| Literature DB >> 29098572 |
Cheng Xingxing1, Liu Jiuyang2, Zhang Huan1, Li Fudong2, Zhang Shuya2, Xu Min1, Ruan Ke3, Wang Yuhua4, Fu Aigen5.
Abstract
Proper biogenesis and maintenance of photosynthetic thylakoid membrane complexes are essential for the photosynthetic light reactions. A thylakoid lumenal protein, Psb27, plays a vital role in assembly or/and maintenance of photosystem II (PSII). In cyanobacteria, it is a small lipoprotein docked to the lumenal side of PSII, and functions in the assembly of the Mn4Ca cluster and in the PSII repair cycle. However, Psb27 from Arabidopsis thaliana is not a lipoprotein, and it is involved in PSII repair and acclimation to fluctuating light stress, suggesting a functional divergence between Arabidopsis Psb27 and cyanobacterial Psb27s. To gain a better understanding of Psb27 from higher plants, we determined the crystal structure of Arabidopsis Psb27 by X-ray crystallography at a resolution of 1.85 Å. The structure of Arabidopsis Psb27 is a four-helix bundle, similar to its orthologues from cyanobacteria. However, there are several structural differences between Arabidopsis Psb27 and cyanobacterial Psb27s concerning the overall molecular shape, the N- and C-terminal structures, and the surface charge. These differences suggest that Psb27 from higher plants and cyanobacteria may function differently.Entities:
Keywords: Arabidopsis; Assembly and repair; Crystal structure; Photosystem II; Psb27
Mesh:
Substances:
Year: 2017 PMID: 29098572 PMCID: PMC5895690 DOI: 10.1007/s11120-017-0450-3
Source DB: PubMed Journal: Photosynth Res ISSN: 0166-8595 Impact factor: 3.573
Fig. 1HSQC spectrum of AtPsb27 at pH 6.7. The 15N-labeled AtPsb27 was concentrated to 0.2 mM, and the HSQC spectrum was recorded in a buffer containing 20 mM sodium phosphate, 250 mM NaCl, 2.5 m M DTT, 2.5 mM Na2EDTA, and 0.002% NaN3 at pH 6.7
X-ray crystal data collection and refinement statistics of AtPsb27
| PDB ID | 5 × 56 |
|---|---|
| Data collection | |
| Space group | C 1 2 1 |
| Cell dimensions | |
| a, b, c (Å) | 86.26, 62.40, 38.96 |
| α, β, γ (°) | 90.00, 112.63, 90.00 |
| Wavelength(Å) | 0.979 |
| Resolution (Å) | 39.81–1.85 |
| Completeness (%) | 98.8(98.5) |
| Redundancy | 4.9(4.9) |
| | 7.9(57.0) |
| | 11.6(2.9) |
| Refinement | |
| No. reflections used/free | 16,080/752 |
| | 21.3/26.1 |
| R.m.s. deviations | |
| Bondslengths (Å) | 0.007 |
| Bond angles (°) | 0.796 |
| | |
| Protein | 31.55 |
| Water | 32.01 |
| No. atoms | |
| Protein | 1595 |
| Water | 49 |
| Ramachandran plot | |
| Favored/allowed/outlier(%) | 99.5/0.5/0.0 |
*Values in parentheses are for highest-resolution shell
Fig. 2Crystal structure of AtPsb27 (PDB 5 × 56). a Ribbon model, b backbone model. The structure was obtained by molecular replacement and visualized using PyMol. Alpha helices are indicated as H1–H4 and H*. Both models are colored in rainbow (from blue N-terminus to red C-terminus)
Fig. 3Comparison of AtPsb27 and TePsb27. a Sequence alignment of AtPsb27 and TePsb27. The mature sequence of AtPsb27 and the full length sequence of TePsb27 were aligned with ClustalW2 program. The lipobox in the full length TePsb27 is boxed with blue line. The α-helices of Psb27 are underlined in red, and residues are numbered according to the mature sequences. b Alignment of the backbone structures of AtPsb27 (magenta) and TePsb27 (green) in the ribbon model. c, d Comparison of surface charge distributions between AtPsb27 and TePsb27. The range of surface charge is shown from − 80 kT/e (red) to + 80 kT/e (blue).The corresponding ribbon models of AtPsb27 are shown at the top. c Front view (left) and back view (right). d Top view (left) and bottom view (right)