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Protein signatures using electrostatic molecular surfaces in harmonic space
- Source :
- PeerJ, PeerJ, Vol 1, p e185 (2013)
- Publication Year :
- 2013
- Publisher :
- PeerJ, 2013.
-
Abstract
- We developed a novel method based on the Fourier analysis of protein molecular surfaces to speed up the analysis of the vast structural data generated in the post-genomic era. This method computes the power spectrum of surfaces of the molecular electrostatic potential, whose three-dimensional coordinates have been either experimentally or theoretically determined. Thus we achieve a reduction of the initial three-dimensional information on the molecular surface to the one-dimensional information on pairs of points at a fixed scale apart. Consequently, the similarity search in our method is computationally less demanding and significantly faster than shape comparison methods. As proof of principle, we applied our method to a training set of viral proteins that are involved in major diseases such as Hepatitis C, Dengue fever, Yellow fever, Bovine viral diarrhea and West Nile fever. The training set contains proteins of four different protein families, as well as a mammalian representative enzyme. We found that the power spectrum successfully assigns a unique signature to each protein included in our training set, thus providing a direct probe of functional similarity among proteins. The results agree with established biological data from conventional structural biochemistry analyses.<br />Comment: 9 pages, 10 figures Published in PeerJ (2013), https://peerj.com/articles/185/
- Subjects :
- Surface (mathematics)
Protein family
Computer science
Nearest neighbor search
Biophysics
Protein similarity search
lcsh:Medicine
Scale (descriptive set theory)
computer.software_genre
Quantitative Biology - Quantitative Methods
Computational Science
Drug design
General Biochemistry, Genetics and Molecular Biology
03 medical and health sciences
symbols.namesake
Mathematical Biology
Quantitative Methods (q-bio.QM)
030304 developmental biology
Harmonic space
0303 health sciences
Biological data
Electrostatic potentials
General Neuroscience
lcsh:R
030302 biochemistry & molecular biology
Computational Biology
Spectral density
General Medicine
Structural biology
Fourier analysis
FOS: Biological sciences
symbols
Data mining
General Agricultural and Biological Sciences
Biological system
computer
Subjects
Details
- ISSN :
- 21678359
- Volume :
- 1
- Database :
- OpenAIRE
- Journal :
- PeerJ
- Accession number :
- edsair.doi.dedup.....3c7777ca93685aa88f61861663ff186f