore, M. A., Chlamydia trachomatis interrupts an exocytic pathway to acquire endogenously synthesized sphingomyelin in transit from the Golgi apparatus to the plasma membrane., EMBO J, vol. 15, no. 5, pp. 964-77, 1996.
D. D. Rockey, Wang, J., Lei, L., and Zhong, G., Chlamydia vaccine candidates and tools for chlamydial antigen discovery., Expert Rev Vaccines, vol. 8, no. 10, pp. 1365-77, 2009.
D. Alzhanov, Barnes, J., Hruby, D. E., and Rockey, D. D., Chlamydial development is blocked in host cells transfected with Chlamydophila caviae incA., BMC Microbiol, vol. 4, p. 24, 2004.
D. D. Rockey, Heinzen, R. A., and Hackstadt, T., Cloning and characterization of a Chlamydia psittaci gene coding for a protein localized in the inclusion membrane of infected cells., Mol Microbiol, vol. 15, no. 4, pp. 617-26, 1995.
Y. Wang, LaBrie, S. D., Carrell, S. J., Suchland, R. J., Dimond, Z. E., Kwong, F., Rockey, D. D., P Hefty, S., and Hybiske, K., Development of Transposon Mutagenesis for Chlamydia muridarum., J Bacteriol, vol. 201, no. 23, 2019.
R. A. Heinzen, Scidmore, M. A., Rockey, D. D., and Hackstadt, T., Differential interaction with endocytic and exocytic pathways distinguish parasitophorous vacuoles of Coxiella burnetii and Chlamydia trachomatis., Infect Immun, vol. 64, no. 3, pp. 796-809, 1996.
G. D. Wiens, Rockey, D. D., Wu, Z., Chang, J., Levy, R., Crane, S., Chen, D. S., Capri, G. R., Burnett, J. R., Sudheesh, P. S., Schipma, M. J., Burd, H., Bhattacharyya, A., Rhodes, L. D., Kaul, R., and Strom, M. S., Genome sequence of the fish pathogen Renibacterium salmoninarum suggests reductive evolution away from an environmental Arthrobacter ancestor., J Bacteriol, vol. 190, no. 21, pp. 6970-82, 2008.
D. D. Rockey, Lenart, J., and Stephens, R. S., Genome sequencing and our understanding of chlamydiae., Infect Immun, vol. 68, no. 10, pp. 5473-9, 2000.
J. Lenart, Andersen, A. A., and Rockey, D. D., Growth and development of tetracycline-resistant Chlamydia suis., Antimicrob Agents Chemother, vol. 45, no. 8, pp. 2198-203, 2001.
W. J. Brown and Rockey, D. D., Identification of an antigen localized to an apparent septum within dividing chlamydiae., Infect Immun, vol. 68, no. 2, pp. 708-15, 2000.
R. J. Suchland, Jeffrey, B. M., Xia, M., Bhatia, A., Chu, H. G., Rockey, D. D., and Stamm, W. E., Identification of concomitant infection with Chlamydia trachomatis IncA-negative mutant and wild-type strains by genomic, transcriptional, and biological characterizations., Infect Immun, vol. 76, no. 12, pp. 5438-46, 2008.
E. Heinz, Rockey, D. D., Montanaro, J., Aistleitner, K., Wagner, M., and Horn, M., Inclusion membrane proteins of Protochlamydia amoebophila UWE25 reveal a conserved mechanism for host cell interaction among the Chlamydiae., J Bacteriol, vol. 192, no. 19, pp. 5093-102, 2010.
Y. Yuan, Lyng, K., Zhang, Y. X., Rockey, D. D., and Morrison, R. P., Monoclonal antibodies define genus-specific, species-specific, and cross-reactive epitopes of the chlamydial 60-kilodalton heat shock protein (hsp60): specific immunodetection and purification of chlamydial hsp60., Infect Immun, vol. 60, no. 6, pp. 2288-96, 1992.
D. D. Rockey and Rosquist, J. L., Protein antigens of Chlamydia psittaci present in infected cells but not detected in the infectious elementary body., Infect Immun, vol. 62, no. 1, pp. 106-12, 1994.
H. Su, Raymond, L., Rockey, D. D., Fischer, E., Hackstadt, T., and Caldwell, H. D., A recombinant Chlamydia trachomatis major outer membrane protein binds to heparan sulfate receptors on epithelial cells., Proc Natl Acad Sci U S A, vol. 93, no. 20, pp. 11143-8, 1996.
K. M. Sandoz, Eriksen, S. G., Jeffrey, B. M., Suchland, R. J., Putman, T. E., Hruby, D. E., Jordan, R., and Rockey, D. D., Resistance to a novel antichlamydial compound is mediated through mutations in Chlamydia trachomatis secY., Antimicrob Agents Chemother, vol. 56, no. 8, pp. 4296-302, 2012.
S. J. Jouffroy, Schlueter, A. H., Bildfell, R. J., and Rockey, D. D., Rhabdochlamydia spp. in an Oregon raptor., J Vet Diagn Invest, vol. 28, no. 4, pp. 473-6, 2016.
D. D. Rockey, Turaga, P. S., Wiens, G. D., Cook, B. A., and Kaattari, S. L., Serine proteinase of Renibacterium salmoninarum digests a major autologous extracellular and cell-surface protein., Can J Microbiol, vol. 37, no. 10, pp. 758-63, 1991.
J. P. Bannantine, Rockey, D. D., and Hackstadt, T., Tandem genes of Chlamydia psittaci that encode proteins localized to the inclusion membrane., Mol Microbiol, vol. 28, no. 5, pp. 1017-26, 1998.

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