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Shimadzu Liquid Chromatograph Mass Spectrometer LCMS-8050

Brochures and specifications | 2021 | ShimadzuInstrumentation
LC/MS, LC/MS/MS, LC/QQQ
Industries
Manufacturer
Shimadzu

Summary

Importance of the Topic


The development of ultra-fast, high-sensitivity triple quadrupole LC-MS/MS systems addresses critical demands in pharmaceutical, environmental, and clinical analysis. Advances in speed and detection limits directly impact laboratory throughput, method flexibility, and the ability to quantify trace-level analytes in complex matrices.

Objectives and Study Overview


This whitepaper presents the performance attributes of the Shimadzu LCMS-8050 mass spectrometer. Key goals include demonstrating:
  • High-speed positive/negative ion switching (UFswitching™) enabling multi-component assays in a single ultra-short chromatographic run
  • Ultra-fast scanning (UFscanning™) up to 30 000 u/sec to support simultaneous qualitative and quantitative data acquisition
  • High-throughput multiple reaction monitoring (UF-MRM™) at up to 555 transitions per second for trace-level pesticide and drug screening

Used Instrumentation


  • Shimadzu LCMS-8050 triple quadrupole mass spectrometer with patented UF technologies
  • Shimadzu Nexera UHPLC system with SIL-40 autosampler for sub-10 second injection cycles
  • Heated ESI probe and UFsweeper™ III collision cell for enhanced desolvation and ion transmission
  • LabSolutions Connect and Insight software for method setup, data acquisition, and multivariate review

Methodology


The LCMS-8050 integrates multiple proprietary technologies to achieve unprecedented speed and sensitivity:
  • UFswitching™: 5 ms polarity switching for concurrent positive/negative mode data within a single LC peak
  • UFscanning™: Mass scan rates of 30 000 u/sec with 0.1 u steps for retained mass accuracy and spectral quality
  • UF-MRM™: Acquisition of 555 MRM transitions per second, supporting large analyte panels without sensitivity loss

Key Results and Discussion


Performance studies illustrate:
  • CYP inhibition assay reduced from 7 min to 1 min while maintaining >20 data points per peak and low-level reproducibility (%RSD ≈ 4 % at 0.6 nmol/L)
  • MRM-triggered product ion scanning delivering both qualitative MS/MS spectra and quantitative MRM in one run, enhancing toxicology screening of benzodiazepines
  • Pesticide analysis in water achieving limits of quantitation down to 0.47–46.7 pg/mL for 29 compounds without pre-concentration
  • Trace quantitation of verapamil in plasma down to 500 ag with %RSD < 3 % across six replicates
  • High-throughput stability: 1 000 consecutive injections of alprazolam in plasma showed 4.6 % RSD, confirming system robustness

Advantages and Practical Applications of the Method


The LCMS-8050 platform benefits laboratories by:
  • Enabling rapid multi-residue and metabolite screening in regulatory, environmental, and clinical workflows
  • Reducing sample cycle times and solvent usage through sub-minute analyses and integrated UHPLC delivery
  • Streamlining method development via built-in MRM libraries and automated parameter optimization
  • Supporting high-confidence compound identification with synchronized survey scans and library searching

Future Trends and Potential Uses


Ongoing innovations may include:
  • Expanded application-specific MRM libraries for metabolomics, lipidomics, and forensic toxicology
  • Integration of high-dimensional data analytics and AI-driven compound identification
  • Further miniaturization of sample prep and higher-throughput autosampler designs
  • Broader cloud-enabled data management for collaborative regulatory and clinical studies

Conclusion


The Shimadzu LCMS-8050 redefines triple quadrupole performance by merging ultrafast ion optics, high-speed scanning, and robust sensitivity. This integrated solution accelerates complex quantitative and qualitative analyses in demanding environments, offering laboratories a powerful tool for high-throughput, trace-level applications.

References


No literature references were provided in the original text.

Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.

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