Found 53 results
Author Title [ Type(Asc)] Year
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Journal Article
M. A. Scidmore, Rockey, D. D., Fischer, E. R., Heinzen, R. A., and Hackstadt, T., Vesicular interactions of the Chlamydia trachomatis inclusion are determined by chlamydial early protein synthesis rather than route of entry., Infection and immunity, vol. 64, no. 12, pp. 5366-72, 1996.
J. P. Bannantine and Rockey, D. D., Use of primate model system to identify Chlamydia trachomatis protein antigens recognized uniquely in the context of infection., Microbiology (Reading, England), vol. 145 ( Pt 8), pp. 2077-85, 1999.
D. D. Rockey, Unraveling the basic biology and clinical significance of the chlamydial plasmid., The Journal of experimental medicine, vol. 208, no. 11, pp. 2159-62, 2011.
J. Dugan, Rockey, D. D., Jones, L., and Andersen, A. A., Tetracycline resistance in Chlamydia suis mediated by genomic islands inserted into the chlamydial inv-like gene., Antimicrobial agents and chemotherapy, vol. 48, no. 10, pp. 3989-95, 2004.
D. D. Rockey, Fischer, E. R., and Hackstadt, T., Temporal analysis of the developing Chlamydia psittaci inclusion by use of fluorescence and electron microscopy., Infection and immunity, vol. 64, no. 10, pp. 4269-78, 1996.
J. P. Bannantine, Rockey, D. D., and Hackstadt, T., Tandem genes of Chlamydia psittaci that encode proteins localized to the inclusion membrane., Molecular microbiology, vol. 28, no. 5, pp. 1017-26, 1998.
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., Canadian journal of microbiology, vol. 37, no. 10, pp. 758-63, 1991.
J. P. Bannantine, Griffiths, R. S., Viratyosin, W., Brown, W. J., and Rockey, D. D., A secondary structure motif predictive of protein localization to the chlamydial inclusion membrane., Cellular microbiology, vol. 2, no. 1, pp. 35-47, 2000.
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., Antimicrobial agents and chemotherapy, 2012.
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., Antimicrobial agents and chemotherapy, vol. 56, no. 8, pp. 4296-302, 2012.
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., Proceedings of the National Academy of Sciences of the United States of America, vol. 93, no. 20, pp. 11143-8, 1996.
D. D. Rockey, Scidmore, M. A., Bannantine, J. P., and Brown, W. J., Proteins in the chlamydial inclusion membrane., Microbes and infection / Institut Pasteur, vol. 4, no. 3, pp. 333-40, 2002.
D. D. Rockey and Rosquist, J. L., Protein antigens of Chlamydia psittaci present in infected cells but not detected in the infectious elementary body., Infection and immunity, vol. 62, no. 1, pp. 106-12, 1994.
T. Hackstadt, Fischer, E. R., Scidmore, M. A., Rockey, D. D., and Heinzen, R. A., Origins and functions of the chlamydial inclusion., Trends in microbiology, vol. 5, no. 7, pp. 288-93, 1997.
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., Infection and immunity, vol. 60, no. 6, pp. 2288-96, 1992.
T. Hackstadt, Scidmore, M. A., and Rockey, D. D., Lipid metabolism in Chlamydia trachomatis-infected cells: directed trafficking of Golgi-derived sphingolipids to the chlamydial inclusion., Proceedings of the National Academy of Sciences of the United States of America, vol. 92, no. 11, pp. 4877-81, 1995.
R. J. Suchland, Rockey, D. D., Bannantine, J. P., and Stamm, W. E., Isolates of Chlamydia trachomatis that occupy nonfusogenic inclusions lack IncA, a protein localized to the inclusion membrane., Infection and immunity, vol. 68, no. 1, pp. 360-7, 2000.
W. Viratyosin, Campbell, L. Ann, Kuo, C. - C., and Rockey, D. D., Intrastrain and interstrain genetic variation within a paralogous gene family in Chlamydia pneumoniae., BMC microbiology, vol. 2, p. 38, 2002.
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., Journal of bacteriology, vol. 192, no. 19, pp. 5093-102, 2010.
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., Infection and immunity, vol. 76, no. 12, pp. 5438-46, 2008.
W. J. Brown and Rockey, D. D., Identification of an antigen localized to an apparent septum within dividing chlamydiae., Infection and immunity, vol. 68, no. 2, pp. 708-15, 2000.
H. G. Chu, Weeks, S. K., Gilligan, D. M., and Rockey, D. D., Host alpha-adducin is redistributed and localized to the inclusion membrane in chlamydia- and chlamydophila-infected cells., Microbiology (Reading, England), vol. 154, no. Pt 12, pp. 3848-55, 2008.
R. J. Suchland, Sandoz, K. M., Jeffrey, B. M., Stamm, W. E., and Rockey, D. D., Horizontal transfer of tetracycline resistance among Chlamydia spp. in vitro., Antimicrobial agents and chemotherapy, vol. 53, no. 11, pp. 4604-11, 2009.
J. Lenart, Andersen, A. A., and Rockey, D. D., Growth and development of tetracycline-resistant Chlamydia suis., Antimicrobial agents and chemotherapy, vol. 45, no. 8, pp. 2198-203, 2001.
B. M. Jeffrey, Suchland, R. J., Eriksen, S. G., Sandoz, K. M., and Rockey, D. D., Genomic and phenotypic characterization of in vitro-generated Chlamydia trachomatis recombinants., BMC microbiology, vol. 13, p. 142, 2013.

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