Introducing Atlantis BEH Z-HILIC: A Zwitterionic Stationary Phase Based on Hybrid Organic/Inorganic Particles
Technical notes | 2021 | WatersInstrumentation
Hydrophilic interaction chromatography (HILIC) is a key technique for separating polar compounds in fields such as metabolomics, pharmaceutical analysis and food testing. A stationary phase with strong retention, broad pH stability and minimal surface charge interactions is essential for method flexibility and reproducibility.
This study introduces a new zwitterionic sulfobetaine stationary phase based on ethylene-bridged hybrid (BEH) particles. Key aims included evaluation of pH range (2–10), column efficiency, retention, selectivity, batch-to-batch reproducibility and performance with metal-sensitive analytes.
The performance of the BEH Z-HILIC phase was assessed through:
Integration of hybrid zwitterionic phases with ultra-high pressure and low adsorption hardware is expected to advance applications in high-throughput metabolomics, biopharmaceutical quality control and environmental monitoring. Further work on surface modifications may extend compatibility with extreme pH and complex biological matrices.
The Atlantis Premier BEH Z-HILIC phase combines zwitterionic retention, broad pH stability, high efficiency and reproducible performance, making it a valuable tool for a wide range of polar analyte separations. Its compatibility with MaxPeak HPS hardware further enhances analysis of metal-sensitive compounds.
Consumables, HPLC, LC columns
IndustriesManufacturerWaters
Summary
Importance of the Topic
Hydrophilic interaction chromatography (HILIC) is a key technique for separating polar compounds in fields such as metabolomics, pharmaceutical analysis and food testing. A stationary phase with strong retention, broad pH stability and minimal surface charge interactions is essential for method flexibility and reproducibility.
Objectives and Study Overview
This study introduces a new zwitterionic sulfobetaine stationary phase based on ethylene-bridged hybrid (BEH) particles. Key aims included evaluation of pH range (2–10), column efficiency, retention, selectivity, batch-to-batch reproducibility and performance with metal-sensitive analytes.
Methodology and Instrumentation
The performance of the BEH Z-HILIC phase was assessed through:
- Efficiency vs flow rate tests using acenaphthene (void) and cytosine (retained) markers.
- Retention and selectivity experiments with neutral and ionic test compounds.
- Batch-to-batch reproducibility studies across 17 production lots.
- Acid and base stability challenges at 70 °C over extended cycles.
- Analysis of metal-sensitive analytes (ATP, ADP, AMP) with MaxPeak HPS hardware.
Used Instrumentation
- ACQUITY UPLC I-Class, H-Class and Premier Systems
- ACQUITY UPLC PDA and TUV detectors
- Atlantis Premier BEH Z-HILIC, BEH Amide and BEH HILIC columns (1.7 µm, 2.1 × 50 mm)
- Empower 3 FR4 chromatography data software
Main Results and Discussion
- High efficiencies: Maximum 12 100 plates (H) for cytosine, plate height 4.1 µm.
- Strong retention: Highest k' for uridine compared with BEH Amide and BEH HILIC phases.
- Distinct selectivity: Enhanced separation of methylene, hydroxyl, isomeric and ionic pairs.
- Reproducibility: RSD ≤ 2.2 % for relative retention factors across 17 batches.
- pH stability: Stable from pH 2 to 10; < 6 % efficiency loss and modest retention shifts after base exposure.
- Metal-sensitive analytes: MaxPeak HPS hardware provided sharp, symmetric peaks for ATP, ADP and AMP.
Benefits and Practical Applications
- Versatile retention of neutral polar compounds
- Complementary selectivity to other BEH-based HILIC chemistries
- Wide pH range compatibility (2–10) for method development
- Robust reproducibility suitable for QA/QC workflows
- Improved performance for phosphorylated and acidic analytes
Future Trends and Applications
Integration of hybrid zwitterionic phases with ultra-high pressure and low adsorption hardware is expected to advance applications in high-throughput metabolomics, biopharmaceutical quality control and environmental monitoring. Further work on surface modifications may extend compatibility with extreme pH and complex biological matrices.
Conclusion
The Atlantis Premier BEH Z-HILIC phase combines zwitterionic retention, broad pH stability, high efficiency and reproducible performance, making it a valuable tool for a wide range of polar analyte separations. Its compatibility with MaxPeak HPS hardware further enhances analysis of metal-sensitive compounds.
Reference
- Alpert AJ. Hydrophilic Interaction Chromatography for the Separation of Peptides, Nucleic Acids and Other Polar Compounds. J Chromatogr. 1990;499:177–196.
- Hemström P, Irgum K. Hydrophilic Interaction Chromatography. J Sep Sci. 2006;29:1784–1821.
- Jandera P. Stationary and Mobile Phases in Hydrophilic Interaction Chromatography: A Review. Anal Chim Acta. 2011;692:1–25.
- Guo Y, Gaiki S. Retention and Selectivity of Stationary Phases for Hydrophilic Interaction Chromatography. J Chromatogr A. 2011;1218:5920–5938.
- Jiang W, Irgum K. Covalently Bonded Polymeric Zwitterionic Stationary Phase for Simultaneous Separation of Inorganic Cations and Anions. Anal Chem. 1999;71:333–344.
- Dinh NP, Jonsson T, Irgum K. Water Uptake on Polar Stationary Phases Under Conditions for HILIC. J Chromatogr A. 2013;1320:33–47.
- Soukup J, Jandera P. Adsorption of Water from Aqueous Acetonitrile on Silica-Based Stationary Phases. J Chromatogr A. 2014;1374:102–111.
- Trivedi DK, Jones H, Shah A, Iles RK. Development of ZIC HILIC-MS Metabolomics Method for Urine Analysis. J Chromatogr Sep Techniq. 2012;3:144–155.
- Floris P et al. LC-MS/MS Platform for Productivity Markers in Mammalian Cell Culture Media. Process Biochem. 2019;86:136–143.
- Hmelnickis J et al. Application of HILIC for Separation of Impurities of Mildronate Substance. J Pharm Biomed Anal. 2008;48:649–656.
- Diez C et al. Aminoglycoside Analysis in Food Using Zwitterionic Phase and LC-MS/MS. Anal Chim Acta. 2015;882:127–139.
- Ikegami T et al. Separation Efficiencies in HILIC. J Chromatogr A. 2008;1184:474–503.
- Wyndham KD et al. Characterization of C18 Phases Based on Ethyl-Bridged Hybrid Particles. Anal Chem. 2003;75:6781–6788.
- Mazzeo JR et al. Advancing LC Performance with Smaller Particles. Anal Chem. 2005;77:460A–467A.
- Lauber M et al. Low Adsorption HPLC Columns Based on MaxPeak HPS. Waters White Paper, 2020.
- Grumbach ES et al. Application of Novel 1.7 µm BEH Particles for HILIC. J Sep Sci. 2008;31:1511–1518.
- Heaton JC, McCalley DV. Comparison of Kinetic Performance of sub-2 µm Phases in HILIC. J Chromatogr A. 2014;1371:106–116.
- Kawachi Y et al. Chromatographic Characterization of HILIC Phases. J Chromatogr A. 2011;1218:5903–5919.
- Neue UD et al. Assessment of Reproducibility of Reversed-Phase Packings. J Chromatogr A. 1999;849:87–100.
- Berthelette K, Walter TH. Stability of HILIC Phases Under Low and High pH Conditions. Presented at HPLC 2019.
- DeLano M et al. Using Hybrid Surface Technology to Mitigate Interactions with Metal Surfaces. Anal Chem. 2021;93:5773–5781.
- Walter TH et al. Low Adsorption UPLC Systems and Columns Based on MaxPeak HPS. Waters White Paper, 2021.
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