Skip to menu Skip to content Skip to footer

2005

Journal Article

G-CSF potently inhibits osteoblast activity and CXCL12 mRNA expression in the bone marrow

Semerad, CL, Christopher, MJ, Liu, FL, Short, B, Simmons, PJ, Winkler, I, Levesque, JP, Chappel, J, Ross, FP and Link, DC (2005). G-CSF potently inhibits osteoblast activity and CXCL12 mRNA expression in the bone marrow. Blood, 106 (9), 3020-3027. doi: 10.1182/blood-2004-01-0272

G-CSF potently inhibits osteoblast activity and CXCL12 mRNA expression in the bone marrow

2004

Conference Publication

Protease-dependent and protease-independent mechanisms of hematopoietic progenitor cell (HPC) mobilization

Levesque, JP, Liu, F, Winkler, IG, Simmons, PJ, Betsuyaku, T, Senior, R, Pham, C and Link, DC (2004). Protease-dependent and protease-independent mechanisms of hematopoietic progenitor cell (HPC) mobilization. 33rd Annual Meeting of the International Society for Experimental Hematology, New Orleans, LA, United States, 17-20 July 2004. Philadelphia, PA, United States: Elsevier.

Protease-dependent and protease-independent mechanisms of hematopoietic progenitor cell (HPC) mobilization

2004

Journal Article

Adhesion to E-selectin promotes growth inhibition and apoptosis of human and murine hematopoietic progenitor cells independent of PSGL-1

Winkler, IG, Snapp, KR, Simmons, PJ and Levesque, JP (2004). Adhesion to E-selectin promotes growth inhibition and apoptosis of human and murine hematopoietic progenitor cells independent of PSGL-1. Blood, 103 (5), 1685-1692. doi: 10.1182/blood-2003-06-1921

Adhesion to E-selectin promotes growth inhibition and apoptosis of human and murine hematopoietic progenitor cells independent of PSGL-1

2003

Conference Publication

P-selectin delays the in vitro differentiation of murine lin- Sca-1+c-KIT+ cells whereas E-selectin accelerates their differentiation

Eto, T, Winkler, , Purton, L, Simmons, P and Levesque, JP (2003). P-selectin delays the in vitro differentiation of murine lin- Sca-1+c-KIT+ cells whereas E-selectin accelerates their differentiation. 32nd Annual Scientific Meeting of the International Society for Experimental Hematology, Paris, France, 5-8 July 2003. Philadelphia, PA, United States: Elsevier.

P-selectin delays the in vitro differentiation of murine lin- Sca-1+c-KIT+ cells whereas E-selectin accelerates their differentiation

2003

Journal Article

Granulocyte colony-stimulating factor induces the release in the bone marrow of proteases that cleave c-KIT receptor (CD117) from the surface of hematopoietic progenitor cells

Levesque, JP, Hendy, J, Winkler, IG, Takamatsu, Y and Simmons, PJ (2003). Granulocyte colony-stimulating factor induces the release in the bone marrow of proteases that cleave c-KIT receptor (CD117) from the surface of hematopoietic progenitor cells. Experimental Hematology, 31 (2), 109-117. doi: 10.1016/S0301-472X(02)01028-7

Granulocyte colony-stimulating factor induces the release in the bone marrow of proteases that cleave c-KIT receptor (CD117) from the surface of hematopoietic progenitor cells

2002

Conference Publication

Proteases that cleave c-KIT receptor (CD117) from the surface of hemopoietic progenitor cells are released in the bone marrow during G-CSF-induced mobilization

Levesque, J. P., Hendy, J., Winkler, I. G., Takamatsu, Y. and Simmons, P. J. (2002). Proteases that cleave c-KIT receptor (CD117) from the surface of hemopoietic progenitor cells are released in the bone marrow during G-CSF-induced mobilization. 44th Annual Meeting of the American-Society-of-Hematology, Philadelphia, PA, United States, 6-10 December 2002. Washington, DC, United States: American Society of Hematology.

Proteases that cleave c-KIT receptor (CD117) from the surface of hemopoietic progenitor cells are released in the bone marrow during G-CSF-induced mobilization

2002

Journal Article

Mobilization by either cyclophosphamide or granulocyte colony-stimulating factor transforms the bone marrow into a highly proteolytic environment

Levesque, JP, Hendy, J, Takamatsu, Y, Williams, B, Winkler, IG and Simmons, PJ (2002). Mobilization by either cyclophosphamide or granulocyte colony-stimulating factor transforms the bone marrow into a highly proteolytic environment. Experimental Hematology, 30 (5), 440-449. doi: 10.1016/S0301-472X(02)00788-9

Mobilization by either cyclophosphamide or granulocyte colony-stimulating factor transforms the bone marrow into a highly proteolytic environment

2001

Conference Publication

Adhesion to E-selectin promotes growth inhibition and apoptosis of human and murine hematopoietic progenitor cells

Winkler, IG, Eto, T, Purton, LE, Haylock, DN, Snapp, KR, Kansas, GS, Simmons, PJ and Levesque, JP (2001). Adhesion to E-selectin promotes growth inhibition and apoptosis of human and murine hematopoietic progenitor cells. Unknown, Unknown, Unknown. Washington, DC United States: American Society of Hematology.

Adhesion to E-selectin promotes growth inhibition and apoptosis of human and murine hematopoietic progenitor cells

2001

Conference Publication

VCAM-1 cleavage and release of neutrophil serine proteases elastase and cathepsin G in the bone marrow are common features of hemopoietic progenitor cell mobilization induced by G-CSF or chemotherapy

Levesque, J. P., Hendy, J., Takamatsu, Y., Williams, B., Winkler, I. G. and Simmons, P. J. (2001). VCAM-1 cleavage and release of neutrophil serine proteases elastase and cathepsin G in the bone marrow are common features of hemopoietic progenitor cell mobilization induced by G-CSF or chemotherapy. *, *, *. Washington, DC, United States: American Society of Hematology.

VCAM-1 cleavage and release of neutrophil serine proteases elastase and cathepsin G in the bone marrow are common features of hemopoietic progenitor cell mobilization induced by G-CSF or chemotherapy

2000

Journal Article

Construction of infectious feline foamy virus genomes: Cat antisera do not cross-neutralize feline foamy virus chimera with serotype-specific env sequences

Zemba, M, Alke, A, Bodem, J, Winkler, IG, Flower, RLP, Pfrepper, KI, Delius, H, Flugel, RM and Lochelt, M (2000). Construction of infectious feline foamy virus genomes: Cat antisera do not cross-neutralize feline foamy virus chimera with serotype-specific env sequences. Virology, 266 (1), 150-156. doi: 10.1006/viro.1999.0037

Construction of infectious feline foamy virus genomes: Cat antisera do not cross-neutralize feline foamy virus chimera with serotype-specific env sequences

2000

Journal Article

Antibody to human foamy virus not detected in individuals treated with blood products or in blood donors

Winkler, IG, Flugel, RM, Asikainen, K and Flower, RLP (2000). Antibody to human foamy virus not detected in individuals treated with blood products or in blood donors. Vox Sanguinis, 79 (2), 118-119. doi: 10.1046/j.1423-0410.2000.79201182.x

Antibody to human foamy virus not detected in individuals treated with blood products or in blood donors

1999

Conference Publication

Detection of gene conversion associated with Miltenberger blood group polymorphisms

Woodland, NB, Flower, RL and Winkler, IG (1999). Detection of gene conversion associated with Miltenberger blood group polymorphisms. BETHESDA: AMER ASSOC BLOOD BANKS.

Detection of gene conversion associated with Miltenberger blood group polymorphisms

1999

Journal Article

Epidemiology of feline foamy virus and feline immunodeficiency virus infections in domestic and feral cats: a seroepidemiological study

Winkler, IG, Lochelt, M and Flower, RLP (1999). Epidemiology of feline foamy virus and feline immunodeficiency virus infections in domestic and feral cats: a seroepidemiological study. Journal of Clinical Microbiology, 37 (9), 2848-2851. doi: 10.1128/JCM.37.9.2848-2851.1999

Epidemiology of feline foamy virus and feline immunodeficiency virus infections in domestic and feral cats: a seroepidemiological study

1998

Journal Article

Detection and molecular characterisation of feline foamy virus serotypes in naturally infected cats

Winkler, IG, Flugel, RM, Lochelt, M and Flower, RLP (1998). Detection and molecular characterisation of feline foamy virus serotypes in naturally infected cats. Virology, 247 (2), 144-151. doi: 10.1006/viro.1998.9232

Detection and molecular characterisation of feline foamy virus serotypes in naturally infected cats

1997

Journal Article

Characterization of the spliced pol transcript of feline foamy virus: the splice acceptor site of the pol transcript is located in gag of foamy viruses (vol 70, pg 9027, 1996)

Bodem, J, Lochelt, M, Winkler, , Flower, RP, Delius, H and Flugel, RM (1997). Characterization of the spliced pol transcript of feline foamy virus: the splice acceptor site of the pol transcript is located in gag of foamy viruses (vol 70, pg 9027, 1996). Journal of Virology, 71 (11), 8952-8952.

Characterization of the spliced pol transcript of feline foamy virus: the splice acceptor site of the pol transcript is located in gag of foamy viruses (vol 70, pg 9027, 1996)

1997

Journal Article

Characterization of the genome of feline foamy virus and its proteins shows distinct features different from those of primate spumaviruses

Winkler, , Bodem, J, Haas, L, Zemba, M, Delius, H, Flower, R, Flugel, RM and Lochelt, M (1997). Characterization of the genome of feline foamy virus and its proteins shows distinct features different from those of primate spumaviruses. Journal of Virology, 71 (9), 6727-6741. doi: 10.1128/JVI.71.9.6727-6741.1997

Characterization of the genome of feline foamy virus and its proteins shows distinct features different from those of primate spumaviruses

1997

Journal Article

A rapid streptavidin-capture ELISA specific for the detection of antibodies to feline foamy virus

Winkler, IG, Lochelt, M, Levesque, JP, Bodem, J, Flugel, RM and Flower, RLP (1997). A rapid streptavidin-capture ELISA specific for the detection of antibodies to feline foamy virus. Journal of Immunological Methods, 207 (1), 69-77. doi: 10.1016/S0022-1759(97)00109-9

A rapid streptavidin-capture ELISA specific for the detection of antibodies to feline foamy virus

1996

Journal Article

Characterization of the spliced pol transcript of feline foamy virus: The splice acceptor site of the pol transcript is located in gag of foamy viruses

Bodem, J, Lochelt, M, Winkler, , Flower, RP, Delius, H and Flugel, RM (1996). Characterization of the spliced pol transcript of feline foamy virus: The splice acceptor site of the pol transcript is located in gag of foamy viruses. Journal of Virology, 70 (12), 9024-9027. doi: 10.1128/JVI.70.12.9024-9027.1996

Characterization of the spliced pol transcript of feline foamy virus: The splice acceptor site of the pol transcript is located in gag of foamy viruses

1976

Journal Article

FAILURE OF GLOBIN MESSENGER-RNA TO STIMULATE GLOBIN-SYNTHESIS IN CELL-FREE-EXTRACTS OF INTERFERON-TREATED GLOBIN-SYNTHESIZING MOUSE ERYTHROLEUKEMIC CELLS

HILLER, G, WINKLER, , VIEHHAUSER, G, JUNGWIRTH, C, BODO, G, DUBE, S and OSTERTAG, W (1976). FAILURE OF GLOBIN MESSENGER-RNA TO STIMULATE GLOBIN-SYNTHESIS IN CELL-FREE-EXTRACTS OF INTERFERON-TREATED GLOBIN-SYNTHESIZING MOUSE ERYTHROLEUKEMIC CELLS. Virology, 69 (1), 360-363. doi: 10.1016/0042-6822(76)90228-2

FAILURE OF GLOBIN MESSENGER-RNA TO STIMULATE GLOBIN-SYNTHESIS IN CELL-FREE-EXTRACTS OF INTERFERON-TREATED GLOBIN-SYNTHESIZING MOUSE ERYTHROLEUKEMIC CELLS