| Literature DB >> 31692476 |
Stefanie Freitag-Pohl1, Andrius Jasilionis2, Maria Håkansson3, L Anders Svensson3, Rebeka Kovačič3, Martin Welin3, Hildegard Watzlawick4, Lei Wang4, Josef Altenbuchner4, Magdalena Płotka5, Anna Karina Kaczorowska6, Tadeusz Kaczorowski5, Eva Nordberg Karlsson2, Salam Al-Karadaghi3, Björn Walse3, Arnthór Aevarsson7, Ehmke Pohl1.
Abstract
As part of the Virus-X Consortium that aims to identify and characterize novel proteins and enzymes from bacteriophages and archaeal viruEntities:
Keywords: Bacillus subtilis; Virus-X Consortium; XepA; YomS; lytic cassette proteins; lytic enzymes; prophage
Mesh:
Substances:
Year: 2019 PMID: 31692476 PMCID: PMC6834076 DOI: 10.1107/S2059798319013330
Source DB: PubMed Journal: Acta Crystallogr D Struct Biol ISSN: 2059-7983 Impact factor: 7.652
Figure 1Gene organization of the PBSX and SPβ prophage late operons in the area of the lytic systems (red) described. Whereas xepA in prophage PBSX is located in the direct vicinity of the lytic entity (xhlA, xhlB, xlyA), yomS in SPβ is further removed from the blyA, bhlA, bhlB region. The cassettes containing xkdV, xkdW, xkdX and yomR, yomQ, yomP encode structural tail proteins (purple). The xlyB gene is located further upstream in the PBSX genome.
Data-collection and refinement statistics
Values in parentheses are for the highest resolution shell.
| XepA (form I) | XepA (Tb derivative) | XepA (form II) | YomS | SeMet-YomS | |
|---|---|---|---|---|---|
| Data collection | |||||
| Beamline | I03, DLS | I04, DLS | I24, DLS | I04, DLS | P13, EMBL/DESY |
| Space group |
|
|
|
|
|
| Unit-cell parameters | |||||
|
| 85.81 | 91.34 | 90.61 | 107.00 | 107.83 |
|
| 106.47 | 126.62 | 126.03 | 52.16 | 49.57 |
|
| 158.84 | 152.02 | 151.46 | 106.74 | 100.88 |
| β (°) | 90 | 90 | 90 | 95.97 | 92.31 |
| Wavelength (Å) | 0.9795 | 1.649 | 0.9772 | 0.9795 | 0.9795 |
| Resolution (Å) | 29.8–2.12 (2.16–2.12) | 30–2.50 (2.56–2.50) | 96.9–1.88 (2.07–1.88) | 53.08–1.33 (1.36–1.33) | 48.33–2.00 (2.05–2.00) |
| No. of observations | 834395 (46330) | 1040740 (41768) | 1118622 (33451) | 662174 (49107) | 490568 (33696) |
|
| 0.148 (2.07) | 0.156 (2.60) | 0.080 (0.79) | 0.088 (1.40) | 0.098 (0.341) |
|
| 0.049 (0.676) | 0.053 (1.30) | 0.024 (0.319) | 0.044 (0.693) | 0.040 (0.141) |
| 〈 | 11.0 (1.2) | 14.1 (0.8) | 17.2 (1.8) | 9.8 (1.1) | 19.1 (7.4) |
| CC1/2 | 0.998 (0.513) | 0.999 (0.354) | 0.998 (0.683) | 0.998 (0.498) | 0.998 (0.981) |
| Completeness | 1.000 (1.000) | 0.999 (0.997) | 0.771 (0.213)/0.922 (0.616) | 0.999 (1.000) | 0.999 (0.985) |
| Multiplicity | 10.0 (10.2) | 16.9 (9.3) | 11.2 (6.7) | 4.9 (5.0) | 13.5 (12.8) |
| No. of heavy atoms | 5 Tb | 5 Se | |||
| Refinement | |||||
|
| 0.173/0.221 | 0.172/0.212 | 0.154/0.178 | ||
| No. of atoms | 10657 | 10842 | 4310 | ||
| Ligands | 6 glycerols | 11 glycerols, 22 acetates | None | ||
| No. of waters | 861 | 1026 | 851 | ||
| R.m.s.d., bonds (Å) | 0.013 | 0.007 | 0.016 | ||
| R.m.s.d., angles (°) | 1.68 | 1.43 | 1.90 | ||
| Ramachandran plot | |||||
| Favoured (%) | 98.1 | 97.1 | 98.7 | ||
| Allowed (%) | 100 | 99.2 | 99.2 | ||
R merge within (I +/I −).
Anomalous completeness.
Ellipsoidal/spherical completeness.
Summary of the cytotoxic activity of XepA, YomS, XlyA and XlyB on a selected range of bacterial cultures
Plaque zone: +++, >7 mm; ++, 4–7 mm; +, 1–4 mm; −, none.
| Species | HEWL | Control | XepA | YomS | XlyA | XlyB |
|---|---|---|---|---|---|---|
|
| +++ | − | ++ | − | + | ++ |
|
| ++ | − | + | − | − | ++ |
|
| +++ | − | + | − | − | ++ |
|
| − | − | ++ | − | ++ | +++ |
|
| − | − | ++ | − | − | ++ |
|
| +++ | − | − | − | − | − |
|
| − | − | − | − | − | − |
|
| +++ | − | + | − | − | ++ |
Gram-positive species.
Gram-negative species.
Figure 2Ribbon diagram of the XepA crystal structure. (a) The monomeric unit, which is shown in rainbow colours from blue (N-terminus) to red (C-terminus) with annotation of all strands, reveals two β-sandwich folds that are connected by a linker region. The truncated N-terminal domain (blue) and C-terminal domains (red) are depicted in a reoriented position with the Cα atoms used for least-squares superpositioning. (b) The β-sandwiches can be superimposed with an r.m.s.d. of 2.5 Å.
Figure 3Ribbon diagram of the crystal structure of the XepA pentamer (a) with each polypeptide chain depicted in a different colour shows a dumbbell-shaped structure in which two discs are connected by a linker region. (b) Top view of the N-terminal domain and bottom view of the C-terminal domain of the XepA pentamer.
Figure 4Least-squares superposition of the XepA pentamer in two crystal forms (form I in red and form II in orange). Only the C-terminal pentamer was used to calculate the transformation, which was then applied to the full pentamer. This operation reveals a domain shift that corresponds to a rotation of 2.1° of the N-terminal discs with respect to one another.
Figure 5Least-squares superpositions of the β-sandwich folds of XepA with the C2 domain of the α-toxin from C. perfringens (PDB entry 2wxt) in orange: (a) the N-terminal XepA domain in blue (r.m.s.d. on Cα atoms of 2.9 Å), (b) the C-terminal XepA domain in red (r.m.s.d. on Cα atoms of 3.0 Å).
Figure 6Ribbon diagram of the crystal structure of the YomS homopentamer. (a) Each polypeptide chain is depicted in a different colour. (b) Top view of the YomS pentamer and bottom view of the YomS pentamer.
Figure 7Ribbon diagrams of least-squares superpositions of (a) one YomS monomer (red) on the C-terminal domain of an XepA monomer (green; r.m.s.d. of 0.6 Å) and (b) the whole YomS pentamer (brown) on the XepA C-terminal pentameric disc (chains depicted in different colours; r.m.s.d. of 1.2 Å).
Figure 8Cytotoxicity of target enzymes. Bacterial plate assays of XepA, YomS, XlyA and XlyB. HEWL and HEPES buffer (20 mM, pH 7.4) were used as positive and negative controls, respectively. (a) B. megaterium ATCC 14581, (b) B. subtilis subsp. spizizenii ATCC 6633, (c) B. pumilus KPD 181, (d) B. thuringiensis KPD 114, (e) B. mycoides KPD 15, (f) M. luteus ATCC 4698, (g) E. coli MG 1655, (h) B. subtilis 168 DSM 23778. The activities of the following proteins were also tested: the YeaH protein of unknown function from B. subtilis and PGN hydrolase, a putative lytic enzyme from B. subtilis phage vB_BsuP-Goe1.
Figure 9Electrostatic surfaces of the XepA pentamer calculated using CCP4mg (McNicholas et al., 2011 ▸): red, −0.10 V e−1; white, 0.00 V e−1; blue, 0.10 V e−1. (a) View of the N-terminal disc, which is mostly positively charged. Acetate ions and glycerol molecules depicted in CPK representation (yellow) bind predominantly in the tube region. (b) View of the C-terminal disc, which shows a prevalently negatively charged surface.