Numerical simulation of gel electrophoresis of DNA knots in weak and strong electric fields.


Autoria(s): Weber C.; Stasiak A.; De Los Rios P.; Dietler G.
Data(s)

01/05/2006

Resumo

Gel electrophoresis allows one to separate knotted DNA (nicked circular) of equal length according to the knot type. At low electric fields, complex knots, being more compact, drift faster than simpler knots. Recent experiments have shown that the drift velocity dependence on the knot type is inverted when changing from low to high electric fields. We present a computer simulation on a lattice of a closed, knotted, charged DNA chain drifting in an external electric field in a topologically restricted medium. Using a Monte Carlo algorithm, the dependence of the electrophoretic migration of the DNA molecules on the knot type and on the electric field intensity is investigated. The results are in qualitative and quantitative agreement with electrophoretic experiments done under conditions of low and high electric fields.

Identificador

http://serval.unil.ch/?id=serval:BIB_A0FA22C23609

isbn:0006-3495[print], 0006-3495[linking]

pmid:16473912

doi:10.1529/biophysj.105.070128

isiid:000236601100009

Idioma(s)

en

Fonte

Biophysical Journal, vol. 90, no. 9, pp. 3100-3105

Palavras-Chave #Algorithms; Computer Simulation; DNA/chemistry; Electric Conductivity; Electrophoresis; Electrophoresis, Agar Gel; Electrophoresis, Gel, Two-Dimensional; Models, Genetic; Monte Carlo Method; Nucleic Acid Conformation
Tipo

info:eu-repo/semantics/article

article