Utilizing Enantiomeric Separations in Bioanalysis
Presentations | 2010 | MerckInstrumentation
Chiral separation plays a vital role in bioanalysis due to the unique pharmacological and toxicological profiles of enantiomers. Accurate enantiomeric quantitation supports drug development, clinical pharmacokinetic studies, and regulatory compliance by ensuring safety and efficacy of chiral pharmaceuticals.
This work investigates the application of macrocyclic glycopeptide chiral stationary phases (CSPs) for enantiomeric analysis of β-blockers in biological matrices. The primary goals are to develop LC-MS compatible methods using reversed-phase mobile phases, evaluate sample preparation strategies for phospholipid removal, and demonstrate the approach on rat plasma samples spiked with target drugs and metabolites.
Sample preparation employed two approaches:
Initial CSP screening identified Chirobiotic T as the most versatile for separating multiple β-blocker enantiomers under LC-MS-compatible conditions. Key findings include:
The developed methodology offers:
Potential developments include:
This study demonstrates that macrocyclic glycopeptide CSPs, particularly Chirobiotic T, combined with LC-MS-compatible mobile phases and HybridSPE-PPT sample cleanup, provide a powerful platform for enantiomeric bioanalysis of β-blockers. The approach streamlines workflow, minimizes matrix interferences, and supports accurate quantitation in pharmacokinetic and ADME/Tox applications.
HPLC
IndustriesClinical Research
ManufacturerMerck
Summary
Significance of the topic
Chiral separation plays a vital role in bioanalysis due to the unique pharmacological and toxicological profiles of enantiomers. Accurate enantiomeric quantitation supports drug development, clinical pharmacokinetic studies, and regulatory compliance by ensuring safety and efficacy of chiral pharmaceuticals.
Study objectives and overview
This work investigates the application of macrocyclic glycopeptide chiral stationary phases (CSPs) for enantiomeric analysis of β-blockers in biological matrices. The primary goals are to develop LC-MS compatible methods using reversed-phase mobile phases, evaluate sample preparation strategies for phospholipid removal, and demonstrate the approach on rat plasma samples spiked with target drugs and metabolites.
Experimental methodology and instrumentation
Sample preparation employed two approaches:
- Standard protein precipitation: addition of 1% formic acid in acetonitrile, centrifugation, and direct analysis of supernatant.
- HybridSPE-PPT technique: protein precipitation followed by phospholipid depletion using zirconia-coated particles under vacuum.
- LC system: Agilent 1200RR HPLC.
- Chiral column: Chirobiotic T (teicoplanin) CSP, 25 cm × 2.1 mm, 5 µm.
- Mobile phase: methanol with 15 mM ammonium formate, flow rate 300 µL/min, 25 °C.
- Detection: Agilent 6210 TOF-MS in ESI+ mode, mass range 50–2000 m/z for analytes and 450–850 m/z for phospholipids.
Main results and discussion
Initial CSP screening identified Chirobiotic T as the most versatile for separating multiple β-blocker enantiomers under LC-MS-compatible conditions. Key findings include:
- Baseline enantiomeric resolution of compounds such as metoprolol, atenolol, sotalol, clenbuterol, and pindolol with selectivity factors up to 1.29.
- Direct ESI+ analysis without specialized ion sources, enabled by reversed-phase solvents.
- HybridSPE-PPT effectively removed phospholipid matrix components, preventing ion suppression for early-eluting analytes.
- Composite extracted ion chromatograms demonstrated clear enantiomer peaks and minimal interferences even when chromatographic coelution occurred.
Benefits and practical applications
The developed methodology offers:
- Streamlined workflow: elimination of evaporation and reconstitution steps, enabling direct injection of plasma extracts.
- Improved robustness: reduced matrix effects through HybridSPE-PPT, enhancing quantitative reliability.
- Wide applicability: suitable for clinical pharmacokinetics, ADME/Tox studies, and routine QA/QC of chiral drugs.
Future trends and opportunities
Potential developments include:
- Extension of macrocyclic glycopeptide CSPs to other chiral drug classes and complex biological samples.
- Integration with high-resolution mass spectrometry and multi-dimensional separations for enhanced selectivity.
- Automation of HybridSPE sample preparation in high-throughput formats to support large‐scale clinical studies.
Conclusion
This study demonstrates that macrocyclic glycopeptide CSPs, particularly Chirobiotic T, combined with LC-MS-compatible mobile phases and HybridSPE-PPT sample cleanup, provide a powerful platform for enantiomeric bioanalysis of β-blockers. The approach streamlines workflow, minimizes matrix interferences, and supports accurate quantitation in pharmacokinetic and ADME/Tox applications.
Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.
Similar PDF
Impact of Reversed-Phase Chiral Chromatography on the LC-MS Analysis of Drugs in Biological Fluids
2011|Agilent Technologies|Presentations
Impact of Reversed-Phase Chiral Chromatography on the LC-MS Analysis of Drugs in Biological Fluids •David S. Bell, Carmen T. Santasania, Jennifer Claus, Wayne K. Way, and Craig R. Aurand Supelco, Div. of Sigma-Aldrich, Bellefonte, PA 16823 USA sigma-aldrich.com T411043 Abstract…
Key words
chiral, chiralphase, phasenormal, normalmacrocyclic, macrocycliccsps, cspsreversed, reversedglycopeptide, glycopeptidechirobiotic, chirobioticmodifiers, modifiersketorolac, ketorolaccyclodextrin, cyclodextrinblockers, blockersenantiomeric, enantiomericenantiomers, enantiomersunder
Basics of Chiral HPLC
|Merck|Presentations
Basics of Chiral HPLC Definitions Principles Available CSPs Mobile phase types T408109 sigma-aldrich.com The Field of Stereochemistry 1. All isomers have same chemical formula but differ in the arrangement of certain chemical groups in space. 2. Many types of isomers…
Key words
chirobiotic, chirobioticionic, ionicphases, phasesphase, phasepolar, polarchiral, chiralcsps, cspsracemates, racematescooh, coohcyclobond, cyclobondselectivity, selectivitynormal, normalinclusion, inclusionmobile, mobilestereogenic
HPLC Enantiomeric Separations of Pharmaceuticals Using Polar Organic Mobile Phases
2011|Merck|Presentations
HPLC Enantiomeric Separations of Pharmaceuticals Using Polar Organic Mobile Phases •J.T. Lee and William Campbell Supelco, Div. of Sigma-Aldrich, Bellefonte, PA 16823 USA sigma-aldrich.com T411054 Agenda • • • • • • • • • Background Benefits Mechanisms Separation Comparisons…
Key words
dmp, dmpcellulose, cellulosepolar, polardiperodon, diperodoncsps, cspsmianserin, mianserinhomatropine, homatropineionic, ionicelution, elutionorganic, organicmacrocyclic, macrocyclicindapamide, indapamideketoconazole, ketoconazolephases, phasesinteractions
LC-MS Resource Guide
2020|Merck|Guides
LC-MS Resource Guide A Comprehensive Portfolio for Consistent Results in Routine and Advanced LC-MS applications The life science business of Merck KGaA, Darmstadt, Germany operates as MilliporeSigma in the U.S. and Canada. LC-MS Resource Guide Maximize the Performance of Your…
Key words
chromolith, chromolithcustom, customzic, zichybridspe, hybridspephase, phasecolumn, columnresource, resourceguard, guardhplc, hplcmobile, mobileproteins, proteinscolumns, columnshilic, hilicguide, guidelichrosolv