photodissociation

A time-independent, variational method for studying the photodissociation of triatomic molecules

Phys. Chem. Chem. Phys., 2024, 26,27519-27529
DOI: 10.1039/D4CP02771J, Paper
Open Access
  This article is licensed under a Creative Commons Attribution 3.0 Unported Licence.
Marco Pezzella, Georgi Mitev, Sergei N. Yurchenko, Jonathan Tennyson, Alexander O. Mitrushchenkov
The photodissociation of molecules is becoming an increasingly important factor to consider in the evolution of exoplanets' atmospheres orbiting around UV-rich stars, as it leads to the enrichment of atmospheric complexity.
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photodissociation

Ligand pathways in neuroglobin revealed by low-temperature photodissociation and docking experiments

A combined biophysical approach was applied to map gas-docking sites within murine neuroglobin (Ngb), revealing snapshots of events that might govern activity and dynamics in this unique hexacoordinate globin, which is most likely to be involved in gas-sensing in the central nervous system and for which a precise mechanism of action remains to be elucidated. The application of UV–visible microspectroscopy in crystallo, solution X-ray absorption near-edge spectroscopy and X-ray diffraction experiments at 15–40 K provided the structural characterization of an Ngb photolytic intermediate by cryo-trapping and allowed direct observation of the relocation of carbon monoxide within the distal heme pocket after photodissociation. Moreover, X-ray diffraction at 100 K under a high pressure of dioxygen, a physiological ligand of Ngb, unravelled the existence of a storage site for O2 in Ngb which coincides with Xe-III, a previously described docking site for xenon or krypton. Notably, no other secondary sites were observed under our experimental conditions.




photodissociation

Thorough Performance Evaluation of 213 nm Ultraviolet Photodissociation for Top-down Proteomics [Technological Innovation and Resources]

Top-down proteomics studies intact proteoform mixtures and offers important advantages over more common bottom-up proteomics technologies, as it avoids the protein inference problem. However, achieving complete molecular characterization of investigated proteoforms using existing technologies remains a fundamental challenge for top-down proteomics. Here, we benchmark the performance of ultraviolet photodissociation (UVPD) using 213 nm photons generated by a solid-state laser applied to the study of intact proteoforms from three organisms. Notably, the described UVPD setup applies multiple laser pulses to induce ion dissociation, and this feature can be used to optimize the fragmentation outcome based on the molecular weight of the analyzed biomolecule. When applied to complex proteoform mixtures in high-throughput top-down proteomics, 213 nm UVPD demonstrated a high degree of complementarity with the most employed fragmentation method in proteomics studies, higher-energy collisional dissociation (HCD). UVPD at 213 nm offered higher average proteoform sequence coverage and degree of proteoform characterization (including localization of post-translational modifications) than HCD. However, previous studies have shown limitations in applying database search strategies developed for HCD fragmentation to UVPD spectra which contains up to nine fragment ion types. We therefore performed an analysis of the different UVPD product ion type frequencies. From these data, we developed an ad hoc fragment matching strategy and determined the influence of each possible ion type on search outcomes. By paring down the number of ion types considered in high-throughput UVPD searches from all types down to the four most abundant, we were ultimately able to achieve deeper proteome characterization with UVPD. Lastly, our detailed product ion analysis also revealed UVPD cleavage propensities and determined the presence of a product ion produced specifically by 213 nm photons. All together, these observations could be used to better elucidate UVPD dissociation mechanisms and improve the utility of the technique for proteomic applications.




photodissociation

[ASAP] Infrared Photodissociation Spectroscopy of Mass-Selected Cu<sub>2</sub>O<sub>2</sub>(CO)<sub><italic toggle="yes">n</italic></sub><sup>+</sup> Clusters in the Gas Phase

The Journal of Physical Chemistry A
DOI: 10.1021/acs.jpca.0c01813




photodissociation

Ligand photodissociation in Ru(II)–1,4,7-triazacyclononane complexes enhances water oxidation and enables electrochemical generation of surface active species

Catal. Sci. Technol., 2020, Advance Article
DOI: 10.1039/C9CY02575H, Paper
Hussein A. Younus, Nazir Ahmad, Ibrahim Yildiz, Serge Zhuiykov, Shiguo Zhang, Francis Verpoort
Ligand transformations involved in metal complexes during water oxidation (WO), such as ligand decomposition, partial oxidation, or complete dissociation have been reported, however, ligand photodissociation has not been reported yet.
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