Abstract
Gas-phase activation and dissociation studies of biomolecules, proteins and their non-covalent complexes using X-rays hold great promise for revealing new insights into the structure and function of biological samples. This is due to the unique properties of X-ray molecular interactions, such as site-specific and rapid ionization. In this perspective, we report and discuss the promise of first proof-of-principle studies of X-ray-induced dissociation of native (structurally preserved) biological samples ranging from small 17 kDa monomeric proteins up to large 808 kDa non-covalent protein assemblies conducted at a synchrotron (PETRA III) and a free-electron laser (FLASH2). A commercially available quadrupole time-of-flight mass spectrometer (Q-Tof Ultima US, Micromass/Waters), modified for high-mass analysis by MS Vision, was further adapted for integration with the open ports at the corresponding beamlines. The protein complexes were transferred natively into the gas phase via nano-electrospray ionization and subsequently probed by extreme ultraviolet (FLASH2) or soft X-ray (PETRA III) radiation, in either their folded state or following collision-induced activation in the gas phase. Depending on the size of the biomolecule and the activation method, protein fragmentation, dissociation, or enhanced ionization were observed. Additionally, an extension of the setup by ion mobility is described, which can serve as a powerful tool for structural separation of biomolecules prior to X-ray probing. The first experimental results are discussed in the broader context of current and upcoming X-ray sources, highlighting their potential for advancing structural biology in the future.
| Originalsprache | Englisch |
|---|---|
| Zeitschrift | Physical Chemistry Chemical Physics |
| Jahrgang | 27 |
| Ausgabenummer | 25 |
| Seiten (von - bis) | 13234-13242 |
| Seitenumfang | 9 |
| ISSN | 1463-9076 |
| Publikationsstatus | Veröffentlicht - 25.06.2025 |
Fördermittel
We would like to thank everyone that has been involved in this experimental campaign. We acknowledge DESY (Hamburg, Germany), a member of the Helmholtz Association HGF, for the provision of experimental facilities. Parts of this research were carried out at FLASH and PETRA III. We would like to thank Moritz Hoesch and Marion Kuhlmann for assistance in using P04 and FL24, respectively. Beamtimes were allocated for proposals F-20150009, F-20171103, I-20180927, I-20190534, and I-20221192. We also acknowledge members of the MS SPIDOC consortium, the Uetrecht group (Hao Yan) and collaborators, including at the Universität Greifswald (Paul Fischer, Gerrit Marx), the University of Hamburg (Henning Tidow), European XFEL (Joachim Schulz, Carsten Deiter, James Moore, Rita Graceffa, Matthäus Kitel) for their participation in the beamline experiments. Finally, we acknowledge all the funding agencies that made this project possible: J. C. K. K., A. K., St. B., C. C., J. C., T. D., K. H., K. L., Y. L., L.utz S., F. S., T. K., and C. U. acknowledge the funding of MS SPIDOC by the European Union's Horizon 2020 research and innovation program (grant agreement no. 801406). K. S.-K., K. K., and C. U. acknowledge the funding of ERC SPOCk’S MS by the ERC (grant agreement no. 759661). C. U. acknowledges the funding of PIER Ideenfonds from DESY and the University of Hamburg. Leibniz Institute for Experimental Virology is supported by the Free and Hanseatic City of Hamburg and the German Federal Ministry of Health. J. C. K. K., C. C., T. D., and C. U. acknowledge support from a Röntgen Ångström Cluster grant provided by the Swedish Research Council and the Bundesministerium für Bildung und Forschung (2021-05988, 05K22PSA). A. K. gratefully acknowledges an Alexander von Humboldt postdoctoral fellowship (1196583-HFST-P). C. U., A. K., and Lutz S. further acknowledge funding through Bundesministerium für Bildung und Forschung (BMBF) 05K2016 VISAVIX (05K16HG1, 05K16BH1). Sa. B. and Lucas S. acknowledge funding by the Helmholtz Initiative and Networking Fund and Sa. B. acknowledges further support by the Cluster of Excellence ‘CUI: Advanced Imaging of Matter’ of the Deutsche Forschungsgemeinschaft (DFG) - EXC 2056 - project ID 390715994. C. C. and P. H. W. S. acknowledge support from the Swedish Research Council through projects 2021-05988 and 2018-00740. C. C. acknowledges support from the Helmholtz Association through the Center for Free-Electron Laser Science at DESY. S. D. and C. U. acknowledge funding from VirMScan, provided by the Bundesministerium für Bildung und Forschung (BMBF 13GW0622). L. F. was funded by the Promotion of young CSSB scientists’ program by the Joachim Herz Foundation. F. T. acknowledges funding by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) - Project 509471550, Emmy Noether Programme. We would like to thank everyone that has been involved in this experimental campaign. We acknowledge DESY (Hamburg, Germany), a member of the Helmholtz Association HGF, for the provision of experimental facilities. Parts of this research were carried out at FLASH and PETRA III. We would like to thank Moritz Hoesch and Marion Kuhlmann for assistance in using P04 and FL24, respectively. Beamtimes were allocated for proposals F-20150009, F-20171103, I-20180927, I-20190534, and I-20221192. We also acknowledge members of the MS SPIDOC consortium, the Uetrecht group (Hao Yan) and collaborators, including at the Universität Greifswald (Paul Fischer, Gerrit Marx), the University of Hamburg (Henning Tidow), European XFEL (Joachim Schulz, Carsten Deiter, James Moore, Rita Graceffa, Matthäus Kitel) for their participation in the beamline experiments. Finally, we acknowledge all the funding agencies that made this project possible: J. C. K. K., A. K., St. B., C. C., J. C., T. D., K. H., K. L., Y. L., L.utz S., F. S., T. K., and C. U. acknowledge the funding of MS SPIDOC by the European Union's Horizon 2020 research and innovation program (grant agreement no. 801406). K. S.-K., K. K., and C. U. acknowledge the funding of ERC SPOCk’S MS by the ERC (grant agreement no. 759661). C. U. acknowledges the funding of PIER Ideenfonds from DESY and the University of Hamburg. Leibniz Institute for Experimental Virology is supported by the Free and Hanseatic City of Hamburg and the German Federal Ministry of Health. J. C. K. K., C. C., T. D., and C. U. acknowledge support from a Röntgen Ångström Cluster grant provided by the Swedish Research Council and the Bundesministerium für Bildung und Forschung (2021-05988, 05K22PSA). A. K. gratefully acknowledges an Alexander von Humboldt postdoctoral fellowship (1196583-HFST-P). C. U., A. K., and Lutz S. further acknowledge funding through Bundesministerium für Bildung und Forschung (BMBF) 05K2016 VISAVIX (05K16HG1, 05K16BH1). Sa. B. and Lucas S. acknowledge funding by the Helmholtz Initiative and Networking Fund and Sa. B. acknowledges further support by the Cluster of Excellence ‘CUI: Advanced Imaging of Matter’ of the Deutsche Forschungsgemeinschaft (DFG) – EXC 2056 – project ID 390715994. C. C. and P. H. W. S. acknowledge support from the Swedish Research Council through projects 2021-05988 and 2018-00740. C. C. acknowledges support from the Helmholtz Association through the Center for Free-Electron Laser Science at DESY. S. D. and C. U. acknowledge funding from VirMScan, provided by the Bundesministerium für Bildung und Forschung (BMBF 13GW0622). L. F. was funded by the Promotion of young CSSB scientists’ program by the Joachim Herz Foundation. F. T. acknowledges funding by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) – Project 509471550, Emmy Noether Programme.
| Träger | Trägernummer |
|---|---|
| Universität Hamburg | |
| Free and Hanseatic City of Hamburg | |
| Helmholtz Initiative and Networking Fund | |
| Joachim Herz Stiftung | |
| Deutsches Elektronen-Synchrotron | |
| Bundesministerium für Gesundheit | |
| Uetrecht group | |
| Vetenskapsrådet | |
| Helmholtz Association | I-20180927, F-20150009, F-20171103, I-20221192, I-20190534, 13GW0622 |
| Horizon 2020 Framework Programme | 801406 |
| European Research Council | 759661 |
| Deutsche Forschungsgemeinschaft | 509471550, 2018-00740, 390715994 |
| Alexander von Humboldt Stiftung | 05K16BH1, 05K2016, 05K16HG1, 1196583-HFST-P |
| Bundesministerium für Bildung und Forschung | 2021-05988, 05K22PSA |
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