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Wright, G. S.

Publications and source records attributed to Wright, G. S..

4 recordsLinked to original sources

Synonymous codon substitutions regulate transcription and translation of an upstream gene

Synonymous codons were originally viewed as interchangeable with no phenotypic consequences. However, over the years a substantial body of evidence has demonstrated that some synonymous substitutions can perturb a variety of gene expression and protein homeostasis mechanisms, including translational efficiency, translational fidelity and co-translational folding of the encoded protein. To date, synonymous codon-derived perturbations have largely focused on effects within a single gene. Here we show that synonymous codon substitutions made far within an E. coli plasmid-encoded protein coding sequence frequently led to significant upregulation of a neighboring, upstream gene. Notably, in four out of nine synonymously recoded sequences, significant upregulation of the upstream gene arose due to cryptic transcription of the anti-sense strand. Surprisingly, cryptic transcription of the upstream gene readily bypassed its native transcriptional repression mechanism. Even more surprisingly, translation of this upstream gene correlates closely with the subset of its mRNA transcribed from the cryptic internal promoter, rather than its total mRNA level. These results suggest that synonymous codons in bacteria may be under selection to both preserve the amino acid sequence of the encoded gene while also avoiding internal sequence elements that significantly perturb transcriptional and translational regulation of neighboring genes.

molecular biology↗

Mining the human gut microbiome identifies mycobacterial D-arabinan degrading enzymes

Division and degradation of bacterial cell walls requires coordinated action of a myriad of enzymes. This particularly applies to the elaborate cell walls of acid-fast organisms such as Mycobacterium tuberculosis, which consist of a multi-layered cell wall that contains an unusual glycan called arabinogalactan. Enzymes that cleave the O_SCPLOWDC_SCPLOW-arabinan core of this structure have not previously been identified in any organism. We have interrogated the diverse carbohydrate degrading enzymes expressed by the human gut microbiota and uncovered four families of glycoside hydrolases with the capability to degrade the O_SCPLOWDC_SCPLOW-arabinan or O_SCPLOWDC_SCPLOW-galactan components of arabinogalactan. Using novel exo-O_SCPLOWDC_SCPLOW-galactofuranosidases from gut bacteria we generated enriched O_SCPLOWDC_SCPLOW-arabinan and used it to identify D. gadei as a D-arabinan degrader. This enabled the discovery of endo- and exo-acting enzymes that cleave D-arabinan. We have identified new members of the DUF2961 family (GH172), and a novel family of glycoside hydrolases (DUF4185) that display endo-O_SCPLOWDC_SCPLOW-arabinofuranase activity. The DUF4185 enzymes are conserved in mycobacteria and found in many microbes, suggesting that the ability to degrade mycobacterial glycans plays an important role in the biology of diverse organisms. All mycobacteria encode two conserved endo-O_SCPLOWDC_SCPLOW-arabinanases that display different preferences for the O_SCPLOWDC_SCPLOW-arabinan-containing cell wall components arabinogalactan and lipoarabinomannan, suggesting they are important for cell wall modification and/or degradation. The discovery of these enzymes will support future studies into the structure and function of the mycobacterial cell wall.

biochemistry↗

Sulfated host glycan recognition by carbohydrate sulfatases of the human gut microbiota

The vast microbial community that resides in the human colon, termed the human gut microbiota, performs important roles in maintaining host health. Sulfated host glycans comprise both a major nutrient source and important colonisation factors for this community. Carbohydrate sulfatases remove sulfate groups from glycans and are essential in many bacteria for the utilisation of sulfated host glycans. Additionally, carbohydrate sulfatases are also implicated in numerous host diseases, but remain some of the most understudied carbohydrate active enzymes to date, especially at the structural and molecular level. In this work, we analyse 7 carbohydrate sulfatases, spanning 4 subfamilies, from the human gut symbiont Bacteroides thetaiotaomicron, a major utiliser of sulfated host glycans, correlating structural and functional data with phylogenetic and environmental analyses. Together, these data begin to fill the knowledge gaps in how carbohydrate sulfatases orchestrate sulfated glycan metabolism within their environment.

biochemistry↗

A copper chaperone-mimetic polytherapy for SOD1-associated amyotrophic lateral sclerosis

Amyotrophic lateral sclerosis (ALS)-associated mutations in Cu/Zn superoxide dismutase (SOD1) reduce folding stability, resulting in misfolding, aggregation, and ultimately cellular toxicity. A great deal of effort has focused on preventing the misfolding and aggregation of SOD1 as a potential therapy for ALS, however, the results have been mixed. Here, we utilise a small-molecule polytherapy of CuATSM and ebselen to mimic the metal delivery and disulfide bond promoting activity of SOD1s cellular chaperone, the copper chaperone for SOD1 (CCS). We find that polytherapy using CuATSM and ebselen is highly effective at reducing inclusion formation in a cell model of SOD1 aggregation, reduces mutant SOD1-associated cell death, and promotes effective maturation of SOD1 beyond either compound alone. Our data suggest that a polytherapy of CuATSM and ebselen may be an effective method of treating SOD1-associated ALS.

biochemistry↗