4.3 Article

DNA recombination through assembly graphs

Journal

DISCRETE APPLIED MATHEMATICS
Volume 157, Issue 14, Pages 3020-3037

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.dam.2009.06.011

Keywords

DNA rearrangements; Cilites; Assembly graphs; Virtual knot diagrams; Smoothing; Simultaneous smoothing

Funding

  1. NSF [0523928, 0603876]
  2. Direct For Computer & Info Scie & Enginr
  3. Division of Computing and Communication Foundations [0523928] Funding Source: National Science Foundation
  4. Direct For Mathematical & Physical Scien
  5. Division Of Mathematical Sciences [0603876] Funding Source: National Science Foundation

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Motivated by DNA rearrangements and DNA homologous recombination modeled in [A. Angeleska, N. Jonoska, M. Saito, L.F. Landweber. RNA-guided DNA assembly, Journal of Theoretical Biology, 248(4) (2007), 706-720], we investigate smoothings on graphs that consist of only 4-valent and 1-valent rigid vertices, called assembly graphs. All assembly graph can be seen as a representation of the DNA during certain recombination processes in which 4-valent vertices correspond to the alignment of the recombination sites. A single gene is modeled by a polygonal path in all assembly graph. A polygonal path makes a right-angle turn at every vertex, defining smoothings at the 4-valent vertices and therefore modeling the recombination process. We investigate the minimal number of polygonal paths visiting all vertices of a given graph exactly once, and show that for every positive integer n there are graphs that require at least n such polygonal paths. We show that there is an embedding in three-dimensional space of each assembly graph such that smoothing of vertices according to a given set of polygonal paths results in an unlinked graph. As some recombination processes may happen simultaneously, we characterize the subsets of vertices whose simultaneous smoothings keep a given gene in tact and give a characterization of all sequences of sets of vertices defining successive simultaneous smoothings that can realize complete gene rearrangement. (C) 2009 Elsevier B.V. All rights reserved.

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