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Allison, J. R.

Publications and source records attributed to Allison, J. R..

4 recordsLinked to original sources

On the function of TRAP substrate-binding proteins: conformational variation of the sialic acid binding protein SiaP

Tripartite ATP-independent periplasmic (TRAP) transporters are analogous to ABC transporters in that they use a substrate-binding proteins to scavenge metabolites (e.g., N-acetylneuraminate) and deliver them to the membrane components for import. TRAP substrate-binding proteins are thought to bind the substrate using a two-state (open and closed) induced-fit mechanism. We solved the structure of the TRAP N-acetylneuraminate substrate-binding protein from Aggregatibacter actinomycetemcomitans (AaSiaP) in both the open ligand-free and closed liganded conformations. Surprisingly, we also observed an intermediate conformation, where AaSiaP is mostly closed and is bound to a non-cognate ligand, acetate, which hints at how N-acetylneuraminate binding stabilises a fully closed state. AaSiaP preferentially binds N-acetylneuraminate (KD = 0.4 {micro}M) compared to N-glycolylneuraminate (KD = 4.4 {micro}M), which is explained by the closed-N-acetylneuraminate bound structure. Small-angle X-ray scattering data alongside molecular dynamics simulations suggest the AaSiaP adopts a more open state in solution than in crystal. However, the open unliganded conformation can also sample closed conformations. Molecular dynamics simulations also demonstrate the importance of water molecules for stabilising the closed conformation. Although our data is consistent with an induced fit model of binding, it is likely that the open unliganded conformation encompasses multiple states capable of binding substrate. The mechanism by which the ligand is released for import remains to be determined.

biochemistry↗

De-glycosylated non-structural protein 1 enhances dengue virus clearance by limiting PD-L1/PD-1 mediated T cell apoptosis

The non-structural protein 1 (NS1) of dengue virus (DENV) contains two highly conserved N-glycosylation sites at positions 130 and 207 (N130 and N207). Intracellular NS1 monomers and homo-dimers participate in viral RNA replication within membrane-bound replication complexes. Soluble multimeric NS1 (sNS1) is secreted into the extracellular milieu and represents an important virulence factor for DENV through its ability to interfere with the host complement activation cascade and to induce vascular leakage. The role of the two N-glycans in NS1 biological activities, however, has not been carefully examined. Here, stable DENV2 mutants that lack glycan at either N sites of NS1 were engineered. We showed that the lack of glycans at either N site of NS1 did not impair viral replication nor viral output in both mosquito and mammalian cell lines. In contrast, while N130 de-glycosylated DENV displayed parental in vivo fitness in IFNAR-/- mice, the N207 de-glycosylated mutant was significantly attenuated as evidenced by 100% survival rate, which correlated with accelerated viral clearance in circulation. sNS1-depletion, sNS1 exogenous administration and co-infection experiments supported that N207 de-glycosylated NS1 exerted a dominant attenuating effect during in vivo infection. Bulk RNAseq, inflammatory cytokine profile, immune phenotyping of neutrophils and T cells, immune cell depletion and immune checkpoint blockade approaches led us to propose that N207 de-glycosylated NS1 limited CD8+ T cell apoptosis mediated by the PD-L1/PD-1 axis, thereby improving viral clearance efficacy. This work uncovers a novel immune evasion strategy where N207 glycans on NS1 prevent the protein from exerting immune modulation activity that would be detrimental to DENV.

microbiology↗

Structome: Exploring the structural neighbourhood of proteins

Protein structures carry signal of common ancestry and can therefore aid in reconstructing their evolutionary histories. To expedite the structure-informed inference process, a web server, Structome, has been developed, that allows users to rapidly identify protein structures similar to a query protein and to assemble datasets useful for structure-based phylogenetics. Structome was created by clustering[~] 94% of the structures in RCSB PDB using 90% sequence identity and representing each cluster by a centroid structure. Structure similarity between centroid proteins was calculated, and annotations from PDB, SCOP and CATH were integrated. To illustrate utility, an H3 histone was used as a query, and results show that the protein structures returned by Structome span both sequence and structural diversity of the histone fold. Additionally, the pre-computed nexus-formated distance matrix, provided by Structome, enables analysis of evolutionary relationships between proteins not identifiable using searches based on sequence similarity alone. Our results demonstrate that, beginning with a single structure, Structome can be used to rapidly generate a dataset of structural neighbours and allows deep evolutionary history of proteins to be studied. Structome is available at: https://structome.bii.a-star.edu.sg

bioinformatics↗

Structure and mechanism of the tripartite ATP-independent periplasmic (TRAP) transporter

In bacteria and archaea, tripartite ATP-independent periplasmic (TRAP) transporters uptake essential carboxylate- and sulfonate-containing nutrients into the cytoplasm. Unlike other secondary active transporters, TRAP transporters cannot receive their substrates directly, but do so indirectly via a secreted soluble substrate-binding protein. How a sodium-driven secondary active transporter is strictly coupled to a passenger-carrying substrate-binding domain is poorly understood. Here, we report the cryo-EM structure of the sialic acid TRAP transporter SiaQM from Photobacterium profundum at 2.97 [A] resolution. SiaM has 12-TMs that come together to form a "transport" domain and a "scaffold" domain, with the transport domain consisting of helical hairpins as seen in the sodium-coupled elevator transporter VcINDY. Interestingly, the SiaQ protein forms intimate contacts with SiaM to extend the size of the scaffold domain, indicating TRAP transporters may operate as monomers, rather than the typically observed oligomers. We have identified the Na+ and sialic acid binding sites in SiaM and confirmed a strict dependence on the substrate-binding protein SiaP for uptake. We have determined the SiaP crystal structure that, together with co-evolution driven docking studies, provides a molecular basis for how sialic acid is delivered to the SiaQM transporter complex. We conclude that TRAP proteins are conceptually a marriage between an ABC importer and a secondary active transporter, which we describe herein as an elevator-with-an-operator mechanism.

molecular biology↗