BibTex RIS Kaynak Göster

Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics

Yıl 2014, Cilt: 42 Sayı: 3, 443 - 450, 01.09.2014

Öz

This study describes the preparation of a hydrophilic monolithic column and its application to sulfonamide antibiotics. The column was prepared by single step in situ polymerization of 2-hydroxyethyl methacrylate HEMA , ethylene dimethacrylate EDMA and methacrylic acid MAA in a binary porogenic solvent consisting of toluene and 1-dodecanol, inside a 100 μm-i.d. capillary. The resulting monolith was electrochromatographically characterized as well as SEM. The prepared column showed hydrophilic behaviour using thiourea and toluene as markers. The SEM images showed that the monolithic column composed of spherical particles of approximately 2 μm in diameter. Using this hydrophilic monolith as stationary phase, hydrophilic interaction electrochromatography of sulfonamide antibiotics as a new method was developed. The method was successfully used for the separation of sulfonamide antibiotics. Some parameters including acetonitrile ACN content, pH and ionic strength on the separation of the sulfonamides, namely sulfaprydine, sulfadiazine, sulfamethazine, sulfisoxazole and sulfadoxine were also investigated. A typical hydrophilic interaction separation mechanism was revealed at higher organic solvent content ACN > 60% .

Kaynakça

  • 1. T. Ikegami, K. Tomomatsu, H. Takubo, K. Horie, N. Tanaka, Separation efficiencies in hydrophilic interaction chromatography, J Chrom A, 1184 (2010) 474.
  • 2. Que A.H, Konse T, Baker A.G, Novotny, M.V Analysis of bile acids and their conjugates by capillary electrochromatography/electrospray ion trap mass spectrometry, Anal Chem., 72 (2000) 2703.
  • 3. M.L. Ye, H.F. Zou, R.N. Wu, H.Q. Fu, Z.D. Lei, Modeling and optimization for separation of ionic solutes in pressurized flow Capillary electrochromatograph, J Sep Sci., 25 (2002) 416.
  • 4. C. Aydoğan, A. Denizli, Electrochromatographic Enantioseparation of Amino Acids Using Polybutylmethacrylate-based Chiral Monolithic Column by Capillary Electrochromatography, Chirality, 24 (2012) 606.
  • 5. C. Aydoğan, A. Denizli, Preparation and electrochromatographic characterization of methacrylate-based weak cation exchange columns for capillary electrochromatography, Analyst, 138 (2013) 2118.
  • 6. C. Aydoğan, A. Tuncel, A. Denizli, Polymethacrylatebased monolithic capillary column with weak cation exchange functionalities for capillary electrochromatography, J Sep Sci., 35 (2012) 1010.
  • 7. C. Aydoğan, F. Yılmaz, A. Denizli A, Cation exchange/ hydrophobic interaction monolithic chromatography of small molecules and proteins by nano liquid chromatography, J Sep Sci., 36 (2013)1685.
  • 8. H. Zhong, Z. El Rassi, Neutral polar methacrylate-based monoliths for normal phase nano-LC and CEC of polar species including N-glycans, J Sep Sci., 32 (2009)10.
  • 9. M. Lammerhofer, F. Svec, J.M.J. Frechet, W. Lindner, Capillary electrochromatography in anion exchange and normal-phase mode using monolithic stationary phases, J Chrom A, 925 (2001) 265.
  • 10. Z. Jiang, N.W. Smith, P.D. Ferguson, M.R. Taylor, Hydrophilic interaction chromatography using methacrylate-based monolithic capillary column for the separation of polar analytes, Anal Chem., 79 (2006) 1243.
  • 11. C. Viklund, K. Irgum, Synthesis of Porous Zwitterionic Sulfobetaine Monoliths and Characterization of Their Interaction with Proteins, Macromolecules, 33 (2000) 2539.
  • 12. Y. Lv, Z. Lin, F. Svec, Hypercrosslinked large surface area porous polymer monoliths for hydrophilic interaction liquid chromatography of small molecules featuring zwitterionic functionalities attached to gold nanoparticles held in layered structure, Anal Chem., 84 (2012) 8457.
  • 13. D.N. Gunasena, Z. El Rassi, Organic monoliths for hydrophilic interaction electrochromatography/ chromatography and immunoaffinity chromatography, Electrophoresis, 33 (2012) 251.
  • 14. J. Urban, P. Jandera, Recent advances in the design of organic polymer monoliths for reversed-phase and hydrophilic interaction chromatography separations of small molecules, Anal Bioanal Chem., 405 (2013) 2123.
  • 15. Y.J. Cheng, S.H. Huang, B. Singco, H.Y. Huang, Simultaneous determination of thirteen polycyclic aromatic hydrocarbons and twelve aldehydes in cooked food by an automated on-line solid phase extraction ultra high performance liquid chromatography tandem mass spectrometry, J Chrom A, 1218 (2011) 7640.
  • 16. S. Dube, R.M. Smith, Separation of Sulfonamides by Capillary Electrochromatography, Chromatographia, 53 (2001) 51.
  • 17. M.C. Puyana, A.L. Crego, M.L. Marina, Recent advances in the analysis of antibiotics by CE and CEC, Electrophoresis, 31 (2010) 229.
  • 18. X. Wang, H. Lü, X. Lin, Z.J. Xie, Electrochromatographic characterization of methacrylate-based monolith with mixed mode of hydrophilic and weak electrostatic interaction by pressurized capillary electrochromatography, J Chrom A, 1190 (2008) 365.

Sülfonamid Antibiyotiklerin Ayırımı için Hidrofilik Etkileşim Elektrokromatografi Yönteminin Kullanımı

Yıl 2014, Cilt: 42 Sayı: 3, 443 - 450, 01.09.2014

Öz

B u çalışma hidrofilik monolitik kolonların hazırlanması ve sülfonamid antibiyotiklerin ayırımında kullanımını içermektedir. Kolon, 2-hidoksietil metakrilat HEMA , etilen dimetakrilat EDMA ve metakrilik asitin MAA toluen ve 1-dodekanol çözücü çifti eşliğinde, 100 μm iç çaplı i.d kapiler kolon içinde tek basamaklı olarak sentezlenmesiyle hazırlandı. Monolitik kolon, hem elektrokromatografik olarak hemde taramalı elektron mikroskobu SEM ile karakterize edildi. Hazırlanan kolon tiyoüre ve toluen’in işaretçi olarak kullanıldığı kromatografi sisteminde hidrofilik davranış göstermektedir. SEM görüntüleri, monolitik kolonun yaklaşık 2 μm çapında küresel partiküller içerdiğini göstermektedir. Hazırlanan hidrofilik monolitin, sülfonamidlerin elektrokromatografik ayırımında sabit faz olarak kullanımı yeni bir metod olarak geliştirilerek ayırım işlemi başarılı bir şekilde gerçekleştirildi. ACN miktarı, pH, iyonik şiddet gibi bazı parametrelerin sülfopiridin, sülfodiazin, sülfometazin, sülfisoksazol ve sülfadoksin gibi antibiyotiklerin ayırımına etkisi de incelendi. Yüksek organik solvent ACN>60% içeriğinde tipik bir hidrofilik etkileşim mekanizması gözetlendi

Kaynakça

  • 1. T. Ikegami, K. Tomomatsu, H. Takubo, K. Horie, N. Tanaka, Separation efficiencies in hydrophilic interaction chromatography, J Chrom A, 1184 (2010) 474.
  • 2. Que A.H, Konse T, Baker A.G, Novotny, M.V Analysis of bile acids and their conjugates by capillary electrochromatography/electrospray ion trap mass spectrometry, Anal Chem., 72 (2000) 2703.
  • 3. M.L. Ye, H.F. Zou, R.N. Wu, H.Q. Fu, Z.D. Lei, Modeling and optimization for separation of ionic solutes in pressurized flow Capillary electrochromatograph, J Sep Sci., 25 (2002) 416.
  • 4. C. Aydoğan, A. Denizli, Electrochromatographic Enantioseparation of Amino Acids Using Polybutylmethacrylate-based Chiral Monolithic Column by Capillary Electrochromatography, Chirality, 24 (2012) 606.
  • 5. C. Aydoğan, A. Denizli, Preparation and electrochromatographic characterization of methacrylate-based weak cation exchange columns for capillary electrochromatography, Analyst, 138 (2013) 2118.
  • 6. C. Aydoğan, A. Tuncel, A. Denizli, Polymethacrylatebased monolithic capillary column with weak cation exchange functionalities for capillary electrochromatography, J Sep Sci., 35 (2012) 1010.
  • 7. C. Aydoğan, F. Yılmaz, A. Denizli A, Cation exchange/ hydrophobic interaction monolithic chromatography of small molecules and proteins by nano liquid chromatography, J Sep Sci., 36 (2013)1685.
  • 8. H. Zhong, Z. El Rassi, Neutral polar methacrylate-based monoliths for normal phase nano-LC and CEC of polar species including N-glycans, J Sep Sci., 32 (2009)10.
  • 9. M. Lammerhofer, F. Svec, J.M.J. Frechet, W. Lindner, Capillary electrochromatography in anion exchange and normal-phase mode using monolithic stationary phases, J Chrom A, 925 (2001) 265.
  • 10. Z. Jiang, N.W. Smith, P.D. Ferguson, M.R. Taylor, Hydrophilic interaction chromatography using methacrylate-based monolithic capillary column for the separation of polar analytes, Anal Chem., 79 (2006) 1243.
  • 11. C. Viklund, K. Irgum, Synthesis of Porous Zwitterionic Sulfobetaine Monoliths and Characterization of Their Interaction with Proteins, Macromolecules, 33 (2000) 2539.
  • 12. Y. Lv, Z. Lin, F. Svec, Hypercrosslinked large surface area porous polymer monoliths for hydrophilic interaction liquid chromatography of small molecules featuring zwitterionic functionalities attached to gold nanoparticles held in layered structure, Anal Chem., 84 (2012) 8457.
  • 13. D.N. Gunasena, Z. El Rassi, Organic monoliths for hydrophilic interaction electrochromatography/ chromatography and immunoaffinity chromatography, Electrophoresis, 33 (2012) 251.
  • 14. J. Urban, P. Jandera, Recent advances in the design of organic polymer monoliths for reversed-phase and hydrophilic interaction chromatography separations of small molecules, Anal Bioanal Chem., 405 (2013) 2123.
  • 15. Y.J. Cheng, S.H. Huang, B. Singco, H.Y. Huang, Simultaneous determination of thirteen polycyclic aromatic hydrocarbons and twelve aldehydes in cooked food by an automated on-line solid phase extraction ultra high performance liquid chromatography tandem mass spectrometry, J Chrom A, 1218 (2011) 7640.
  • 16. S. Dube, R.M. Smith, Separation of Sulfonamides by Capillary Electrochromatography, Chromatographia, 53 (2001) 51.
  • 17. M.C. Puyana, A.L. Crego, M.L. Marina, Recent advances in the analysis of antibiotics by CE and CEC, Electrophoresis, 31 (2010) 229.
  • 18. X. Wang, H. Lü, X. Lin, Z.J. Xie, Electrochromatographic characterization of methacrylate-based monolith with mixed mode of hydrophilic and weak electrostatic interaction by pressurized capillary electrochromatography, J Chrom A, 1190 (2008) 365.
Toplam 18 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Bölüm Research Article
Yazarlar

Cemil Aydoğan Bu kişi benim

Fatma Yılmaz Bu kişi benim

Duygu Çimen Bu kişi benim

Müge Andaç Bu kişi benim

Huma Shaikh Bu kişi benim

Adil Denizli Bu kişi benim

Yayımlanma Tarihi 1 Eylül 2014
Yayımlandığı Sayı Yıl 2014 Cilt: 42 Sayı: 3

Kaynak Göster

APA Aydoğan, C., Yılmaz, F., Çimen, D., Andaç, M., vd. (2014). Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics. Hacettepe Journal of Biology and Chemistry, 42(3), 443-450.
AMA Aydoğan C, Yılmaz F, Çimen D, Andaç M, Shaikh H, Denizli A. Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics. HJBC. Eylül 2014;42(3):443-450.
Chicago Aydoğan, Cemil, Fatma Yılmaz, Duygu Çimen, Müge Andaç, Huma Shaikh, ve Adil Denizli. “Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics”. Hacettepe Journal of Biology and Chemistry 42, sy. 3 (Eylül 2014): 443-50.
EndNote Aydoğan C, Yılmaz F, Çimen D, Andaç M, Shaikh H, Denizli A (01 Eylül 2014) Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics. Hacettepe Journal of Biology and Chemistry 42 3 443–450.
IEEE C. Aydoğan, F. Yılmaz, D. Çimen, M. Andaç, H. Shaikh, ve A. Denizli, “Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics”, HJBC, c. 42, sy. 3, ss. 443–450, 2014.
ISNAD Aydoğan, Cemil vd. “Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics”. Hacettepe Journal of Biology and Chemistry 42/3 (Eylül 2014), 443-450.
JAMA Aydoğan C, Yılmaz F, Çimen D, Andaç M, Shaikh H, Denizli A. Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics. HJBC. 2014;42:443–450.
MLA Aydoğan, Cemil vd. “Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics”. Hacettepe Journal of Biology and Chemistry, c. 42, sy. 3, 2014, ss. 443-50.
Vancouver Aydoğan C, Yılmaz F, Çimen D, Andaç M, Shaikh H, Denizli A. Study on an Hydrophilic Interaction Electrochromatography Method for Separation of Sulfonamide Antibiotics. HJBC. 2014;42(3):443-50.

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