{"id":{"repo_id":"tenn-hsc","oai_identifier":"oai:dc.uthsc.edu:dissertations-1100"},"canonical_url":"https://search.dev.ndltd.org/etd/tenn-hsc/oai:dc.uthsc.edu:dissertations-1100","repository":{"repo_id":"tenn-hsc","name":"University of Tennessee Health Science Center","base_url":"https://dc.uthsc.edu/do/oai/"},"display":{"title":"Structure-Activity Relationship and Mechanistic Studies on the Chemopreventive Activity of Dipyridamole and Its Analogues","abstract":"<p>There is an escalating demand in the area of cancer prevention and control for the development of novel agents and molecular targets that have potential to reduce the incidence of cancer. In this study, the JB6 mouse epidermal cell-culture based transformation model was used in efforts to identify novel chemopreventive agents and targets. The nucleoside transport inhibitor dipyridamole (<strong>DPM</strong>) showed potent chemopreventive activity against JB6 P<sup>+</sup>cells (tumor promotion sensitive). To probe the effects of <strong>DPM</strong> structural features on its antitumor promotion activity, the soft-agar colony forming efficiency assay was used to screen an in-house library of structurally varied novel <strong>DPM</strong> analogues. From this screening, Compound <strong>145</strong> was found to be more 30 times more potent than <strong>DPM </strong>(<strong>145</strong>, IC<sub>50</sub> = 0.12 µM; <strong>DPM</strong>, IC<sub>50</sub> = 3.07 µM). Structure-activity relationships have been defined and will aid in the next phase of chemopreventive drug design. In regards to the antitumor promotion mechanism of DPM, a series of previously collected data are presented that support the novel hypothesis that nucleoside transporters may be potential chemoprevention targets involved in the antitumor promotion activity of <strong>DPM</strong>and analogues. Signaling pathways are pivotal in tumor promotion processes and were therefore tested for in the chemopreventive mechanism of <strong>DPM</strong>. In a previous study, the known chemoprevention target, AP-1, was studied for involvement in the antitumor promotion activity of DPM. Using a new AP-1-SEAP JB6 P<sup>+</sup> reporter cell line,<strong> DPM</strong> was shown to inhibit TPA-induced AP-1 transactivation. Inhibition of AP-1 transactivation suggests the involvement of mitogen-activated protein kinase (MAPK) signaling pathways which are upstream effectors of AP-1 transactivation, and so the involvement of MAPKs was assessed in this study. <strong>DPM</strong> was shown to inhibit p38 MAPK activation in a dose-dependent manner, which suggests that this inhibition is a potential mechanism behind the chemopreventive activity of <strong>DPM</strong>. </p>","abstract_html":"&lt;p&gt;There is an escalating demand in the area of cancer prevention and control for the development of novel agents and molecular targets that have potential to reduce the incidence of cancer. In this study, the JB6 mouse epidermal cell-culture based transformation model was used in efforts to identify novel chemopreventive agents and targets. The nucleoside transport inhibitor dipyridamole (&lt;strong&gt;DPM&lt;/strong&gt;) showed potent chemopreventive activity against JB6 P&lt;sup&gt;+&lt;/sup&gt;cells (tumor promotion sensitive). To probe the effects of &lt;strong&gt;DPM&lt;/strong&gt; structural features on its antitumor promotion activity, the soft-agar colony forming efficiency assay was used to screen an in-house library of structurally varied novel &lt;strong&gt;DPM&lt;/strong&gt; analogues. From this screening, Compound &lt;strong&gt;145&lt;/strong&gt; was found to be more 30 times more potent than &lt;strong&gt;DPM &lt;/strong&gt;(&lt;strong&gt;145&lt;/strong&gt;, IC&lt;sub&gt;50&lt;/sub&gt; = 0.12 µM; &lt;strong&gt;DPM&lt;/strong&gt;, IC&lt;sub&gt;50&lt;/sub&gt; = 3.07 µM). Structure-activity relationships have been defined and will aid in the next phase of chemopreventive drug design. In regards to the antitumor promotion mechanism of DPM, a series of previously collected data are presented that support the novel hypothesis that nucleoside transporters may be potential chemoprevention targets involved in the antitumor promotion activity of &lt;strong&gt;DPM&lt;/strong&gt;and analogues. Signaling pathways are pivotal in tumor promotion processes and were therefore tested for in the chemopreventive mechanism of &lt;strong&gt;DPM&lt;/strong&gt;. In a previous study, the known chemoprevention target, AP-1, was studied for involvement in the antitumor promotion activity of DPM. Using a new AP-1-SEAP JB6 P&lt;sup&gt;+&lt;/sup&gt; reporter cell line,&lt;strong&gt; DPM&lt;/strong&gt; was shown to inhibit TPA-induced AP-1 transactivation. Inhibition of AP-1 transactivation suggests the involvement of mitogen-activated protein kinase (MAPK) signaling pathways which are upstream effectors of AP-1 transactivation, and so the involvement of MAPKs was assessed in this study. &lt;strong&gt;DPM&lt;/strong&gt; was shown to inhibit p38 MAPK activation in a dose-dependent manner, which suggests that this inhibition is a potential mechanism behind the chemopreventive activity of &lt;strong&gt;DPM&lt;/strong&gt;. &lt;/p&gt;","abstract_has_math":false,"creators":["Grant, Ja’Wanda Shavon"],"institution":null,"degree_name":"Doctor of Philosophy (PhD)","degree_level":"Dissertation","degree_discipline":"Pharmaceutical Sciences","degree_department":null,"school":null,"contributors":["John K. Buolamwini, Ph.D."],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2008,"date_issued":"2008-12-01T08:00:00Z","date_published":"2008-12-01T08:00:00Z","updated_at":"2026-07-24T05:00:11Z","subjects":["chemoprevention","dipyridamole","MAP kinases","nucleoside transporters","Medicine and Health Sciences","Pharmacy and Pharmaceutical Sciences"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://dc.uthsc.edu/dissertations/100","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["John K. 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In this study, the JB6 mouse epidermal cell-culture based transformation model was used in efforts to identify novel chemopreventive agents and targets. The nucleoside transport inhibitor dipyridamole (<strong>DPM</strong>) showed potent chemopreventive activity against JB6 P<sup>+</sup>cells (tumor promotion sensitive). To probe the effects of <strong>DPM</strong> structural features on its antitumor promotion activity, the soft-agar colony forming efficiency assay was used to screen an in-house library of structurally varied novel <strong>DPM</strong> analogues. From this screening, Compound <strong>145</strong> was found to be more 30 times more potent than <strong>DPM </strong>(<strong>145</strong>, IC<sub>50</sub> = 0.12 µM; <strong>DPM</strong>, IC<sub>50</sub> = 3.07 µM). Structure-activity relationships have been defined and will aid in the next phase of chemopreventive drug design. In regards to the antitumor promotion mechanism of DPM, a series of previously collected data are presented that support the novel hypothesis that nucleoside transporters may be potential chemoprevention targets involved in the antitumor promotion activity of <strong>DPM</strong>and analogues. Signaling pathways are pivotal in tumor promotion processes and were therefore tested for in the chemopreventive mechanism of <strong>DPM</strong>. In a previous study, the known chemoprevention target, AP-1, was studied for involvement in the antitumor promotion activity of DPM. Using a new AP-1-SEAP JB6 P<sup>+</sup> reporter cell line,<strong> DPM</strong> was shown to inhibit TPA-induced AP-1 transactivation. Inhibition of AP-1 transactivation suggests the involvement of mitogen-activated protein kinase (MAPK) signaling pathways which are upstream effectors of AP-1 transactivation, and so the involvement of MAPKs was assessed in this study. <strong>DPM</strong> was shown to inhibit p38 MAPK activation in a dose-dependent manner, which suggests that this inhibition is a potential mechanism behind the chemopreventive activity of <strong>DPM</strong>. </p>"]},{"key":"dc:title","label":"Title","values":["Structure-Activity Relationship and Mechanistic Studies on the Chemopreventive Activity of Dipyridamole and Its Analogues"]}]}],"canonical_facts":{"dc:contributor":["John K. Buolamwini, Ph.D."],"dc:creator":["Grant, Ja’Wanda Shavon"],"dc:date.available":["2016-06-07T07:00:00Z"],"dc:description.abstract":["<p>There is an escalating demand in the area of cancer prevention and control for the development of novel agents and molecular targets that have potential to reduce the incidence of cancer. In this study, the JB6 mouse epidermal cell-culture based transformation model was used in efforts to identify novel chemopreventive agents and targets. The nucleoside transport inhibitor dipyridamole (<strong>DPM</strong>) showed potent chemopreventive activity against JB6 P<sup>+</sup>cells (tumor promotion sensitive). To probe the effects of <strong>DPM</strong> structural features on its antitumor promotion activity, the soft-agar colony forming efficiency assay was used to screen an in-house library of structurally varied novel <strong>DPM</strong> analogues. From this screening, Compound <strong>145</strong> was found to be more 30 times more potent than <strong>DPM </strong>(<strong>145</strong>, IC<sub>50</sub> = 0.12 µM; <strong>DPM</strong>, IC<sub>50</sub> = 3.07 µM). Structure-activity relationships have been defined and will aid in the next phase of chemopreventive drug design. In regards to the antitumor promotion mechanism of DPM, a series of previously collected data are presented that support the novel hypothesis that nucleoside transporters may be potential chemoprevention targets involved in the antitumor promotion activity of <strong>DPM</strong>and analogues. Signaling pathways are pivotal in tumor promotion processes and were therefore tested for in the chemopreventive mechanism of <strong>DPM</strong>. In a previous study, the known chemoprevention target, AP-1, was studied for involvement in the antitumor promotion activity of DPM. Using a new AP-1-SEAP JB6 P<sup>+</sup> reporter cell line,<strong> DPM</strong> was shown to inhibit TPA-induced AP-1 transactivation. Inhibition of AP-1 transactivation suggests the involvement of mitogen-activated protein kinase (MAPK) signaling pathways which are upstream effectors of AP-1 transactivation, and so the involvement of MAPKs was assessed in this study. <strong>DPM</strong> was shown to inhibit p38 MAPK activation in a dose-dependent manner, which suggests that this inhibition is a potential mechanism behind the chemopreventive activity of <strong>DPM</strong>. </p>"],"dc:identifier":["https://dc.uthsc.edu/dissertations/100"],"dc:subject":["chemoprevention","dipyridamole","MAP kinases","nucleoside transporters","Medicine and Health Sciences","Pharmacy and Pharmaceutical Sciences"],"dc:title":["Structure-Activity Relationship and Mechanistic Studies on the Chemopreventive Activity of Dipyridamole and Its Analogues"],"thesis:degree_discipline":["Pharmaceutical Sciences"],"thesis:degree_level":["Dissertation"],"thesis:degree_name":["Doctor of Philosophy (PhD)"]},"updated_at":"2026-07-24T05:00:11Z"}