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FEBS Letters|March 24, 1997
Engineering thermolysin-like proteases whose stability is largely independent of calciumO R Veltman, G Vriend, B van den Burg, et al.Biochemistry|May 16, 1998
Probing catalytic hinge bending motions in thermolysin-like proteases by glycine --> alanine mutationsO R Veltman, V G Eijsink, G Vriend, et al.European Journal of Biochemistry|September 18, 2001
The effect of changing the hydrophobic S1' subsite of thermolysin-like proteases on substrate specificityA de Kreij, B van den Burg, O R Veltman, et al.Protein Engineering|March 1, 1994
The effect of engineering surface loops on the thermal stability of Bacillus subtilis neutral proteaseF Hardy, G Vriend, B van der Vinne, et al.Proteins|May 1, 1995
The essential dynamics of thermolysin: confirmation of the hinge-bending motion and comparison of simulations in vacuum and waterD M van Aalten, A Amadei, A B Linssen, et al.Proteins|October 1, 1992
Effects of changing the interaction between subdomains on the thermostability of Bacillus neutral proteasesV G Eijsink, G Vriend, B van der Vinne, et al.Protein Engineering|December 1, 1996
Analysis of structural determinants of the stability of thermolysin-like proteases by molecular modelling and site-directed mutagenesisO R Veltman, G Vriend, P J Middelhoven, et al.Biochemistry|May 16, 1998
A single calcium binding site is crucial for the calcium-dependent thermal stability of thermolysin-like proteasesO R Veltman, G Vriend, H J Berendsen, et al.European Journal of Biochemistry|March 15, 1994
Protein stabilization by hydrophobic interactions at the surfaceB Van den Burg, B W Dijkstra, G Vriend, et al.Journal of Bacteriology|April 13, 2000
A C-terminal disulfide bridge in pediocin-like bacteriocins renders bacteriocin activity less temperature dependent and is a major determinant of the antimicrobial spectrumG Fimland, L Johnsen, L Axelsson, et al.Pageof 5