| Literature DB >> 23519417 |
Hyoun Sook Kim1, Jieun Kim, Ha Na Im, Ji Young Yoon, Doo Ri An, Hye Jin Yoon, Jin Young Kim, Hye Kyeoung Min, Soon-Jong Kim, Jae Young Lee, Byung Woo Han, Se Won Suh.
Abstract
Difficulty in the treatment of tuberculosis and growing drug resistance inEntities:
Keywords: LdtMt2; Mt2594; Mycobacterium tuberculosis; Rv2518c; antituberculosis drug discovery; carbapenem; l,d-transpeptidases; meropenem; peptidoglycans
Mesh:
Substances:
Year: 2013 PMID: 23519417 PMCID: PMC3605043 DOI: 10.1107/S0907444912048998
Source DB: PubMed Journal: Acta Crystallogr D Biol Crystallogr ISSN: 0907-4449
Data-collection and refinement statistics
Values in parentheses are for the highest resolution shell.
| Data set | Apo form | Hg derivative (peak) | Meropenem complex |
|---|---|---|---|
| Data collection | |||
| Space group |
|
|
|
| Unit-cell parameters | |||
|
| 135.6 | 135.7 | 68.9 |
|
| 58.6 | 58.4 | 73.4 |
|
| 40.9 | 41.0 | 104.1 |
| α = γ (°) | 90.0 | 90.0 | 90.0 |
| β (°) | 94.4 | 94.3 | 90.0 |
| X-ray wavelength (Å) | 1.00000 | 1.00600 | 1.00000 |
| Resolution range (Å) | 20.0–1.80 (1.83–1.80) | 50.0–1.79 (1.82–1.79) | 50.0–2.00 (2.03–2.00) |
| Total No. of reflections | 114133 (3344) | 218163 (7927) | 254969 (11833) |
| No. of unique reflections | 29426 (1045) | 58915 (2557) | 34693 (1621) |
| Completeness (%) | 97.9 (70.4) | 99.3 (86.8) | 95.5 (91.2) |
| 〈 | 46.5 (9.1) | 43.0 (7.4) | 31.0 (4.3) |
|
| 4.6 (14.4) | 4.6 (14.9) | 12.8 (89.1) |
| SAD phasing | |||
| Figure of merit (before/after density modification) | 0.41/0.60 | ||
| Model refinement | |||
| PDB code |
|
|
|
| Resolution range (Å) | 20.0–1.80 | 20.0–1.79 | 20.0–2.00 |
|
| 19.7/23.3 | 19.6/22.6 | 18.9/23.2 |
| No. of non-H atoms/average | |||
| Protein | 1889/23.5 | 2014/23.1 | 4112/26.4 |
| Water oxygen | 206/32.9 | 230/36.3 | 228/33.0 |
| Meropenem | — | — | 52/65.5 |
| EMTS | — | 11/38.0 | — |
| Glycerol | 6/53.3 | 12/44.1 | — |
| Calcium ion | 1/65.2 | — | — |
| Wilson | 21.9 | 20.4 | 23.5 |
| R.m.s. deviations from ideal geometry | |||
| Bond lengths (Å) | 0.009 | 0.007 | 0.010 |
| Bond angles (°) | 1.29 | 1.15 | 1.40 |
| R.m.s. | |||
| Bond lengths | 0.450 | 0.335 | 0.491 |
| Bond angles | 0.590 | 0.512 | 0.622 |
| Ramachandran plot | |||
| Favoured/outliers | 98.8/0.0 | 98.5/0.0 | 97.9/0.2 |
| Poor rotamers | 1.00 | 0.47 | 0.91 |
Friedel pairs were treated as separate observations.
R merge = , where I(hkl) is the intensity of reflection hkl, is the sum over all reflections and is the sum over i measurements of reflection hkl.
R work = , where R free is calculated for a randomly chosen 5% of reflections which were not used for structure refinement and R work is calculated for the remaining reflections.
Values obtained using REFMAC.
Values obtained using MolProbity.
Figure 1Overall structure of LdtMt2Δ130. (a) Ribbon diagram of meropenem-complexed LdtMt2Δ130. The NTD and the Ldt domain are shown in green and yellow, respectively. The active-site lid (His300–Asp323) and the C-terminal tail (Asn379–Ala408) are coloured red and blue, respectively. Meropenem bound to the Ldt domain is shown as a stick model. (b) Domains of Mtb LdtMt2 coloured as in (a). TM, transmembrane helix. (c) Topology diagram of LdtMt2Δ130 coloured as in (a). (d) Electrostatic surface diagram of meropenem-complexed LdtMt2Δ130. Blue and red indicate positive and negative electrostatic potentials at neutral pH, respectively.
Figure 2Structural comparisons and domain interactions in LdtMt2Δ130. (a) A superposition of the four chains in the three LdtMt2Δ130 models and a plot of the Cα r.m.s. deviations between any pair of chains averaged over the six pairwise comparisons. The apo, mercury-derivatized and meropenem-complexed LdtMt2 (chains A and B) are coloured orange, magenta, yellow and blue, respectively. (b) Interactions between the C-terminal tail and two domains coloured as in Fig. 1 ▶(a). The enlarged views on the left have slightly different orientations in order to show the detailed interactions better.
Figure 3Big_5 domain of Ldtc Mt2. (a) Topology diagrams of the Big_5 domain (His150–Gly250) of LdtMt2Δ130 (inset) and of four distinct subtypes of the Ig-like fold (modified from Bork et al., 1994 ▶): c-type (constant), v-type (variable), s-type (switched) and h-type (hybrid). The four-stranded structural core (strands b, c, e, and f; β2, β3, β5 and β6 of LdtMt2Δ130) common to all Ig-like domains (orange) is surrounded by structurally more variable strands (green). (b, c) Ribbon diagrams of the Big_5 domain (His150–Gly250) in the apo model of LdtMt2Δ130 (b) and meropenem-complexed LdtMt2Δ130 (c), and enlarged views of the β6–β7 loop (insets) coloured as in (a). The bound calcium ion and the residues around it (Asp232–Met237) are shown as a purple ball and as stick models, respectively, with a 2mF o − DF electron-density map (contoured at 1.5σ).
Figure 4The active site of the Ldt domain and the substrate-binding sites. (a) Active-site superposition of the apo (orange), mercury-derivatized (magenta) and meropenem-complexed (chain B, cyan) LdtMt2Δ130. Dotted lines denote interactions: hydrogen bonds to the catalytic triad (red) and the oxyanion hole (green), Ser351 with the oxyanion hole (black), His336 with Asn356 (black) and His352 with Cys354 Sγ and the main-chain carbonyl O atom of His352 in the mercury-derivatized model (purple). The covalently bound meropenem adduct in the meropenem complex is shown as a stick model. (b) Active-site superposition of meropenem-complexed LdtMt2 (chain B, cyan), LdtBs (green) and Ldtfm (grey) in the same view as in (a). (c, d) Electrostatic surface representations of the predicted binding sites for the donor substrate in the open conformation of mercury-derivatized LdtMt2Δ130 (c) and the acceptor substrate in the closed conformation of meropenem-complexed LdtMt2Δ130 (d) coloured as in Fig. 1 ▶(d). The surfaces of the binding site are represented with constituent residues as stick models. The movement of the imidazole ring of His352 in the apo form (orange) and the mercury-derivatized form (magenta) is presented in stick models with dotted surfaces in (c). The peptide bond of the donor substrate (meso-DAP3-d-Ala4) is schematically modelled into the active site in the open conformation. The terminus of the acceptor substrate (meso-DAP3) is schematically modelled into the active site in the closed conformation, with red dotted lines depicting a plausible site for recognizing the terminal amine of meso-DAP3.
Figure 5Conformational flexibility of the active-site lid in LdtMt2Δ130. (a, b) Three different views of the electrostatic potential surface diagrams of mercury-derivatized (a) and meropenem-complexed LdtMt2Δ130 (b). The closed conformation of the active-site lid in (b) reveals that meropem attached to catalytic Cys354 is accessible through three narrow paths (Paths A, B and C). (c) The active-site lids in meropenem-complexed (cyan) and mercury-derivatized (magenta) LdtMt2Δ130 are shown as ribbon models with the surface of the meropenem complex. Residues that show large shifts upon lid closure are shown as stick models; the movement is indicated by black dotted arrows. The two models are in the same orientation.
Figure 6Meropenem-inactivated LdtMt2Δ130. (a) Electron-density map (left) and a schematic diagram of interactions (right) of the covalently bound meropenem adduct with Cys354 in meropenem-complexed LdtMt2Δ130 (chain B). The OMIT mF o − DF c map (contoured at 2.5σ) for meropenem and the 2mF o − DF c map (contoured at 1.0σ) for Cys354 are coloured blue and yellow, respectively. Dotted lines denote interactions with LdtMt2Δ130 and the corresponding bond lengths are shown in Å. Variable regions (R 1, R 2 and R 3) of carbapenems are shaded in green, blue and red, respectively. (b) Interactions of the bound meropenem with Tyr318 (left) and Tyr308 (right). Dotted lines and the electron-density map are presented as in (a). (c) Surface representation (left) and ribbon diagram (right) of the active site of LdtMt2Δ130 enclosing the meropenem adduct viewed along Path B. The β14–β15 loop, the β15–β16 loop and the active-site lid, which surround the bound meropenem, are coloured plum, orange and green, respectively. (d) Surface representation (left) and ribbon diagram (right) of the active site in the meropenem-complexed LdtMt2Δ130 viewed along Path A presented as in (c).