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Interaction of antiinflammatory drugs with EPC liposomes: Calorimetric study in a broad concentration range

Title
Interaction of antiinflammatory drugs with EPC liposomes: Calorimetric study in a broad concentration range
Type
Article in International Scientific Journal
Year
2004
Authors
Matos, C
(Author)
Other
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Reis, S
(Author)
FFUP
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Lopes, A
(Author)
Other
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Bastos, M
(Author)
FCUP
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Journal
Title: Biophysical JournalImported from Authenticus Search for Journal Publications
Vol. 86 No. 2
Pages: 946-954
ISSN: 0006-3495
Publisher: Elsevier
Indexing
Scientific classification
CORDIS: Health sciences
FOS: Natural sciences > Biological sciences
Other information
Authenticus ID: P-000-BNV
Resumo (PT): Isothermal titration calorimetry was used to characterize and quantify the partition of indomethacin and acemetacin between the bulk aqueous phase and the membrane of egg phosphatidylcholine vesicles. Significant electrostatic effects were observed due to binding of the charged drugs to the membrane, which implied the use of the Gouy-Chapman theory to calculate the interfacial concentrations. The binding/partition phenomenon was quantified in terms of the partition coefficient (Kp), and/or the equilibrium constant (Kb). Mathematical expressions were developed, either to encompass the electrostatic effects in the partition model, or to numerically relate partition coefficients and binding constants. Calorimetric titrations conducted under a lipid/drug ratio >100:1 lead to a constant heat release and were used to directly calculate the enthalpy of the process, ΔH, and indirectly, ΔG and ΔS. As the lipid/drug ratio decreased, the constancy of reaction enthalpy was tested in the fitting process. Under low lipid/drug ratio conditions simple partition was no longer valid and the interaction phenomenon was interpreted in terms of binding isotherms. A mathematical expression was deduced for quantification of the binding constants and the number of lipid molecules associated with one drug molecule. The broad range of concentrations used stressed the biphasic nature of the interaction under study. As the lipid/drug ratio was varied, the results showed that the interaction of both drugs does not present a unique behavior in all studied regimes: the extent of the interaction, as well as the binding stoichiometry, is affected by the lipid/drug ratio. The change in these parameters reflects the biphasic behavior of the interaction—possibly the consequence of a modification of the membrane’s physical properties as it becomes saturated with the drug. <br> <br> <a target="_blank" href="http://www.sciencedirect.com/science?_ob=ArticleURL&_udi=B94RW-4V2SGSJ-W&_user=2460038&_coverDate=02%2F29%2F2004&_rdoc=25&_fmt=high&_orig=browse&_srch=doc-info(%23toc%2356421%232004%23999139997%23744107%23FLA%23display%23Volume)&_cdi=56421&_sort=d&_docanchor=&_ct=54&_acct=C000057398&_version=1&_urlVersion=0&_userid=2460038&md5=8d633d8c9fa41c0b885f2b1cd970c4d4"> Texto integral</a> <br> <br>
Abstract (EN): Isothermal titration calorimetry was used to characterize and quantify the partition of indomethacin and acemetacin between the bulk aqueous phase and the membrane of egg phosphatidylcholine vesicles. Significant electrostatic effects were observed due to binding of the charged drugs to the membrane, which implied the use of the Gouy-Chapman theory to calculate the interfacial concentrations. The binding/ partition phenomenon was quantified in terms of the partition coefficient (K-p), and/or the equilibrium constant (K-b). Mathematical expressions were developed, either to encompass the electrostatic effects in the partition model, or to numerically relate partition coefficients and binding constants. Calorimetric titrations conducted under a lipid/drug ratio [ 100: 1 lead to a constant heat release and were used to directly calculate the enthalpy of the process, DeltaH, and indirectly, DeltaG and DeltaS. As the lipid/drug ratio decreased, the constancy of reaction enthalpy was tested in the fitting process. Under low lipid/drug ratio conditions simple partition was no longer valid and the interaction phenomenon was interpreted in terms of binding isotherms. A mathematical expression was deduced for quanti. cation of the binding constants and the number of lipid molecules associated with one drug molecule. The broad range of concentrations used stressed the biphasic nature of the interaction under study. As the lipid/drug ratio was varied, the results showed that the interaction of both drugs does not present a unique behavior in all studied regimes: the extent of the interaction, as well as the binding stoichiometry, is affected by the lipid/drug ratio. The change in these parameters reflects the biphasic behavior of the interaction - possibly the consequence of a modification of the membrane's physical properties as it becomes saturated with the drug.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 9
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