TY - JOUR
T1 - Accuracy of structure-derived properties in simple comparative models of protein structures
AU - Chakravarty, Suvobrata
AU - Wang, Lei
AU - Sanchez, Roberto
N1 - Funding Information:
We thank Carlos Madrid for general assistance with hardware and software; Dr Patrice Koehl for help with the ProShape suite of programs; Bing Zhang, Dr Marc Ceruso and Dr Ming-Ming Zhou for useful comments and carefully reading the manuscript. This work was supported by Mount Sinai School of Medicine start up funds and grant 1P01GM066531-01 from NIH. Funding to pay the Open Access publication charges for this article was provided by Mount Sinai School of Medicine Startup Funds.
PY - 2005
Y1 - 2005
N2 - The accuracy of comparative models of proteins is addressed here. A set of 12 732 single-template models of sequences of known high-resolution structures was built by an automated procedure. Accuracy of several structure-derived properties, such as surface area, residue accessibility, presence of pockets, electrostatic potential and others, was determined as a function of template:target sequence identity by comparing models with their corresponding experimental structures. As expected, the average accuracy of structure-derived properties always increases with higher template:target sequence identity, but the exact shape of this relationship can differ from one property to another. A comparison of structure-derived properties measured from NMR and X-ray structures of the same protein shows that for most properties, the NMR/X-ray difference is of the same order as the error in models based on ∼40% template: target sequence identity. The exact sequence identity at which properties reach that accuracy varies between 25 and 50%, depending on the property being analyzed. A general characteristic of simple comparative models is that their surface has increased area as a consequence of being more rugged than that of experimental structures. This suggests that including solvent effects during model building or refinement could significantly improve the accuracy of surface properties in comparative models.
AB - The accuracy of comparative models of proteins is addressed here. A set of 12 732 single-template models of sequences of known high-resolution structures was built by an automated procedure. Accuracy of several structure-derived properties, such as surface area, residue accessibility, presence of pockets, electrostatic potential and others, was determined as a function of template:target sequence identity by comparing models with their corresponding experimental structures. As expected, the average accuracy of structure-derived properties always increases with higher template:target sequence identity, but the exact shape of this relationship can differ from one property to another. A comparison of structure-derived properties measured from NMR and X-ray structures of the same protein shows that for most properties, the NMR/X-ray difference is of the same order as the error in models based on ∼40% template: target sequence identity. The exact sequence identity at which properties reach that accuracy varies between 25 and 50%, depending on the property being analyzed. A general characteristic of simple comparative models is that their surface has increased area as a consequence of being more rugged than that of experimental structures. This suggests that including solvent effects during model building or refinement could significantly improve the accuracy of surface properties in comparative models.
UR - https://www.scopus.com/pages/publications/13744252339
U2 - 10.1093/nar/gki162
DO - 10.1093/nar/gki162
M3 - Article
C2 - 15647507
AN - SCOPUS:13744252339
SN - 0305-1048
VL - 33
SP - 244
EP - 259
JO - Nucleic Acids Research
JF - Nucleic Acids Research
IS - 1
ER -