| Literature DB >> 32998383 |
Ryung Rae Kim1, Zheng Chen1, Timothy J Mann2, Karine Bastard1, Kieran F Scott2, W Bret Church1.
Abstract
Entities:
Keywords: BPB; COX; FLSYK; GIIA; KH064; LY311727; LY315920; LY333013; arachidonic acid cascade; c2; cancer; cyclooxygenase; inflammation; p-Bromophenacyl bromide; phospholipase A2; varespladib; varespladib methyl
Mesh:
Substances:
Year: 2020 PMID: 32998383 PMCID: PMC7583969 DOI: 10.3390/molecules25194459
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Classification of secretory phospholipases A2.
| Official Name | Alternate Names | Disulfides (Number) | Molecular Mass (kDA) | Catalytic Amino Acids |
|---|---|---|---|---|
| PLA2G1B | sPLA2–1B, G1B PLA2, pancreatic PLA2 | 7 | 13–15 | His/Asp |
| PLA2G2A | sPLA2-IIA, GIIA PLA2 | 7 | 13–15 | His/Asp |
| PLA2G2C | sPLA2-IIC, GIIC PLA2 | 8 | 15 | His/Asp |
| PLA2G2D | sPLA2-IID, GIID PLA2 | 7 | 14–15 | His/Asp |
| PLA2G2E | sPLA2-IIE, GIIE PLA2 | 7 | 14–15 | His/Asp |
| PLA2G2F | sPLA2-IIF, GIIF PLA2 | 7 | 16–17 | His/Asp |
| PLA2G3 | sPLA2-III, GIII PLA2 | 5 | Lizard/Bee: 15–18 | His/Asp |
| PLA2G5 | sPLA2-V, GV PLA2 | 6 | 14 | His/Asp |
| PLA2G10 | sPLA2-X, GX PLA2 | 8 | 14 | His/Asp |
| PLA2G12A | sPLA2-XIIA, GXIIA PLA2 | 7 | 19 | His/Asp |
| PLA2G12B | sPLA2-XIIB, GXIIB PLA2 | 7 | 19 | Leucine/Asp |
This table has been adapted from Schaloske and Dennis, 2006 [2] and Murakami and Lambeau, 2019 [3].
Figure 1Sequence alignments of seven human secreted phospholipases A2. Overall the locations of high conservation of sequence arising from the active site, the calcium binding and disulfide bond are evident. Highlighting occurs when there is identity for at least 4 of the sequences, with complete conservation among these proteins shown in red, except that all Cys are highlighted as yellow. Cys known to be involved in disulfide bonds are boxed. The other highlighted amino acids occur for four or more identities and are coloured according to amino acid type. Below the sequences is the secondary structure as observed in hGIIA (cerise; α-helices as cylinders and β-strands as arrows), and below again are key locations in the sequence indicated with triangles: catalytic His (green), catalytic Asp (orange), calcium binding loop (cyan). The location of the FLSYK is given with cyan triangles. The numbering shown is that of Renetseder et al. 1985 [4], which is universally used for hGIIA in this paper, but not guaranteed for the other entries. Figure created with ALINE [5].
Figure 2The three-dimensional structure of hGIIA in which the location of some of the functional and structural groups of hGIIA are depicted. The main chain is shown in cartoon style in cerise except for the cysteines in disulfide bonds (yellow), and the calcium binding loop (green) and calcium ions are also shown (green spheres). His48 and Asp99 with carbons in scarlet are the amino acids that constitute the catalytic dyad. The LY311727 inhibitor is also shown, with scarlet carbons and significantly transparent. Overall structure is native hGIIA (PDB ID 3U8B, 2.3 Å resolution [13]), and the LY311727 is superposed from PDB ID 3U8D (1.8 Å resolution) [13]. The region of the endogenous FLSYK sequence is shown in cyan on the cartoon. N and C represent the N- and C-termini, respectively. Figure created with PyMOL [14].
Figure 3Two models of catalytic mechanism of hGIIA are depicted: (A) In the triad model, the water molecule becomes activated by the adjacent histidine Nδ1 atom, and acts as a nucleophile to directly attack the carbonyl of the substrate; (B) In the calcium-coordinated oxyanion model, a second water molecule is linked to the Nδ1 atom through the adjacent water molecule and also coordinated to the calcium ion. The water molecule and the calcium ion polarise the carbonyl group to initiate the cleavage, and the activation energy required is lower than the triad model. Adapted from Berg et al. [18].
Figure 4hGIIA shown with space-filling surface: (A) The amino acids highlighted in cyan, and identified, form the entrance to the active site, and play a role in interfacial binding by making direct contact with the substrate. The interfacial binding surface (i-face) of hGIIA outside of the amino acids at the entrance to the active site are highlighted in orange; (B) Depiction of the electrostatic charge. The high basicity of the protein at the surface is shown by the dominance of blue (positive), over the red of acidity (negative). Confirmation of the non-polar, hydrophobic entrance in orange in the left image is the coincident white of neutrality. The dominance of positive charge is clear. The view 180° to this (not shown) has less negative charge again, but does clearly have both a localised hydrophobic patch at the top in the current view and a localised very positive patch relative to the surface shown at the left hand side region near the C-terminus (behind the right hand side in the views given). Figure used PDB ID 3U8B [13] and created with PyMOL using the Adaptive Poisson-Boltzman Solver for the electrostatics [14]. The orientation is the same as used for Figure 2.
Figure 5A simplified depiction of the arachidonic acid cascade where the green ellipses represent the enzymes and boxes represent the substrates and products associated with the pathway. The prostaglandins and thromboxane produced in the eicosanoid pathway are metabolites of cyclooxygenases (COXs) and highlighted in pink. The leukotrienes shown in orange are the metabolites of 5-lipoxygenase (5-LOX). Other metabolites produced by LOXs are shown in yellow.
Role of hGIIA in some cancers. Adapted from Brglez et al. 2014 [91].
| Cancer | Role | Effects In Vitro | Patient Outcome | Supporting Reference |
|---|---|---|---|---|
| Breast | Pro-tumorigenic | Unknown | Shorter patient survival | Brglez et al. 2014 [ |
| Colon | Pro/Anti-tumorigenic | Increased cell proliferation | Unknown | Avoranta et al. 2010 [ |
| Gastric | Anti-tumorigenic | Reduction in cell migration and invasiveness | Longer patient survival, less frequent metastasis | Wang et al. 2013 [ |
| Lung | Pro-tumorigenic | Increased cell proliferation, lower rates of apoptosis | Shorter patient survival | Yu et al. 2012 [ |
| Oesophageal | Pro-tumorigenic | Increased cell proliferation | Unknown | Menschikowski et al. 2013 [ |
| Prostate | Pro-tumorigenic | Increased cell proliferation | Shorter patient survival | Oleksowicz et al. 2012 [ |
Also see the extensive referencing in Table 1 of Brglez et al. 2014 [91].
Figure 6The active site and inhibitors bound from high-resolution crystal structures of hGIIA complexes. Amino acids are depicted if they are within 5 Å of any atom of either inhibitor or the catalytic Asp 99. In addition, contiguous elements of the representation of the main chain of 3 helices (transparent pink cartoon) are provided to aid in an orientation comparison with Figure 2. The carbons of the inhibitors and calcium are coloured mauve. The active site cavity opening is most obviously bounded by Leu2, His6, Ala18, Phe24 and Val31. The main chain of Cys29, Gly30 and Val31 have been removed from the foreground and, as a consequence, the coordination of the calcium by O(Gly 30) is not indicated in both structures or an N(Gly 30) interaction with a phosphonyl oxygen of the transition state analogue. (a) The transition state analogue (TSA) L-1-O-octyl-2-heptyl-phosphonyl-sn-glycero-3-phosphoethanolamine (PDB ID 1POE at 2.1 Å resolution [156]). The two hydrophobic chains of the TSA are relatively parallel, and this structure is the best understanding of the native substrate orientation at the active site channel. The end 3 carbons on the sn-1 chain were not determined, but nevertheless the sn-1 chain is in proximity to the Leu2, Gly30, Val31 and Tyr52, and the sn-2 with Phe5, Ala18, and Gly23; (b) The LY311727 (PDB ID 3U8D at 1.8 Å resolution [13]). The two views have been chosen to be similar. For LY311727 the hydrophobic interactions are provided by Leu2, Phe5, His6, Leu20 and Gly30. Figure was created with PyMOL [14].
Figure 7Several hGIIA inhibitors for which classification is known based on their functional mechanism of inhibition.