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Showing results (11-20 of 25) with videos related to

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Journal of Medicinal Chemistry|January 24, 1992
Structure-function studies in a series of carboxyl-terminal octapeptide analogues of anaphylatoxin C5aM Kawai, D A Quincy, B Lane, et al.
Journal of Medicinal Chemistry|June 20, 1998
32-Ascomycinyloxyacetic acid derived immunosuppressants. Independence of immunophilin binding and immunosuppressive potencyR Wagner, T A Rhoades, Y S Or, et al.
Antimicrobial Agents and Chemotherapy|June 16, 2001
Comparative in vitro activity of ABT-773, a novel antibacterial ketolideA M Nilius, M H Bui, L Almer, et al.
The Journal of Antibiotics|May 1, 1996
3-Keto-11,12-carbazate derivatives of 6-O-methylerythromycin A synthesis and in vitro activityG Griesgraber, Y S Or, D T Chu, et al.
Journal of Medicinal Chemistry|November 2, 1999
Retention of immunosuppressant activity in an ascomycin analogue lacking a hydrogen-bonding interaction with FKBP12P E Wiedeman, S W Fesik, A M Petros, et al.
Bioorganic & Medicinal Chemistry Letters|April 27, 2000
Synthesis and antibacterial activity of novel 6-O-substituted erythromycin A derivativesR F Clark, Z Ma, S Wang, et al.
Agents and Actions. Supplements|January 1, 1991
C5a structural requirements for neutrophil receptor interactionK W Mollison, T A Fey, R A Krause, et al.
Microbial Drug Resistance (Larchmont, N.Y.)|November 24, 1999
Induction of ribosome methylation in MLS-resistant Streptococcus pneumoniae by macrolides and ketolidesP Zhong, Z Cao, R Hammond, et al.
Journal of Medicinal Chemistry|May 30, 1998
Anhydrolide macrolides. 2. Synthesis and antibacterial activity of 2,3-anhydro-6-O-methyl 11,12-carbazate erythromycin A analoguesG Griesgraber, M J Kramer, R L Elliott, et al.
Journal of Medicinal Chemistry|October 9, 1999
Synthesis and antimicrobial activity of 4H-4-oxoquinolizine derivatives: consequences of structural modification at the C-8 positionZ Ma, D T Chu, C S Cooper, et al.
Pageof 3

Showing results (11-20 of 25) with videos related to

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Pageof 3
Journal of Medicinal Chemistry|January 24, 1992
Structure-function studies in a series of carboxyl-terminal octapeptide analogues of anaphylatoxin C5aM Kawai, D A Quincy, B Lane, et al.
Journal of Medicinal Chemistry|June 20, 1998
32-Ascomycinyloxyacetic acid derived immunosuppressants. Independence of immunophilin binding and immunosuppressive potencyR Wagner, T A Rhoades, Y S Or, et al.
Antimicrobial Agents and Chemotherapy|June 16, 2001
Comparative in vitro activity of ABT-773, a novel antibacterial ketolideA M Nilius, M H Bui, L Almer, et al.
The Journal of Antibiotics|May 1, 1996
3-Keto-11,12-carbazate derivatives of 6-O-methylerythromycin A synthesis and in vitro activityG Griesgraber, Y S Or, D T Chu, et al.
Journal of Medicinal Chemistry|November 2, 1999
Retention of immunosuppressant activity in an ascomycin analogue lacking a hydrogen-bonding interaction with FKBP12P E Wiedeman, S W Fesik, A M Petros, et al.
Bioorganic & Medicinal Chemistry Letters|April 27, 2000
Synthesis and antibacterial activity of novel 6-O-substituted erythromycin A derivativesR F Clark, Z Ma, S Wang, et al.
Agents and Actions. Supplements|January 1, 1991
C5a structural requirements for neutrophil receptor interactionK W Mollison, T A Fey, R A Krause, et al.
Microbial Drug Resistance (Larchmont, N.Y.)|November 24, 1999
Induction of ribosome methylation in MLS-resistant Streptococcus pneumoniae by macrolides and ketolidesP Zhong, Z Cao, R Hammond, et al.
Journal of Medicinal Chemistry|May 30, 1998
Anhydrolide macrolides. 2. Synthesis and antibacterial activity of 2,3-anhydro-6-O-methyl 11,12-carbazate erythromycin A analoguesG Griesgraber, M J Kramer, R L Elliott, et al.
Journal of Medicinal Chemistry|October 9, 1999
Synthesis and antimicrobial activity of 4H-4-oxoquinolizine derivatives: consequences of structural modification at the C-8 positionZ Ma, D T Chu, C S Cooper, et al.
Pageof 3