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International Journal of Radiation Oncology, Biology, Physics
|
February 1, 1997
Clinical use of asymmetric collimators
W Kwa, V Tsang, R N Fairey, et al.
European Journal of Biochemistry
|
November 25, 1997
Crystallographic analysis of human immunodeficiency virus 1 protease with an analog of the conserved CA-p2 substrate -- interactions with frequently occurring glutamic acid residue at P2' position of substrates
I T Weber, J Wu, J Adomat, et al.
Critical Care Medicine
|
June 2, 2000
Relative contribution of preload and afterload to the reduction in cardiac output caused by nitric oxide synthase inhibition with L-N(G)-methylarginine hydrochloride 546C88
R W Harrison, R N Thakkar, H Senzaki, et al.
Biochemistry
|
April 29, 1998
Structural basis for specificity of retroviral proteases
J Wu, J M Adomat, T W Ridky, et al.
Nanomaterials (Basel, Switzerland)
|
December 19, 2018
Enhanced Radiation Tolerance of Tungsten Nanoparticles to He Ion Irradiation
E Aradi, J Lewis-Fell, R W Harrison, et al.
Protein Engineering
|
March 6, 1998
Crystal structure of TNF-alpha mutant R31D with greater affinity for receptor R1 compared with R2
C Reed, Z Q Fu, J Wu, et al.
Protein Engineering
|
July 6, 2000
Antiviral agent based on the non-structural protein targeting the maturation process of HIV-1: expression and susceptibility of chimeric Vpr as a substrate for cleavage by HIV-1 protease
D Serio, S P Singh, M A Cartas, et al.
Protein Engineering
|
December 1, 1995
Model complexes of tumor necrosis factor-alpha with receptors R1 and R2
Z Q Fu, R W Harrison, C Reed, et al.
The Journal of Biological Chemistry
|
March 1, 1996
Human immunodeficiency virus, type 1 protease substrate specificity is limited by interactions between substrate amino acids bound in adjacent enzyme subsites
T W Ridky, C E Cameron, J Cameron, et al.
European Journal of Biochemistry
|
September 30, 2000
Comparison of the substrate specificity of the human T-cell leukemia virus and human immunodeficiency virus proteinases
J Tözsér, G Zahuczky, P Bagossi, et al.
Page
of 13
Search research articles
Search
Showing results (111-120 of 130) with videos related to
Sort By:
Page
of 13
International Journal of Radiation Oncology, Biology, Physics
|
February 1, 1997
Clinical use of asymmetric collimators
W Kwa, V Tsang, R N Fairey, et al.
European Journal of Biochemistry
|
November 25, 1997
Crystallographic analysis of human immunodeficiency virus 1 protease with an analog of the conserved CA-p2 substrate -- interactions with frequently occurring glutamic acid residue at P2' position of substrates
I T Weber, J Wu, J Adomat, et al.
Critical Care Medicine
|
June 2, 2000
Relative contribution of preload and afterload to the reduction in cardiac output caused by nitric oxide synthase inhibition with L-N(G)-methylarginine hydrochloride 546C88
R W Harrison, R N Thakkar, H Senzaki, et al.
Biochemistry
|
April 29, 1998
Structural basis for specificity of retroviral proteases
J Wu, J M Adomat, T W Ridky, et al.
Nanomaterials (Basel, Switzerland)
|
December 19, 2018
Enhanced Radiation Tolerance of Tungsten Nanoparticles to He Ion Irradiation
E Aradi, J Lewis-Fell, R W Harrison, et al.
Protein Engineering
|
March 6, 1998
Crystal structure of TNF-alpha mutant R31D with greater affinity for receptor R1 compared with R2
C Reed, Z Q Fu, J Wu, et al.
Protein Engineering
|
July 6, 2000
Antiviral agent based on the non-structural protein targeting the maturation process of HIV-1: expression and susceptibility of chimeric Vpr as a substrate for cleavage by HIV-1 protease
D Serio, S P Singh, M A Cartas, et al.
Protein Engineering
|
December 1, 1995
Model complexes of tumor necrosis factor-alpha with receptors R1 and R2
Z Q Fu, R W Harrison, C Reed, et al.
The Journal of Biological Chemistry
|
March 1, 1996
Human immunodeficiency virus, type 1 protease substrate specificity is limited by interactions between substrate amino acids bound in adjacent enzyme subsites
T W Ridky, C E Cameron, J Cameron, et al.
European Journal of Biochemistry
|
September 30, 2000
Comparison of the substrate specificity of the human T-cell leukemia virus and human immunodeficiency virus proteinases
J Tözsér, G Zahuczky, P Bagossi, et al.
Page
of 13