Statements in which the resource exists as a subject.
PredicateObject
rdf:type
lifeskim:mentions
pubmed:issue
2
pubmed:dateCreated
2009-7-21
pubmed:abstractText
The process of genetic recombination involves the formation of branched four-stranded DNA structures known as Holliday junctions. The Holliday junction is known to have an antiparallel orientation of its helices, i.e., the crossover occurs between strands of opposite polarity. Some intermediates in this process are known to involve two crossover sites, and these may involve crossovers between strands of identical polarity. Surprisingly, if a crossover occurs at every possible juxtaposition of backbones between parallel DNA double helices, the molecules form a paranemic structure with two helical domains, known as PX-DNA. Model PX-DNA molecules can be constructed from a variety of DNA molecules with five nucleotide pairs in the minor groove and six, seven or eight nucleotide pairs in the major groove. A topoisomer of the PX motif is the juxtaposed JX(1) molecule, wherein one crossover is missing between the two helical domains. The JX(1) molecule offers an outstanding baseline molecule with which to compare the PX molecule, so as to measure the thermodynamic cost of forming a crossover in a parallel molecule. We have made these measurements using calorimetric and ultraviolet hypochromicity methods, as well as denaturing gradient gel electrophoretic methods. The results suggest that in relaxed conditions, a system that meets the pairing requirements for PX-DNA would prefer to form the PX motif relative to juxtaposed molecules, particularly for the 6:5 structure.
pubmed:grant
pubmed:commentsCorrections
http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-1054510, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-10852311, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-10980454, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-11406378, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-11780115, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-12405808, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-1325604, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-1420962, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-14871096, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-14961116, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-1542118, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-15550565, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-15604403, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-15824311, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-16478709, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-17158323, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-17198386, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-17964930, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-18181611, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-2828644, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-291028, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-3071260, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-3387432, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-353875, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-3663876, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-369706, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-4648347, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-5548611, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-6287923, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-6585818, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-7822305, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-7956070, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-8020104, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-8130350, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-8347993, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-8427928, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-8461289, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-8521495, http://linkedlifedata.com/resource/pubmed/commentcorrection/19619467-9465037
pubmed:language
eng
pubmed:journal
pubmed:citationSubset
IM
pubmed:chemical
pubmed:status
MEDLINE
pubmed:month
Jul
pubmed:issn
1542-0086
pubmed:author
pubmed:issnType
Electronic
pubmed:day
22
pubmed:volume
97
pubmed:owner
NLM
pubmed:authorsComplete
Y
pubmed:pagination
528-38
pubmed:dateRevised
2010-9-24
pubmed:meshHeading
pubmed:year
2009
pubmed:articleTitle
Thermodynamics of forming a parallel DNA crossover.
pubmed:affiliation
Chemistry Department, State University of New York-Cortland, Cortland, New York 13045, USA.
pubmed:publicationType
Journal Article, Research Support, U.S. Gov't, Non-P.H.S., Research Support, Non-U.S. Gov't, Research Support, N.I.H., Extramural