基于同位素追踪的代谢物鉴定用于质谱代谢学代谢学
bioRxiv : the preprint server for biology
|April 28, 2025
概括
基于质谱的代谢学正在努力识别未知的生物分子. 这项研究引入了一种新型的质量同位素分布 (MID) 方法,使用同位素标记的标记物来识别新型代谢物,显著改善生物医学中的代谢物发现.
科学领域:
- 生物医学研究的研究.
- 代谢学 代谢学 代谢学
- 分析化学是一种分析化学.
背景情况:
- 基于质谱的代谢学对生物医学至关重要,但难以识别大多数检测到的特征.
- 目前的代谢物识别严重依赖于质谱/质谱 (MS2) 碎片化模式,这有局限性.
研究的目的:
- 开发和验证使用质量同位素分布 (MID) 识别内源代谢物的直角方法.
- 通过将其MID与同位素标记样本中的已知标准进行比较,以计算方式识别新型代谢物.
主要方法:
- 使用的细胞材料标有20个个别的13C标记物来测量MIDs.
- 开发了一种用于识别代谢物MID之间的对距离的计算量.
- 应用了基于MID的方法来识别代谢学数据中的未知峰值.
主要成果:
- 成功识别了62%以前未知的代谢物峰值,包括新型化合物.
- 基于MID的识别证明是MS2方法的补充,为代谢途径提供了洞察力.
- 发现了trimethylglycyl-lysine,一种新型的氨基酸衍生物,在人类肌肉组织中发生了改变.
结论:
- 基于MID的注释使用同位素标记的参考材料是识别新型内源代谢物的有效策略.
- 这种方法显著扩大了基于质谱的代谢学的能力.
- 该方法为MS2提供了补充信息,有助于阐明代谢途径和发现新的生物标志物.
更多相关视频
相关概念视频
Mass Spectrometry: Isotope Effect
1.8K
Most elements exist in nature as a mixture of isotopes. The isotopes differ in weight due to their respective number of neutrons. The molecular weight of a molecule is different depending on the specific isotope of its elements involved. As a result, the mass spectrum of the molecule exhibits peaks from the same fragment at multiple positions. The positions of these mass signals depend on the difference between the molecular mass. Furthermore, the intensity of these signals is dependent on the...
1.8K
Mass Spectrum: Interpretation
1.0K
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 low-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...
To...
1.0K
Peptide Identification Using Tandem Mass Spectrometry
6.2K
Tandem mass spectrometry, also known as MS/MS or MS2, is an analytical technique that employs two mass analyzers. Essentially it is a series of mass spectrometers that helps isolate a particular biomolecule and then helps study its chemical properties.
This technique helps gather information regarding the protein from which the peptide was obtained and to study the peptides’ amino acid sequence. Identifying peptides from a complex mixture is an important component of the growing field of...
This technique helps gather information regarding the protein from which the peptide was obtained and to study the peptides’ amino acid sequence. Identifying peptides from a complex mixture is an important component of the growing field of...
6.2K
Mass Spectrometry: Complex Analysis
649
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...
GC–MS is a powerful hyphenated method commonly used in forensics and environmental...
649
Mass Spectrometry: Overview
3.6K
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 electrospray 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...
3.6K
High-Resolution Mass Spectrometry (HRMS)
1.1K
The resolution of a mass spectrometer depends on the efficiency of separating ions with different ion masses. The mass of an atom is approximated to the sum of the masses of protons and neutrons inside, considering the masses of protons and neutrons as equal. However, the masses of the proton (1.6726 × 10−24 g) and neutron (1.6749 × 10−24 g) are not truly equal. There is a minor error in the expression of atomic masses relative to the simplest atom of hydrogen. For...
1.1K


