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Biochemistry
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December 23, 1998
Conversion of a catalytic into a structural disulfide bond by circular permutation
J Hennecke, R Glockshuber
FEBS Letters
|
September 3, 1999
Circularly permuted variants of the green fluorescent protein
S Topell, J Hennecke, R Glockshuber
The Journal of Biological Chemistry
|
January 3, 1997
Influence of acidic residues and the kink in the active-site helix on the properties of the disulfide oxidoreductase DsbA
J Hennecke, C Spleiss, R Glockshuber
Journal of Molecular Biology
|
February 27, 1999
Random circular permutation of DsbA reveals segments that are essential for protein folding and stability
J Hennecke, P Sebbel, R Glockshuber
The EMBO Journal
|
November 4, 2000
Structure of a covalently stabilized complex of a human alphabeta T-cell receptor, influenza HA peptide and MHC class II molecule, HLA-DR1
J Hennecke, A Carfi, D C Wiley
The Journal of Biological Chemistry
|
August 29, 1997
Elimination of all charged residues in the vicinity of the active-site helix of the disulfide oxidoreductase DsbA. Influence of electrostatic interactions on stability and redox properties
A Jacobi, M Huber-Wunderlich, J Hennecke, et al.
Proteins
|
December 3, 1999
Fluorescence quenching in the DsbA protein from Escherichia coli: complete picture of the excited-state energy pathway and evidence for the reshuffling dynamics of the microstates of tryptophan
A Sillen, J Hennecke, D Roethlisberger, et al.
The American Journal of Otology
|
December 10, 1997
Evaluation of noise reduction systems for cochlear implant users in different acoustic environment
V Hamacher, W H Doering, G Mauer, et al.
Biochemistry
|
May 27, 1997
Quenching of tryptophan fluorescence by the active-site disulfide bridge in the DsbA protein from Escherichia coli
J Hennecke, A Sillen, M Huber-Wunderlich, et al.
Science (New York, N.Y.)
|
November 9, 2023
Plant size, latitude, and phylogeny explain within-population variability in herbivory
, M L Robinson, P G Hahn, et al.
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of 1
Search research articles
Search
Showing results (1-10 of 10) with videos related to
Sort By:
Page
of 1
Biochemistry
|
December 23, 1998
Conversion of a catalytic into a structural disulfide bond by circular permutation
J Hennecke, R Glockshuber
FEBS Letters
|
September 3, 1999
Circularly permuted variants of the green fluorescent protein
S Topell, J Hennecke, R Glockshuber
The Journal of Biological Chemistry
|
January 3, 1997
Influence of acidic residues and the kink in the active-site helix on the properties of the disulfide oxidoreductase DsbA
J Hennecke, C Spleiss, R Glockshuber
Journal of Molecular Biology
|
February 27, 1999
Random circular permutation of DsbA reveals segments that are essential for protein folding and stability
J Hennecke, P Sebbel, R Glockshuber
The EMBO Journal
|
November 4, 2000
Structure of a covalently stabilized complex of a human alphabeta T-cell receptor, influenza HA peptide and MHC class II molecule, HLA-DR1
J Hennecke, A Carfi, D C Wiley
The Journal of Biological Chemistry
|
August 29, 1997
Elimination of all charged residues in the vicinity of the active-site helix of the disulfide oxidoreductase DsbA. Influence of electrostatic interactions on stability and redox properties
A Jacobi, M Huber-Wunderlich, J Hennecke, et al.
Proteins
|
December 3, 1999
Fluorescence quenching in the DsbA protein from Escherichia coli: complete picture of the excited-state energy pathway and evidence for the reshuffling dynamics of the microstates of tryptophan
A Sillen, J Hennecke, D Roethlisberger, et al.
The American Journal of Otology
|
December 10, 1997
Evaluation of noise reduction systems for cochlear implant users in different acoustic environment
V Hamacher, W H Doering, G Mauer, et al.
Biochemistry
|
May 27, 1997
Quenching of tryptophan fluorescence by the active-site disulfide bridge in the DsbA protein from Escherichia coli
J Hennecke, A Sillen, M Huber-Wunderlich, et al.
Science (New York, N.Y.)
|
November 9, 2023
Plant size, latitude, and phylogeny explain within-population variability in herbivory
, M L Robinson, P G Hahn, et al.
Page
of 1