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ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION

Yıl 2021, Cilt: 9 , 213 - 223, 30.12.2021
https://doi.org/10.36306/konjes.998111

Öz

Psoriasis is an itchy and non-contagious skin disease. Its treatment method varies according to the severity of the disease. In oral treatments used in heavy stages, dissolution behavior is a vital characterization parameter for evaluating cocrystal, understanding dissolution mechanism, and predicting bioavailability of the drug. In this study, dissolution of cocrystals used in psoriasis was investigated. Effect of (i) different shapes, (ii) sizes, and (iii) grinding of cocrystals on the dissolution were considered with ultraviolet-visible (UV/Vis) spectroscopy. Results show that different physical properties and grinding can significantly increase the dissolution of cocrystals.

Kaynakça

  • Aakeröy, C. B., & Salmon, D. J. (2005). Building co-crystals with molecular sense and supramolecular sensibility. CrystEngComm, 7(72), 439–448. https://doi.org/10.1039/b505883j
  • Adhiyaman, R., & Basu, S. K. (2006). Crystal modification of dipyridamole using different solvents and crystallization conditions. International Journal of Pharmaceutics, 321(1–2), 27–34. https://doi.org/10.1016/j.ijpharm.2006.04.021
  • Blagden, N., de Matas, M., Gavan, P. T., & York, P. (2007). Crystal engineering of active pharmaceutical ingredients to improve solubility and dissolution rates. In Advanced Drug Delivery Reviews. https://doi.org/10.1016/j.addr.2007.05.011
  • Bolourtchian, N., Nokhodchl, A., & Dinarvand, R. (2001). The effect of solvent and crystallization conditions on habit modification of carbamazepine. DARU Journal of Pharmaceutical Sciences 9(1), 12-22.
  • Bukovec, P., Meden, A., Smrkolj, M., & Vrečer, F. (2015). Influence of crystal habit on the dissolution of simvastatin single crystals. Acta Chimica Slovenica, 62(4), 958–966. https://doi.org/10.17344/acsi.2015.1849
  • Chan, E. J., Gao, Q., & Dabros, M. (2014). Understanding the structure details when drying hydrate crystals of pharmaceuticals - Interpretations from diffuse scattering and inter-modulation satellites of a partially dehydrated crystal. Acta Crystallographica Section B: Structural Science, Crystal Engineering and Materials, 70(3), 555–567. https://doi.org/10.1107/S2052520614005125
  • Değim, Z. (2009). Öğütme. In Modern Farmasötik Teknoloji (1st ed., pp. 3–8). TEB Eczacılık Akademisi. http://e-kutuphane.teb.org.tr/pdf/tebakademi/modern_farmasotk/3.pdf
  • Dizaj, S. M., Vazifehasl, Z., Salatin, S., Adibkia, K., & Javadzadeh, Y. (2015). Recrystallization of drugs: Effect on dissolution rate. In V. Glebovsky (Ed.), Research in Pharmaceutical Sciences (pp. 191–211). https://www.intechopen.com/books/recrystallization-in-materials processing/recrystallization-of-drugs-effect-on-dissolution-rate
  • Gadade, D. D., Pekamwar, S. S., Lahoti, S. R., Patni, S. D., & Sarode, M. C. (2017). Etodolak’ın ko-kristalizasyonu: Ko-kristalizasyon tahmini, ko-kristal sentezi, katı faz yapı aydınlatma Çalışmaları ve in vitro İlaç salımı. Marmara Pharmaceutical Journal, 21(1), 78–88. https://doi.org/10.12991/marupj.259884
  • Nokhodchi, A., Bolourtchian, N., & Dinarvand, R. (2003). Crystal modification of phenytoin using different solvents and crystallization conditions. International Journal of Pharmaceutics, 250(1), 85–97. https://doi.org/10.1016/S0378-5173(02)00488-X
  • Qiao, N., Li, M., Schlindwein, W., Malek, N., Davies, A., & Trappitt, G. (2011). Pharmaceutical cocrystals: An overview. International Journal of Pharmaceutics, 419(1–2), 1–11. https://doi.org/10.1016/j.ijpharm.2011.07.037
  • Ren, S., Liu, M., Hong, C., Li, G., Sun, J., Wang, J., Zhang, L., & Xie, Y. (2019). The effects of pH, surfactant, ion concentration, coformer, and molecular arrangement on the solubility behavior of myricetin cocrystals. Acta Pharmaceutica Sinica B, 9(1), 59–73. https://doi.org/10.1016/j.apsb.2018.09.008
  • Renkoğlu, P., Çelebier, M., & Arica, B. (2015). HPLC determination of olanzapine and carbamazepine in their nicotinamide cocrystals and investigation of the dissolution profiles of cocrystal tablet formulations. Pharmaceutical Development and Technology, 20(3), 380–384. https://doi.org/10.3109/10837450.2014.882937
  • Ross, S. A., Lamprou, D. A., & Douroumis, D. (2016). Engineering and manufacturing of pharmaceutical co-crystals: A review of solvent-free manufacturing technologies. Chemical Communications, 52(57), 8772–8786. https://doi.org/10.1039/c6cc01289b
  • Schultheiss, N., & Newman, A. (2009). Pharmaceutical cocrystals and their physicochemical properties. Crystal Growth and Design, 9(6), 2950–2967. https://doi.org/10.1021/cg900129f
  • Serrano, D. R., O’Connell, P., Paluch, K. J., Walsh, D., & Healy, A. M. (2016). Cocrystal habit engineering to improve drug dissolution and alter derived powder properties. Journal of Pharmacy and Pharmacology, 68(5), 665–677. https://doi.org/10.1111/jphp.12476
  • Shiraki, K., Takata, N., Takano, R., Hayashi, Y., & Terada, K. (2008). Dissolution improvement and the mechanism of the improvement from cocrystallization of poorly water-soluble compounds. Pharmaceutical Research, 25(11), 2581–2592. https://doi.org/10.1007/s11095-008-9676-2
  • Sun, C., & Grant, D. J. W. (2001). Influence of crystal structure on the tableting properties of sulfamerazine polySun, C., & Grant, D. J. W. (2001). Influence of crystal structure on the tableting properties of sulfamerazine polymorphs. Pharmaceutical Research, 18(3), 274–280. doi:10.1023. Pharmaceutical Research, 18(3), 274–280. https://doi.org/10.1023/A:1011038526805
  • Thakuria, R., Delori, A., Jones, W., Lipert, M. P., Roy, L., & Rodríguez-Hornedo, N. (2013). Pharmaceutical cocrystals and poorly soluble drugs. International Journal of Pharmaceutics, 453(1), 101–125. https://doi.org/10.1016/j.ijpharm.2012.10.043

İlaç Ko-Kristallerinin Fiziksel Özelliklerinin Çözünme Konsantrasyonuna Etkisinin Analizi

Yıl 2021, Cilt: 9 , 213 - 223, 30.12.2021
https://doi.org/10.36306/konjes.998111

Öz

Sedef hastalığı bulaşıcı olmayan bir deri hastalığıdır. Hastalığın tedavi yöntemi şiddetine göre değişmektedir. Şiddetli evrelerde ağız yolu ile yapılan tedavilerde, çözünme davranışı, ko-kristali değerlendirmek, çözünme mekanizmasını anlamak ve ilacın biyoyararlanımını tahmin etmek için önemli bir karakterizasyon aşamasıdır. Bu çalışmada sedef hastalığının ağız yoluyla tedavisinde kullanılan ko-kristallerin (i) farklı şekil, (ii) boyutlarının ve (iii) öğütme işleminin çözünme davranışı üzerindeki etkisi ultraviyole-görünür (UV/Vis) spektroskopisi ile analiz edilmiştir. Çözünme konsantrasyonunun değişen fiziksel özellikler ve öğütme işlemi ile birlikte arttığı kanıtlanmıştır.

Kaynakça

  • Aakeröy, C. B., & Salmon, D. J. (2005). Building co-crystals with molecular sense and supramolecular sensibility. CrystEngComm, 7(72), 439–448. https://doi.org/10.1039/b505883j
  • Adhiyaman, R., & Basu, S. K. (2006). Crystal modification of dipyridamole using different solvents and crystallization conditions. International Journal of Pharmaceutics, 321(1–2), 27–34. https://doi.org/10.1016/j.ijpharm.2006.04.021
  • Blagden, N., de Matas, M., Gavan, P. T., & York, P. (2007). Crystal engineering of active pharmaceutical ingredients to improve solubility and dissolution rates. In Advanced Drug Delivery Reviews. https://doi.org/10.1016/j.addr.2007.05.011
  • Bolourtchian, N., Nokhodchl, A., & Dinarvand, R. (2001). The effect of solvent and crystallization conditions on habit modification of carbamazepine. DARU Journal of Pharmaceutical Sciences 9(1), 12-22.
  • Bukovec, P., Meden, A., Smrkolj, M., & Vrečer, F. (2015). Influence of crystal habit on the dissolution of simvastatin single crystals. Acta Chimica Slovenica, 62(4), 958–966. https://doi.org/10.17344/acsi.2015.1849
  • Chan, E. J., Gao, Q., & Dabros, M. (2014). Understanding the structure details when drying hydrate crystals of pharmaceuticals - Interpretations from diffuse scattering and inter-modulation satellites of a partially dehydrated crystal. Acta Crystallographica Section B: Structural Science, Crystal Engineering and Materials, 70(3), 555–567. https://doi.org/10.1107/S2052520614005125
  • Değim, Z. (2009). Öğütme. In Modern Farmasötik Teknoloji (1st ed., pp. 3–8). TEB Eczacılık Akademisi. http://e-kutuphane.teb.org.tr/pdf/tebakademi/modern_farmasotk/3.pdf
  • Dizaj, S. M., Vazifehasl, Z., Salatin, S., Adibkia, K., & Javadzadeh, Y. (2015). Recrystallization of drugs: Effect on dissolution rate. In V. Glebovsky (Ed.), Research in Pharmaceutical Sciences (pp. 191–211). https://www.intechopen.com/books/recrystallization-in-materials processing/recrystallization-of-drugs-effect-on-dissolution-rate
  • Gadade, D. D., Pekamwar, S. S., Lahoti, S. R., Patni, S. D., & Sarode, M. C. (2017). Etodolak’ın ko-kristalizasyonu: Ko-kristalizasyon tahmini, ko-kristal sentezi, katı faz yapı aydınlatma Çalışmaları ve in vitro İlaç salımı. Marmara Pharmaceutical Journal, 21(1), 78–88. https://doi.org/10.12991/marupj.259884
  • Nokhodchi, A., Bolourtchian, N., & Dinarvand, R. (2003). Crystal modification of phenytoin using different solvents and crystallization conditions. International Journal of Pharmaceutics, 250(1), 85–97. https://doi.org/10.1016/S0378-5173(02)00488-X
  • Qiao, N., Li, M., Schlindwein, W., Malek, N., Davies, A., & Trappitt, G. (2011). Pharmaceutical cocrystals: An overview. International Journal of Pharmaceutics, 419(1–2), 1–11. https://doi.org/10.1016/j.ijpharm.2011.07.037
  • Ren, S., Liu, M., Hong, C., Li, G., Sun, J., Wang, J., Zhang, L., & Xie, Y. (2019). The effects of pH, surfactant, ion concentration, coformer, and molecular arrangement on the solubility behavior of myricetin cocrystals. Acta Pharmaceutica Sinica B, 9(1), 59–73. https://doi.org/10.1016/j.apsb.2018.09.008
  • Renkoğlu, P., Çelebier, M., & Arica, B. (2015). HPLC determination of olanzapine and carbamazepine in their nicotinamide cocrystals and investigation of the dissolution profiles of cocrystal tablet formulations. Pharmaceutical Development and Technology, 20(3), 380–384. https://doi.org/10.3109/10837450.2014.882937
  • Ross, S. A., Lamprou, D. A., & Douroumis, D. (2016). Engineering and manufacturing of pharmaceutical co-crystals: A review of solvent-free manufacturing technologies. Chemical Communications, 52(57), 8772–8786. https://doi.org/10.1039/c6cc01289b
  • Schultheiss, N., & Newman, A. (2009). Pharmaceutical cocrystals and their physicochemical properties. Crystal Growth and Design, 9(6), 2950–2967. https://doi.org/10.1021/cg900129f
  • Serrano, D. R., O’Connell, P., Paluch, K. J., Walsh, D., & Healy, A. M. (2016). Cocrystal habit engineering to improve drug dissolution and alter derived powder properties. Journal of Pharmacy and Pharmacology, 68(5), 665–677. https://doi.org/10.1111/jphp.12476
  • Shiraki, K., Takata, N., Takano, R., Hayashi, Y., & Terada, K. (2008). Dissolution improvement and the mechanism of the improvement from cocrystallization of poorly water-soluble compounds. Pharmaceutical Research, 25(11), 2581–2592. https://doi.org/10.1007/s11095-008-9676-2
  • Sun, C., & Grant, D. J. W. (2001). Influence of crystal structure on the tableting properties of sulfamerazine polySun, C., & Grant, D. J. W. (2001). Influence of crystal structure on the tableting properties of sulfamerazine polymorphs. Pharmaceutical Research, 18(3), 274–280. doi:10.1023. Pharmaceutical Research, 18(3), 274–280. https://doi.org/10.1023/A:1011038526805
  • Thakuria, R., Delori, A., Jones, W., Lipert, M. P., Roy, L., & Rodríguez-Hornedo, N. (2013). Pharmaceutical cocrystals and poorly soluble drugs. International Journal of Pharmaceutics, 453(1), 101–125. https://doi.org/10.1016/j.ijpharm.2012.10.043

Ayrıntılar

Birincil Dil İngilizce
Konular Mühendislik
Bölüm Araştırma Makalesi
Yazarlar

Sinem ELMAS
SABANCI UNIVERSITY
0000-0002-9745-9680
Türkiye


Fatma Elif GENCELİ GÜNER Bu kişi benim
ISTANBUL TECHNICAL UNIVERSITY
0000-0001-6201-6719
Türkiye

Yayımlanma Tarihi 30 Aralık 2021
Yayınlandığı Sayı Yıl 2021 Cilt: 9

Kaynak Göster

Bibtex @araştırma makalesi { konjes998111, journal = {Konya Journal of Engineering Sciences}, eissn = {2667-8055}, address = {Konya Teknik Üniversitesi Mühendislik ve Doğa Bilimleri Fakültesi Dekanlığı, Alaeddin Keykubat Yerleşkesi, Akademi Mah. Yeni İstanbul Cad. No:369 Posta Kodu:42130 Selçuklu-Konya / TÜRKİYE}, publisher = {Konya Teknik Üniversitesi}, year = {2021}, volume = {9}, pages = {213 - 223}, doi = {10.36306/konjes.998111}, title = {ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION}, key = {cite}, author = {Elmas, Sinem and Genceli Güner, Fatma Elif} }
APA Elmas, S. & Genceli Güner, F. E. (2021). ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION . Konya Journal of Engineering Sciences , Cilt: 9 Özel Sayı , 213-223 . DOI: 10.36306/konjes.998111
MLA Elmas, S. , Genceli Güner, F. E. "ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION" . Konya Journal of Engineering Sciences 9 (2021 ): 213-223 <https://dergipark.org.tr/tr/pub/konjes/issue/67514/998111>
Chicago Elmas, S. , Genceli Güner, F. E. "ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION". Konya Journal of Engineering Sciences 9 (2021 ): 213-223
RIS TY - JOUR T1 - İlaç Ko-Kristallerinin Fiziksel Özelliklerinin Çözünme Konsantrasyonuna Etkisinin Analizi AU - SinemElmas, Fatma ElifGenceli Güner Y1 - 2021 PY - 2021 N1 - doi: 10.36306/konjes.998111 DO - 10.36306/konjes.998111 T2 - Konya Journal of Engineering Sciences JF - Journal JO - JOR SP - 213 EP - 223 VL - 9 IS - SN - -2667-8055 M3 - doi: 10.36306/konjes.998111 UR - https://doi.org/10.36306/konjes.998111 Y2 - 2021 ER -
EndNote %0 Konya Journal of Engineering Sciences ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION %A Sinem Elmas , Fatma Elif Genceli Güner %T ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION %D 2021 %J Konya Journal of Engineering Sciences %P -2667-8055 %V 9 %N %R doi: 10.36306/konjes.998111 %U 10.36306/konjes.998111
ISNAD Elmas, Sinem , Genceli Güner, Fatma Elif . "ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION". Konya Journal of Engineering Sciences 9 / (Aralık 2021): 213-223 . https://doi.org/10.36306/konjes.998111
AMA Elmas S. , Genceli Güner F. E. ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION. KONJES. 2021; 9: 213-223.
Vancouver Elmas S. , Genceli Güner F. E. ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION. Konya Journal of Engineering Sciences. 2021; 9: 213-223.
IEEE S. Elmas ve F. E. Genceli Güner , "ANALYSIS OF THE EFFECT OF PHYSICAL PROPERTIES OF DRUG CO-CRYSTALS ON DISSOLUTION CONCENTRATION", Konya Journal of Engineering Sciences, c. 9, ss. 213-223, Ara. 2021, doi:10.36306/konjes.998111