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Tandem Mass Spectrometry01:21

Tandem Mass Spectrometry

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Tandem mass spectrometry is a technique that uses multiple mass analyzers in series to obtain a higher selectivity and reduce chemical noise during analyte detection. Instruments with multiple analyzers separated by an interaction cell enable secondary fragmentation and selected study of the fragment ions.Secondary fragmentations occur in the interaction cell and can be induced by various factors. Fragmentation induced by collision with inert gases, such as N2, Ar, He, etc., is called...
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Mass Spectrometers01:16

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This lesson details the instrumentation of a mass spectrometer—a physical instrument to perform mass spectrometry on analyte molecules and record the characteristic mass spectra. This is achieved via three chief functions:
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MALDI-TOF Mass Spectrometry01:19

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Mass spectrometry is a powerful characterization technique that can identify and separate a wide variety of compounds ranging from chemical to biological entities, based on their mass-to-charge ratio (m/z). The instruments that allow this detection, known as mass spectrometers, have three components: an ion source, a mass analyzer, and a detector. These spectrometers differ based on the nature of their ion source and analyzers.Matrix-assisted laser desorption ionization (MALDI) is a commonly...
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Mass Spectrometry: Complex Analysis01:21

Mass Spectrometry: Complex Analysis

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Mass spectrometry is an important technique for the identification of pure compounds. However, it has some limitations for the analysis of complex mixtures, often due to excessive fragmentation making the spectrum too complicated to decipher. Mass spectrometry can be combined with suitable separation methods in sequence, forming hyphenated methods, which are useful in the analysis of complex mixtures.
GC–MS is a powerful hyphenated method commonly used in forensics and environmental...
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Mass Spectrum: Interpretation01:24

Mass Spectrum: Interpretation

4.1K
An unknown compound can be established by identifying the molecular ion peak in the mass spectrum. The molecular ion peak is often weak or absent due to the predominance of fragmentation in high-energy electron beams. In such cases, a soft-energy electron beam can be used to scan the spectrum to enhance the intensity of the molecular ion peak. Additionally, chemical ionization, field ionization, and desorption ionization spectra are used to obtain a relatively intense molecular ion peak.To...
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Mass Spectrometry: Overview01:19

Mass Spectrometry: Overview

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Mass spectrometry is an analytical technique used to determine the molecular mass and molecular formula of a compound. The basic principle of mass spectrometry is to generate ions from the analyte molecule and measure these ion abundances against their molecular mass. One common type of ionization, known as electron ionization or EI, bombards the analyte molecules in the gas phase with high-energy electron beams. The electron beams displace an electron from the molecule and leave behind a...
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Updated: May 6, 2026

Navigating the Mass Spectrometry-Based Proteomic Data Using Free Computational Tools
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Networking mass spectrometer data systems for improved productivity and electronic archiving of data.

M J Hayward1, P V Robandt, J T Meek

  • 1Agricultural Research Division, Analytical, Physical and Biochemical Research Section, American Cyanamid Company, P.O. Box 400, 08543-0400, Princeton, New Jersey, USA.

Journal of the American Society for Mass Spectrometry
|November 15, 2013
PubMed
Summary

This study networked Finnigan-MAT mass spectrometer systems, enabling remote data access and central electronic archiving. This significantly boosted productivity by allowing simultaneous data acquisition and processing across multiple locations.

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Area of Science:

  • Analytical Chemistry
  • Computer Science
  • Data Management

Background:

  • Mass spectrometry data acquisition and processing often require localized access.
  • Centralized data archiving and remote access present significant logistical challenges.

Purpose of the Study:

  • To establish a networked system for remote access to mass spectrometry data and processing.
  • To implement a centralized electronic archiving solution for mass spectrometry data.
  • To enhance productivity and data accessibility in mass spectrometry workflows.

Main Methods:

  • Networked multiple Finnigan-MAT mass spectrometer data systems using Ethernet interfaces.
  • Integrated UNIX workstations, IBM PC/AT computers, and Data General Nova minicomputers.
  • Utilized bridging techniques for network segmentation and security.
  • Implemented remote terminal access via a phone system.
  • Employed magneto-optical disks and high-capacity fixed disks for data archival and temporary storage.
  • Configured a DECstation 2100 UNIX workstation as a central file server.

Main Results:

  • Achieved simultaneous remote access to mass spectrometry data and processing functions without interrupting instrument data acquisition.
  • Established a centralized, high-capacity, fast-access electronic archive for mass spectrometry data.
  • Significantly improved productivity through rapid retrieval and processing of archived data from remote locations.
  • Demonstrated a cost- and space-efficient method for electronic archival of raw mass spectrometry data.

Conclusions:

  • Networked mass spectrometry data systems enhance operational efficiency and data accessibility.
  • Centralized electronic archiving of mass spectrometry data is feasible and beneficial.
  • The implemented system provides a robust solution for managing and accessing large volumes of scientific data.