Search bioRxiv⌕ Search

Biology subjects

Knox, H. L.

Publications and source records attributed to Knox, H. L..

4 recordsLinked to original sources

Glycoconjugate diversification in Campylobacter concisus is determined by two glycosyltransferases

Bacterial glycoconjugates are structurally diverse, with enormous variation in sugar identity, modifications and linkages. Glycoconjugates play key roles in numerous cell functions, acting as the primary interface with the environment. Asparagine (N)-linked glycosylation has been extensively studied in the pathogenic Campylobacter genus, due to the availability of numerous genome sequences and the highly conserved pathway logic, despite the final N-linked glycan product diversity. We recently reported on a partitioning of N-linked glycan structures between the Campylobacter species, focused on the inclusion of a C6-carboxyl-sugar in the third position of the growing glycan in Campylobacter concisus. However, at the time, the final glycan was not fully defined. Here, we identify the final glycan product in C. concisus, demonstrating surprising substrate promiscuity of the GT-A enzyme, PglI, which adds the penultimate sugar, and uncover a previously uncharacterized enzyme (GT-25) that unexpectedly adds the final sugar to complete the heptasaccharide product. Through a detailed study of these two C. concisus pathway enzymes, the intermediate and final glycans were defined, with determination of linkage positions of major and minor isomeric products following each glycan addition, through high-resolution electronic excitation dissociation tandem mass spectrometry. These findings on the Group II C. concisus N-linked glycan highlight the diversification of the glycan and the utilization, at the non-reducing end, of GlcNAc over GalNAc, which is dominant in the Group I species.

biochemistry↗

Structural and Spectroscopic Basis for Catalysis by a Class C Radical S-adenosylmethionine Methylase Involved in Nosiheptide/Nocathiacin Biosynthesis

Nosiheptide (NOS) is a ribosomally synthesized and post-translationally modified peptide (RiPP) natural product that exhibits potent antibiotic activity against multiple bacterial pathogens. NOS features a core macrocyclic peptide containing thiazoles, dehydrated serine and threonine residues, and a 3-hydroxypyridine ring. In addition to the macrocycle, NOS possesses a side-ring system formed by a 3-methyl-2-indolic acid (MIA) bridge that connects to glutamyl and cysteinyl residues on the core peptide via ester and thioester linkages. This unique side-ring is installed by the class C radical S-adenosylmethionine (SAM) methylase NosN. Here, we report three X-ray crystal structures of the NosN homolog, NocN, at resolutions of 1.4 [A], 1.84 [A], and 1.78 [A] under anaerobic conditions, representing the first structural characterization of a class C radical SAM methylase. The structures reveal clear electron density for two bound SAM molecules. Remarkably, the C5' atom of SAMI, which coordinates to the [Fe4S4] cluster, lies 3.5 [A] from the methyl group of SAMII and is properly positioned for direct hydrogen atom abstraction. A structure containing a product mimic illustrates how NocN engages its substrate and identifies Tyr276 as a key catalytic residue. The structure further suggests that the sulfonium center of SAMII may undergo epimerization to facilitate radical attack. Finally, electron paramagnetic resonance spectroscopy identifies a paramagnetic species consistent with the addition of the SAMII-derived methylene radical to the MIA substrate.

biochemistry↗

Detergent exchange from lipid nanoparticles into detergent micelles unlocks a tool for biochemical and kinetic characterization of membrane proteins

Bacterial membrane proteins make up [~]30% of the prokaryotic genome and play key roles in infection and virulence. Membrane protein chemistry has advanced in recent years, including purification strategies that mimic "native-like" lipid environments, such as lipid nanoparticles, amphipols, and nanodiscs. The use of styrene maleic acid co-polymers to form a lipid nanoparticle has become increasingly common in membrane protein purification, especially for proteins which are not amenable to detergent extraction from the cellular membrane fraction. Yet, for some biochemical and biophysical methods it is preferable to use detergent-solubilized protein. Here we show a general exchange method to transfer membrane proteins from lipid nanoparticles to detergent micelles while retaining protein fold, homogeneity and function. Conditions were first optimized for co-polymer dispersion and recovery into detergents, and analytical methods employed to assess activity and quality of detergent-solubilized proteins. Twelve protein targets were purified in co-polymer based on a 16-polymer screen. This selection was followed by an eight-detergent screen in the presence of calcium ions for optimal dissolution of the nanoparticle, producing detergent-stabilized protein. In all membrane proteins assessed, homogeneity and folding were retained from the initial purification in lipid nanoparticles through the detergent-exchange protocol. For membrane enzymes that have proven to be experimentally intractable once detergent solubilized, we were able to observe catalytic activity using the detergent-exchanged material. The use of this protocol to purify membrane proteins provides great versatility for biochemical and kinetic characterization than was previously accessible.

biochemistry↗

Selection of nanobodies against liponanoparticle-embedded membrane proteins by yeast surface display

Single-domain antibodies, known as nanobodies (Nbs), are widely used in structural biology, therapeutics, and as molecular probes in biology and biotechnology. Nbs towards soluble proteins are routinely developed via alpaca immunization or directed evolution in yeast cell-surface display. However, for membrane proteins, the targets are generally detergent-solubilized, and there remains a need for Nb development methods against membrane proteins in a native-like membrane environment. To address this need, we present a protocol for Nb selection via extraction of membrane proteins into amphiphilic polymers such as styrene-maleic acid to produce purified membrane proteins in stable liponanoparticles. Proof of generality is demonstrated by applying the pipeline to four membrane-resident enzymes of differing fold, oligomerization state, and membrane topology (reentrant membrane helix, transmembrane, membrane-associated). Following screening for optimal stabilization into liponanoparticles, Nbs were selected against four target proteins from glycoconjugate biosynthesis pathways. The selected Nbs showed high affinity and selectivity towards their target proteins with KD apparent values ranging from 15 nM to 200 nM, depending on the Nb-protein conjugate. In accordance with their tight binding, various Nb-protein complexes were found to be stable to size-exclusion chromatography purification. The Nbs were also amenable to sortase-mediated ligation, enabling their conversion into molecular probes for the target membrane protein. The ability to select for such high-affinity Nb against membrane proteins in SMALP will facilitate their widespread application in cell biology and biomedical applications.

biochemistry↗