Back

Proton egress pathway during the S1 to S2 transition of the Oxygen Evolving Complex ofPhotosystem II

Kaur, D.; Zhang, Y.; Reiss, K. M.; Mandal, M.; Brudvig, G. W.; Batista, V. S.; Gunner, M. R.

2021-01-31 biophysics
10.1101/2021.01.29.428861 bioRxiv
Show abstract

Photosystem II uses water as the ultimate electron source of the photosynthetic electron transfer chain. Water is oxidized to dioxygen at the Oxygen Evolving Complex (OEC), a Mn4CaO5 inorganic core embedded in the lumenal side of PSII. Water-filled channels are thought to bring in substrate water molecules to the OEC, remove the substrate protons to the lumen, and may transport the product oxygen. Three water-filled channels, denoted large, narrow, and broad, that extend from the OEC towards the aqueous surface more than 15 [A] away are seen. However, the actual mechanisms of water supply to the OEC, the removal of protons to the lumen and diffusion of oxygen away from the OEC have yet to be established. Here, we combine Molecular Dynamics (MD), Multi Conformation Continuum Electrostatics (MCCE) and Network Analysis to compare and contrast the three potential proton transfer paths during the S1 to S2 transition of the OEC. Hydrogen bond network analysis shows that the three channels are highly interconnected with similar energetics for hydronium as calculated for all paths near the OEC. The channels diverge as they approach the lumen, with the water chain in the broad channel better interconnected that in the narrow and large channels, where disruptions in the network are observed at about 10 [A] from the OEC. In addition, the barrier for hydronium translocation is lower in the broad channel, suggesting that a proton from the OEC could access the paths near the OEC, and likely exit to the lumen via the broad channel, passing through PsbO.

Matching journals

The top 4 journals account for 50% of the predicted probability mass.

1
Photosynthesis Research
15 papers in training set
Top 0.1%
18.5%
2
Biochimica et Biophysica Acta (BBA) - Bioenergetics
17 papers in training set
Top 0.1%
14.6%
3
The Journal of Physical Chemistry B
158 papers in training set
Top 0.1%
12.2%
4
Physical Chemistry Chemical Physics
34 papers in training set
Top 0.1%
10.0%
50% of probability mass above
5
The Journal of Physical Chemistry Letters
58 papers in training set
Top 0.1%
8.3%
6
Journal of Chemical Information and Modeling
207 papers in training set
Top 1%
4.8%
7
Biophysical Journal
545 papers in training set
Top 1%
4.1%
8
Plant Physiology
217 papers in training set
Top 2%
1.8%
9
PLOS Computational Biology
1633 papers in training set
Top 19%
1.3%
10
Biochemistry
130 papers in training set
Top 1%
1.3%
11
Communications Biology
886 papers in training set
Top 15%
1.2%
12
Scientific Reports
3102 papers in training set
Top 67%
1.2%
13
eLife
5422 papers in training set
Top 50%
1.1%
14
Proteins: Structure, Function, and Bioinformatics
82 papers in training set
Top 0.7%
1.1%
15
Proceedings of the National Academy of Sciences
2130 papers in training set
Top 40%
0.9%
16
New Phytologist
309 papers in training set
Top 4%
0.9%
17
Biophysics and Physicobiology
10 papers in training set
Top 0.1%
0.9%
18
Journal of Experimental Botany
195 papers in training set
Top 2%
0.9%
19
PLOS ONE
4510 papers in training set
Top 64%
0.9%
20
Nature Communications
4913 papers in training set
Top 61%
0.8%
21
Journal of the American Chemical Society
199 papers in training set
Top 5%
0.7%
22
Chemical Communications
24 papers in training set
Top 1%
0.7%
23
Frontiers in Molecular Biosciences
100 papers in training set
Top 6%
0.6%
24
Plant, Cell & Environment
78 papers in training set
Top 1%
0.6%