Institute of Physical Chemistry and Abbe Center of Photonics (IPC), Friedrich-Schiller-University Jena, Helmholtzweg 4, 07743 Jena, Germany.
Leibniz Institute of Photonic Technology (Leibniz-IPHT), Member of Leibniz Research Alliance "Health Technologies", Albert-Einstein-Straße 9, 07745 Jena, Germany.
Anal Chem. 2021 Jun 1;93(21):7714-7723. doi: 10.1021/acs.analchem.1c01076. Epub 2021 May 20.
Raman-stable isotope labeling using heavy water (Raman-DO) is attracting great interest as a fast technique with various applications ranging from the identification of pathogens in medical samples to the determination of microbial activity in the environment. Despite its widespread applications, little is known about the fundamental processes of hydrogen-deuterium (H/D) exchange, which are crucial for understanding molecular interactions in microorganisms. By combining two-dimensional (2D) correlation spectroscopy and Raman deuterium labeling, we have investigated H/D exchange in bacterial cells under time dependence. Most C-H stretching signals decreased in intensity over time, prior to the formation of the C-D stretching vibration signals. The intensity of the C-D signal gradually increased over time, and the shape of the C-D signal was more uniform after longer incubation times. Deuterium uptake showed high variability between the bacterial genera and mainly led to an observable labeling of methylene and methyl groups. Thus, the C-D signal encompassed a combination of symmetric and antisymmetric CD and CD stretching vibrations, depending on the bacterial genera. The present study allowed for the determination of the sequential order of deuterium incorporation into the functional groups of proteins, lipids, and nucleic acids and hence understanding the process of biomolecule synthesis and the growth strategies of different bacterial taxa. We present the combination of Raman-DO labeling and 2D correlation spectroscopy as a promising approach to gain a fundamental understanding of molecular interactions in biological systems.
重水(Raman-DO)的拉曼稳定同位素标记作为一种快速技术,具有从医学样本中鉴定病原体到确定环境中微生物活性等各种应用,引起了极大的关注。尽管它的应用广泛,但对于氢氘(H/D)交换的基本过程知之甚少,而这些过程对于理解微生物中的分子相互作用至关重要。通过结合二维(2D)相关光谱和拉曼氘标记,我们研究了时间依赖性下细菌细胞中的 H/D 交换。大多数 C-H 伸缩信号随时间的推移强度降低,然后才形成 C-D 伸缩振动信号。C-D 信号的强度随时间逐渐增加,并且在更长的孵育时间后 C-D 信号的形状更加均匀。氘吸收在细菌属之间表现出高度的可变性,主要导致亚甲基和甲基基团的可观察标记。因此,C-D 信号包含对称和反对称 CD 和 CD 伸缩振动的组合,具体取决于细菌属。本研究能够确定氘掺入蛋白质、脂质和核酸的功能基团的顺序,从而理解生物分子合成过程和不同细菌类群的生长策略。我们提出了将 Raman-DO 标记与 2D 相关光谱相结合,作为深入了解生物系统中分子相互作用的一种很有前途的方法。