{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:183845"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:183845","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Specificity of triple helix formation","abstract":"Triplex-forming oligonucleotides (TFOs) have been the subject of extensive<br/>research in recent years. They have potential applications in many areas; such as<br/>gene-based therapies, site-directed mutation and as biochemical tools. However,<br/>triplex technology has been hampered by several problems, including low stability<br/>due to electrostatic repulsion between strands. This thesis has investigated<br/>combinations of four methods for stabilising triplex DNA; these include<br/>incorporation of the positively charged thymine analogues bis-amino-U and<br/>propargylamino-dU in TFOs. Also modified TFO’s containing anthraquinone<br/>derivatives have been tested. Further, the free-intercalating agent<br/>naphthylquinoline has been used to modulate TFO binding.<br/>A TFO containing six consecutive BAU molecules has previously been<br/>shown to interact with non-target sites. The pH dependence of this TFO was<br/>investigated. These experiments showed that considerably higher TFO<br/>concentrations were needed to generate a footprint as the pH was increased. The<br/>TFO had a high affinity for the exact template (tyrT) at pH 5.0 and 6.0 and showed<br/>some evidence of binding even at 30 ?M at pH 7.0. These gels also showed<br/>evidence of the secondary binding seen in previous studies; this was considerably<br/>more evident at pH 5.0, however, suggesting that the secondary binding may be<br/>more sensitive to pH than the primary binding.<br/>Secondary binding sites for TFOs were examined by ‘Restriction<br/>Endonuclease Protection, Selection and Amplification’ or REPSA. REPSA has<br/>been used to select for DNA templates that are bound by the 9mer TFO containing<br/>six bis-amino-U residues. Fourteen of the sequences which emerged from<br/>REPSA were chosen for footprinting with TFOs containing BAU, propargylaminodU<br/>or T. The BAU-TFO produced clear footprints on all but one of the REPSA<br/>templates tested, indicating that the REPSA process was successful in selecting<br/>for sequences which are bound by the TFO. Significantly higher concentrations of<br/>the P-TFO were required, and magnesium chloride and / or the triplex binding<br/>ligand naphthylquinoline were needed to promote binding. Despite the differences<br/>in template sequence there does not appear to be a strong pattern in the binding<br/>intensities of the TFOs on the different templates. However, all templates do<br/>contain a run of four to eight A’s. Surprisingly it appears from these data that the<br/>BAU TFO discriminates better than the P-TFO against non-exact binding sites<br/>The selectivity of TFOs containing anthraquinone modifications was also<br/>investigated. Anthraquinone intercalates between DNA bases in duplex DNA and<br/>can be tethered to the end of a TFO to increase stability. The specificity of five<br/>TFOs with different anthraquinone modifications was examined by footprinting<br/>against fragments containing mismatches. A doubly modified TFO bound with the<br/>highest affinity and was most tolerant of mismatches. Mismatches at the centre of<br/>the template had a lesser effect on binding affinity than mismatches at the 3’ end.<br/>The effect of a 3’ mismatch was also greater if the anthraquinone was at this end.<br/>The presence of an S-base at the 3’ end allowing intercalation of the<br/>anthraquinone at a YpR step increased the binding affinity on the exact template in<br/>comparison to TFO 3 which did not contain the S-base. The TFO containing the S<br/>base did not bind quite as well as the doubly modified TFO however.","abstract_html":"Triplex-forming oligonucleotides (TFOs) have been the subject of extensive&lt;br/&gt;research in recent years. They have potential applications in many areas; such as&lt;br/&gt;gene-based therapies, site-directed mutation and as biochemical tools. However,&lt;br/&gt;triplex technology has been hampered by several problems, including low stability&lt;br/&gt;due to electrostatic repulsion between strands. This thesis has investigated&lt;br/&gt;combinations of four methods for stabilising triplex DNA; these include&lt;br/&gt;incorporation of the positively charged thymine analogues bis-amino-U and&lt;br/&gt;propargylamino-dU in TFOs. Also modified TFO’s containing anthraquinone&lt;br/&gt;derivatives have been tested. Further, the free-intercalating agent&lt;br/&gt;naphthylquinoline has been used to modulate TFO binding.&lt;br/&gt;A TFO containing six consecutive BAU molecules has previously been&lt;br/&gt;shown to interact with non-target sites. The pH dependence of this TFO was&lt;br/&gt;investigated. These experiments showed that considerably higher TFO&lt;br/&gt;concentrations were needed to generate a footprint as the pH was increased. The&lt;br/&gt;TFO had a high affinity for the exact template (tyrT) at pH 5.0 and 6.0 and showed&lt;br/&gt;some evidence of binding even at 30 ?M at pH 7.0. These gels also showed&lt;br/&gt;evidence of the secondary binding seen in previous studies; this was considerably&lt;br/&gt;more evident at pH 5.0, however, suggesting that the secondary binding may be&lt;br/&gt;more sensitive to pH than the primary binding.&lt;br/&gt;Secondary binding sites for TFOs were examined by ‘Restriction&lt;br/&gt;Endonuclease Protection, Selection and Amplification’ or REPSA. REPSA has&lt;br/&gt;been used to select for DNA templates that are bound by the 9mer TFO containing&lt;br/&gt;six bis-amino-U residues. Fourteen of the sequences which emerged from&lt;br/&gt;REPSA were chosen for footprinting with TFOs containing BAU, propargylaminodU&lt;br/&gt;or T. The BAU-TFO produced clear footprints on all but one of the REPSA&lt;br/&gt;templates tested, indicating that the REPSA process was successful in selecting&lt;br/&gt;for sequences which are bound by the TFO. Significantly higher concentrations of&lt;br/&gt;the P-TFO were required, and magnesium chloride and / or the triplex binding&lt;br/&gt;ligand naphthylquinoline were needed to promote binding. Despite the differences&lt;br/&gt;in template sequence there does not appear to be a strong pattern in the binding&lt;br/&gt;intensities of the TFOs on the different templates. However, all templates do&lt;br/&gt;contain a run of four to eight A’s. Surprisingly it appears from these data that the&lt;br/&gt;BAU TFO discriminates better than the P-TFO against non-exact binding sites&lt;br/&gt;The selectivity of TFOs containing anthraquinone modifications was also&lt;br/&gt;investigated. Anthraquinone intercalates between DNA bases in duplex DNA and&lt;br/&gt;can be tethered to the end of a TFO to increase stability. The specificity of five&lt;br/&gt;TFOs with different anthraquinone modifications was examined by footprinting&lt;br/&gt;against fragments containing mismatches. A doubly modified TFO bound with the&lt;br/&gt;highest affinity and was most tolerant of mismatches. Mismatches at the centre of&lt;br/&gt;the template had a lesser effect on binding affinity than mismatches at the 3’ end.&lt;br/&gt;The effect of a 3’ mismatch was also greater if the anthraquinone was at this end.&lt;br/&gt;The presence of an S-base at the 3’ end allowing intercalation of the&lt;br/&gt;anthraquinone at a YpR step increased the binding affinity on the exact template in&lt;br/&gt;comparison to TFO 3 which did not contain the S-base. The TFO containing the S&lt;br/&gt;base did not bind quite as well as the doubly modified TFO however.","abstract_has_math":false,"creators":["Cardew, Antonia"],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Fox, Keith R."],"committee_chairs":[],"committee_members":[],"year":2010,"date_issued":"2010-09","date_published":"2010-09","updated_at":"2026-07-24T04:36:25Z","subjects":[],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":null,"outbound_label":null,"outbound_source":null},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Fox, Keith R."]},{"key":"dc:creator","label":"Author","values":["Cardew, Antonia"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2010-09-30"]},{"key":"dc:date.issued","label":"Date","values":["2010-09"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["Biological Sciences (pre 2011 reorg)","School of Biological Sciences"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["University of Southampton"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://eprints.soton.ac.uk/183845/"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["doctoral"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Ph.D."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://eprints.soton.ac.uk/183845/1/AnnieCardew_-_final_thesis.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Triplex-forming oligonucleotides (TFOs) have been the subject of extensive<br/>research in recent years. They have potential applications in many areas; such as<br/>gene-based therapies, site-directed mutation and as biochemical tools. However,<br/>triplex technology has been hampered by several problems, including low stability<br/>due to electrostatic repulsion between strands. This thesis has investigated<br/>combinations of four methods for stabilising triplex DNA; these include<br/>incorporation of the positively charged thymine analogues bis-amino-U and<br/>propargylamino-dU in TFOs. Also modified TFO’s containing anthraquinone<br/>derivatives have been tested. Further, the free-intercalating agent<br/>naphthylquinoline has been used to modulate TFO binding.<br/>A TFO containing six consecutive BAU molecules has previously been<br/>shown to interact with non-target sites. The pH dependence of this TFO was<br/>investigated. These experiments showed that considerably higher TFO<br/>concentrations were needed to generate a footprint as the pH was increased. The<br/>TFO had a high affinity for the exact template (tyrT) at pH 5.0 and 6.0 and showed<br/>some evidence of binding even at 30 ?M at pH 7.0. These gels also showed<br/>evidence of the secondary binding seen in previous studies; this was considerably<br/>more evident at pH 5.0, however, suggesting that the secondary binding may be<br/>more sensitive to pH than the primary binding.<br/>Secondary binding sites for TFOs were examined by ‘Restriction<br/>Endonuclease Protection, Selection and Amplification’ or REPSA. REPSA has<br/>been used to select for DNA templates that are bound by the 9mer TFO containing<br/>six bis-amino-U residues. Fourteen of the sequences which emerged from<br/>REPSA were chosen for footprinting with TFOs containing BAU, propargylaminodU<br/>or T. The BAU-TFO produced clear footprints on all but one of the REPSA<br/>templates tested, indicating that the REPSA process was successful in selecting<br/>for sequences which are bound by the TFO. Significantly higher concentrations of<br/>the P-TFO were required, and magnesium chloride and / or the triplex binding<br/>ligand naphthylquinoline were needed to promote binding. Despite the differences<br/>in template sequence there does not appear to be a strong pattern in the binding<br/>intensities of the TFOs on the different templates. However, all templates do<br/>contain a run of four to eight A’s. Surprisingly it appears from these data that the<br/>BAU TFO discriminates better than the P-TFO against non-exact binding sites<br/>The selectivity of TFOs containing anthraquinone modifications was also<br/>investigated. Anthraquinone intercalates between DNA bases in duplex DNA and<br/>can be tethered to the end of a TFO to increase stability. The specificity of five<br/>TFOs with different anthraquinone modifications was examined by footprinting<br/>against fragments containing mismatches. A doubly modified TFO bound with the<br/>highest affinity and was most tolerant of mismatches. Mismatches at the centre of<br/>the template had a lesser effect on binding affinity than mismatches at the 3’ end.<br/>The effect of a 3’ mismatch was also greater if the anthraquinone was at this end.<br/>The presence of an S-base at the 3’ end allowing intercalation of the<br/>anthraquinone at a YpR step increased the binding affinity on the exact template in<br/>comparison to TFO 3 which did not contain the S-base. The TFO containing the S<br/>base did not bind quite as well as the doubly modified TFO however."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Specificity of triple helix formation"]}]}],"canonical_facts":{"dc:contributor.advisor":["Fox, Keith R."],"dc:creator":["Cardew, Antonia"],"dc:date":["2010-09-30"],"dc:date.issued":["2010-09"],"dc:description.abstract":["Triplex-forming oligonucleotides (TFOs) have been the subject of extensive<br/>research in recent years. They have potential applications in many areas; such as<br/>gene-based therapies, site-directed mutation and as biochemical tools. However,<br/>triplex technology has been hampered by several problems, including low stability<br/>due to electrostatic repulsion between strands. This thesis has investigated<br/>combinations of four methods for stabilising triplex DNA; these include<br/>incorporation of the positively charged thymine analogues bis-amino-U and<br/>propargylamino-dU in TFOs. Also modified TFO’s containing anthraquinone<br/>derivatives have been tested. Further, the free-intercalating agent<br/>naphthylquinoline has been used to modulate TFO binding.<br/>A TFO containing six consecutive BAU molecules has previously been<br/>shown to interact with non-target sites. The pH dependence of this TFO was<br/>investigated. These experiments showed that considerably higher TFO<br/>concentrations were needed to generate a footprint as the pH was increased. The<br/>TFO had a high affinity for the exact template (tyrT) at pH 5.0 and 6.0 and showed<br/>some evidence of binding even at 30 ?M at pH 7.0. These gels also showed<br/>evidence of the secondary binding seen in previous studies; this was considerably<br/>more evident at pH 5.0, however, suggesting that the secondary binding may be<br/>more sensitive to pH than the primary binding.<br/>Secondary binding sites for TFOs were examined by ‘Restriction<br/>Endonuclease Protection, Selection and Amplification’ or REPSA. REPSA has<br/>been used to select for DNA templates that are bound by the 9mer TFO containing<br/>six bis-amino-U residues. Fourteen of the sequences which emerged from<br/>REPSA were chosen for footprinting with TFOs containing BAU, propargylaminodU<br/>or T. The BAU-TFO produced clear footprints on all but one of the REPSA<br/>templates tested, indicating that the REPSA process was successful in selecting<br/>for sequences which are bound by the TFO. Significantly higher concentrations of<br/>the P-TFO were required, and magnesium chloride and / or the triplex binding<br/>ligand naphthylquinoline were needed to promote binding. Despite the differences<br/>in template sequence there does not appear to be a strong pattern in the binding<br/>intensities of the TFOs on the different templates. However, all templates do<br/>contain a run of four to eight A’s. Surprisingly it appears from these data that the<br/>BAU TFO discriminates better than the P-TFO against non-exact binding sites<br/>The selectivity of TFOs containing anthraquinone modifications was also<br/>investigated. Anthraquinone intercalates between DNA bases in duplex DNA and<br/>can be tethered to the end of a TFO to increase stability. The specificity of five<br/>TFOs with different anthraquinone modifications was examined by footprinting<br/>against fragments containing mismatches. A doubly modified TFO bound with the<br/>highest affinity and was most tolerant of mismatches. Mismatches at the centre of<br/>the template had a lesser effect on binding affinity than mismatches at the 3’ end.<br/>The effect of a 3’ mismatch was also greater if the anthraquinone was at this end.<br/>The presence of an S-base at the 3’ end allowing intercalation of the<br/>anthraquinone at a YpR step increased the binding affinity on the exact template in<br/>comparison to TFO 3 which did not contain the S-base. The TFO containing the S<br/>base did not bind quite as well as the doubly modified TFO however."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/183845/1/AnnieCardew_-_final_thesis.pdf"],"dc:publisher.department":["Biological Sciences (pre 2011 reorg)","School of Biological Sciences"],"dc:publisher.institution":["University of Southampton"],"dc:relation.isreferencedby":["https://eprints.soton.ac.uk/183845/"],"dc:title":["Specificity of triple helix formation"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:36:25Z"}