TY - JOUR
T1 - Effects of x-ray free-electron laser pulse intensity on the Mn K β 1,3x-ray emission spectrum in photosystem II - A case study for metalloprotein crystals and solutions
AU - Fransson, Thomas
AU - Alonso-Mori, Roberto
AU - Chatterjee, Ruchira
AU - Cheah, Mun Hon
AU - Ibrahim, Mohamed
AU - Hussein, Rana
AU - Zhang, Miao
AU - Fuller, Franklin
AU - Gul, Sheraz
AU - Kim, In Sik
AU - Simon, Philipp S.
AU - Bogacz, Isabel
AU - Makita, Hiroki
AU - De Lichtenberg, Casper
AU - Song, Sanghoon
AU - Batyuk, Alexander
AU - Sokaras, Dimosthenis
AU - Massad, Ramzi
AU - Doyle, Margaret
AU - Britz, Alexander
AU - Weninger, Clemens
AU - Zouni, Athina
AU - Messinger, Johannes
AU - Yachandra, Vittal K.
AU - Yano, Junko
AU - Kern, Jan
AU - Bergmann, Uwe
N1 - Publisher Copyright:
© 2021 Author(s).
PY - 2021/11/1
Y1 - 2021/11/1
N2 - In the last ten years, x-ray free-electron lasers (XFELs) have been successfully employed to characterize metalloproteins at room temperature using various techniques including x-ray diffraction, scattering, and spectroscopy. The approach has been to outrun the radiation damage by using femtosecond (fs) x-ray pulses. An example of an important and damage sensitive active metal center is the Mn4CaO5 cluster in photosystem II (PS II), the catalytic site of photosynthetic water oxidation. The combination of serial femtosecond x-ray crystallography and Kβ x-ray emission spectroscopy (XES) has proven to be a powerful multimodal approach for simultaneously probing the overall protein structure and the electronic state of the Mn4CaO5 cluster throughout the catalytic (Kok) cycle. As the observed spectral changes in the Mn4CaO5 cluster are very subtle, it is critical to consider the potential effects of the intense XFEL pulses on the Kβ XES signal. We report here a systematic study of the effects of XFEL peak power, beam focus, and dose on the Mn Kβ1,3 XES spectra in PS II over a wide range of pulse parameters collected over seven different experimental runs using both microcrystal and solution PS II samples. Our findings show that for beam intensities ranging from ∼5 × 1015 to 5 × 1017 W/cm2 at a pulse length of ∼35 fs, the spectral effects are small compared to those observed between S-states in the Kok cycle. Our results provide a benchmark for other XFEL-based XES studies on metalloproteins, confirming the viability of this approach.
AB - In the last ten years, x-ray free-electron lasers (XFELs) have been successfully employed to characterize metalloproteins at room temperature using various techniques including x-ray diffraction, scattering, and spectroscopy. The approach has been to outrun the radiation damage by using femtosecond (fs) x-ray pulses. An example of an important and damage sensitive active metal center is the Mn4CaO5 cluster in photosystem II (PS II), the catalytic site of photosynthetic water oxidation. The combination of serial femtosecond x-ray crystallography and Kβ x-ray emission spectroscopy (XES) has proven to be a powerful multimodal approach for simultaneously probing the overall protein structure and the electronic state of the Mn4CaO5 cluster throughout the catalytic (Kok) cycle. As the observed spectral changes in the Mn4CaO5 cluster are very subtle, it is critical to consider the potential effects of the intense XFEL pulses on the Kβ XES signal. We report here a systematic study of the effects of XFEL peak power, beam focus, and dose on the Mn Kβ1,3 XES spectra in PS II over a wide range of pulse parameters collected over seven different experimental runs using both microcrystal and solution PS II samples. Our findings show that for beam intensities ranging from ∼5 × 1015 to 5 × 1017 W/cm2 at a pulse length of ∼35 fs, the spectral effects are small compared to those observed between S-states in the Kok cycle. Our results provide a benchmark for other XFEL-based XES studies on metalloproteins, confirming the viability of this approach.
U2 - 10.1063/4.0000130
DO - 10.1063/4.0000130
M3 - Article
C2 - 34849380
AN - SCOPUS:85120068938
SN - 2329-7778
VL - 8
JO - Structural Dynamics
JF - Structural Dynamics
IS - 6
M1 - 064302
ER -