Eutectic mixtures of nevirapine: Phase diagrams, solid-state characterization, and dissolution studies

被引:0
作者
Costa, Rogeria Nunes [1 ]
Carvalho, Nathan Kevin [1 ]
Chambi, Julian Ticona [1 ]
Chaves, Marcelo H. C. [2 ]
Rocha, Helvecio Vinicius Antunes [2 ]
Santo, Ana Maria do Espirito [1 ]
Cuffini, Silvia Lucia [1 ]
机构
[1] Univ Fed Sao Paulo UNIFESP, Posgrad Engn & Ciencia Mat, Inst Ciencia & Tecnol, Sao Paulo, Brazil
[2] Fundacao Oswaldo Cruz FIOCRUZ, Lab Micro & Nanotecnol LMN, Farmanguinhos, BR-21040361 Rio De Janeiro, Brazil
基金
巴西圣保罗研究基金会;
关键词
B1; Nevirapine; A1; Eutectic; A1. Tamman diagram; A1. Phase diagram; A1. Dissolution profiles; A1. Intrinsic dissolution; CRYSTAL-STRUCTURE; DRUGS; COCRYSTAL;
D O I
10.1016/j.jcrysgro.2024.127954
中图分类号
O7 [晶体学];
学科分类号
0702 ; 070205 ; 0703 ; 080501 ;
摘要
Solid-state modifications can improve drug performance. Studies have shown that multicomponent crystals, such as cocrystals and eutectic compositions, have successfully improved the performance of certain drugs, including their solubility. Nevirapine (NEV) is an antiretroviral drug with low aqueous solubility, impacting its bioavailability. This work aimed to study different nevirapine/co-former solid eutectic systems, define their phase diagrams and evaluate their dissolution properties. Caffeine (CAF), Theobromine (TEOB), and Theophylline (THEO) were chosen as co-formers due to their functional groups that can interact with NEV. Aiming to determine both temperature and eutectic composition, phase and Tamman diagrams were obtained using the differential scanning calorimetry (DSC) analysis of the mixtures indifferent NEV-co-former compositions (%w/w). Powder Xray diffraction (PXRD) and DSC were used to characterize the eutectic materials. To assess the influence of eutectic systems on dissolution properties, we determined the powder dissolution profiles and intrinsic dissolution rates of anhydrous NEV and eutectic systems NEV-CAF and NEV-THEO using different dissolution media (pH 1.2 and pH 6.8). The eutectic compositions were calculated through the phase diagrams, interpolating the curves obtained by linear regression. Thus, the eutectic composition of the NEV-CAF system was determined to be 36.55 % NEV and eutectic temperature at 201.1 degrees C, while in the NEV-THEO system, the eutectic was obtained in a composition of 71.04 % NEV and eutectic temperature at 217.8 degrees C. Tamman diagrams were generated using the enthalpy values obtained from the DSC curves, and eutectic compositions were calculated using linear regression. The analysis revealed a eutectic composition of 36.51 % of NEV for the NEV-CAF system, and a eutectic composition of 70.94 % of NEV for the NEV-THEO system. It was not possible to determine the eutectic mass fraction of NEV-TEOB. A comparison of dissolution profiles and intrinsic dissolution rates in different dissolution media showed a significant improvement in the NEV dissolution rate in both eutectic systems. In an acidic medium, NEV dissolved 16 times faster in the NEV-CAF sample and 4 times faster in the NEV-THEO sample compared to pure anhydrous NEV. In a neutral medium, the dissolution profile of NEV was even more favorable in the same eutectic systems, showing that the increase in dissolution is relevant in a wide range of pH. In addition, the intrinsic dissolution rate in the two eutectic systems was higher than that of anhydrous NEV in all employed dissolution mediums. These eutectic systems improve the dissolution rate compared to pure NEV, offering the potential for enhancing the dissolution of poorly water-soluble drugs in the future.
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页数:7
相关论文
共 21 条
  • [1] Predicting eutectic behavior of drugs and excipients by unique calculations
    Avula, Satya Girish
    Alexander, Kenneth
    Riga, Alan
    [J]. JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2010, 99 (02) : 655 - 658
  • [2] Nevirapine: A review of its use in the prevention and treatment of paediatric HIV infection
    Bardsley-Elliot A.
    Perry C.M.
    [J]. Paediatric Drugs, 2000, 2 (5): : 373 - 407
  • [3] Bertram K., 2012, Basic Clinlcal Pharmacol, V13th, P850
  • [4] Co-crystals of the antiretroviral nevirapine: crystal structures, thermal analysis and dissolution behaviour
    Caira, Mino R.
    Bourne, Susan A.
    Samsodien, Halima
    Engel, Emile
    Liebenberg, Wilna
    Stieger, Nicole
    Aucamp, Marique
    [J]. CRYSTENGCOMM, 2012, 14 (07): : 2541 - 2551
  • [5] Eutectics as improved pharmaceutical materials: design, properties and characterization
    Cherukuvada, Suryanarayan
    Nangia, Ashwini
    [J]. CHEMICAL COMMUNICATIONS, 2014, 50 (08) : 906 - 923
  • [6] New Multicomponent Forms of the Antiretroviral Nevirapine with Improved Dissolution Performance
    Costa, Rogeria N.
    Reviglio, Ana L.
    Siedler, Sana
    Cardoso, Simone G.
    Linck, Yamila G.
    Monti, Gustavo A.
    Carvalho, Alexandre M. G.
    Resende, Jackson A. L. C.
    Chaves, Marcelo H. C.
    Rocha, Helvecio V. A.
    Choquesillo-Lazarte, Duane
    Infantes, Lourdes
    Cuffini, Silvia L.
    [J]. CRYSTAL GROWTH & DESIGN, 2020, 20 (02) : 688 - 698
  • [7] Analysis of phase transition and dehydration processes of nevirapine
    de Oliveira, George G. G.
    Ferraz, Humberto G.
    Severino, Patricia
    Souto, Eliana B.
    [J]. JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2012, 108 (01) : 53 - 57
  • [8] Methylxanthines. II. Anhydrous theobromine
    Ford, KA
    Ebisuzaki, Y
    Boyle, PD
    [J]. ACTA CRYSTALLOGRAPHICA SECTION C-CRYSTAL STRUCTURE COMMUNICATIONS, 1998, 54 : 1980 - 1983
  • [9] New Insights into an Old Molecule: Interaction Energies of Theophylline Crystal Forms
    Fucke, Katharina
    McIntyre, Garry J.
    Wilkinson, Clive
    Henry, Marc
    Howard, Judith A. K.
    Steed, Jonathan W.
    [J]. CRYSTAL GROWTH & DESIGN, 2012, 12 (03) : 1395 - 1401
  • [10] Gala U., 2013, J. Develop. Drugs, V2, P2, DOI DOI 10.4172/2329-6631.1000E130