HPAE-PAD determination of cyclodextrins
Applications | 2019 | Thermo Fisher ScientificInstrumentation
Cyclodextrins are cyclic oligosaccharides with a hydrophilic exterior and a lipophilic cavity. Their ability to form inclusion complexes improves solubility and stability of poorly soluble drugs. Reliable analysis of α, β and γ cyclodextrins and related derivatives is critical for pharmaceutical quality control and regulatory compliance.
This study evaluates the Thermo Scientific Dionex CarboPac PA200 column coupled with pulsed amperometric detection for:
High performance anion exchange chromatography with pulsed amperometric detection (HPAE-PAD) was used. Key elements include:
The CarboPac PA200 column achieved clear resolution of α-CD, β-CD, and γ-CD with retention time RSDs below 0.4%. When compared to the IonPac AS11 column:
This method delivers:
Advances in column technology and detector design may further improve analysis of modified cyclodextrins and higher oligomers. Automated sample preparation and integration with LC-MS are potential directions for expanding applications in drug development and formulation studies.
The Dionex CarboPac PA200 column coupled with HPAE-PAD provides a reliable, high-resolution method for cyclodextrin analysis. It meets USP criteria for β-cyclodextrin impurity testing in Betadex sulfobutyl ether sodium and offers strong performance advantages over existing columns.
Ion chromatography
IndustriesPharma & Biopharma
ManufacturerThermo Fisher Scientific
Summary
Importance of the Topic
Cyclodextrins are cyclic oligosaccharides with a hydrophilic exterior and a lipophilic cavity. Their ability to form inclusion complexes improves solubility and stability of poorly soluble drugs. Reliable analysis of α, β and γ cyclodextrins and related derivatives is critical for pharmaceutical quality control and regulatory compliance.
Objectives and Study Overview
This study evaluates the Thermo Scientific Dionex CarboPac PA200 column coupled with pulsed amperometric detection for:
- Baseline separation of α, β, and γ cyclodextrins
- Determination of β-cyclodextrin impurity in Betadex sulfobutyl ether sodium according to the USP monograph
- Comparison with the USP reference column (IonPac AS11) in terms of resolution, sensitivity, and robustness
Methodology and Instrumentation
High performance anion exchange chromatography with pulsed amperometric detection (HPAE-PAD) was used. Key elements include:
- Eluents: 100 mM NaOH (Eluent A) and 100 mM NaOH with 0.5 M NaNO3 (Eluent B)
- Gradient program optimized to separate cyclodextrins in 20 minutes and perform a column cleanup step
- Thermo Scientific Dionex ICS-5000+ system with DP Dual Pump, DC Detector/Chromatography Compartment, and ICS-6000 electrochemical detector
- CarboPac PA200 analytical column (3×250 mm) with guard column (3×50 mm)
- Pulsed amperometric waveform on a gold disposable working electrode and Ag/AgCl reference electrode
- Calibration standards of β-cyclodextrin RS prepared from 0.5 to 10 mg/L
- Sample preparation: 2000 mg/L Betadex solutions, with spiked samples at 1 and 2 mg/L β-cyclodextrin
Key Results and Discussion
The CarboPac PA200 column achieved clear resolution of α-CD, β-CD, and γ-CD with retention time RSDs below 0.4%. When compared to the IonPac AS11 column:
- Retention times for β-CD were reproducible at 2.5 min vs 1.88 min on AS11
- Plate counts exceeded 10 000 plates for β-CD, demonstrating high efficiency
- System suitability criteria (RSD of peak area and retention time <5%) were met
- Calibration curves showed quadratic behavior with r2>0.9999
- LOD and LOQ for β-CD were 0.03 mg/L and 0.10 mg/L respectively
Benefits and Practical Applications
This method delivers:
- High resolution separation of cyclodextrin homologs
- Robust β-CD impurity determination for quality control
- Enhanced sensitivity with disposable electrodes
- Compatibility with USP monograph requirements
Future Trends and Applications
Advances in column technology and detector design may further improve analysis of modified cyclodextrins and higher oligomers. Automated sample preparation and integration with LC-MS are potential directions for expanding applications in drug development and formulation studies.
Conclusion
The Dionex CarboPac PA200 column coupled with HPAE-PAD provides a reliable, high-resolution method for cyclodextrin analysis. It meets USP criteria for β-cyclodextrin impurity testing in Betadex sulfobutyl ether sodium and offers strong performance advantages over existing columns.
Reference
- Vyas A and Saraf S. Cyclodextrin based novel drug delivery systems. J Incl Phenom Macrocycl Chem. 2008;62:23–42
- Challa A T et al. Cyclodextrins in drug delivery: An updated review. AAPS PharmSciTech. 2005;6:E329–E357
- Brewster M E and Loftsson T. Cyclodextrins as pharmaceutical solubilizers. Adv Drug Deliv Rev. 2007;59:645–666
- Arima H et al. Potential use of cyclodextrins as drug carriers and active pharmaceutical ingredients. Chem Pharm Bull. 2017;65:341–348
- Hu Q-D et al. Cyclodextrin-based host–guest supramolecular nanoparticles for delivery. Acc Chem Res. 2014;47:2017–2025
- Cyclolab. Approved pharmaceutical products containing cyclodextrins. 2019
- Council of Europe European Pharmacopoeia 6.0. EDQM; 2008
- USP 30 NF 25. United States Pharmacopeia. Rockville MD; 2007
- USP 41 NF 36. United States Pharmacopeia. Rockville MD; 2018
- Rowe R J et al. Handbook of Pharmaceutical Excipients. 5th ed. Pharmaceutical Press; 2006
- Koizumi K et al. Determination of cyclic glucans by HPAE-PAD. J Chromatogr. 1988;454:303–310
- Haginaka J et al. Determination of cyclodextrins by reversed-phase chromatography with PAD. Anal Biochem. 1989;179:336
- Fukuda M et al. Microanalyses of β-cyclodextrin by HPLC-PAD. Anal Biochem. 1993;212:289
- Koo YS et al. Development of cyclodextrin glucanotransferase as a maltoheptaose-producing enzyme. Protein Eng Des Sel. 2015;28:531–537
- Dura A et al. Effects of cyclodextrins on plasma glucose and lipids metabolism in mice. J Drug Des Res. 2017;4:1051
- Thermo Fisher Scientific. Application Note AN72779: Limit of β-cyclodextrin in Betadex sulfobutyl ether sodium. 2019
- Thermo Scientific. Dionex CarboPac PA200 column product manual; 2019
- Thermo Fisher Scientific. TN71: Eluent preparation for HPAE-PAD; 2019
- Thermo Fisher Scientific. ICS-5000+ ion chromatography system installation. 2011
- Thermo Scientific. Electrochemical detection user’s compendium. 2013
- Thermo Fisher Scientific. TN21: Optimal settings for PAD of carbohydrates. 2019
- Thermo Fisher Scientific. AN1013: Polysialic acid analysis. 2019
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