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Biology subjects

Jones, L. M.

Publications and source records attributed to Jones, L. M..

4 recordsLinked to original sources

Simulating Offshore Oilfield Conditions: Insights into Microbiologically Influenced Corrosion from a Dual Anaerobic Biofilm Reactor

Oilfield systems are a multifaceted ecological niche which consistently experience microbiologically influenced corrosion. However, simulating environmental conditions of an offshore system within the laboratory is notoriously difficult. A novel dual anaerobic biofilm reactor protocol allowed a complex mixed-species marine biofilm to be studied. Interestingly, electroactive corrosive bacteria and fermentative electroactive bacteria growth was supported within the biofilm microenvironment. Critically, the biotic condition exhibited pits with a greater average area which is characteristic of microbiologically influenced corrosion. This research seeks to bridge the gap between experimental and real-world scenarios, ultimately enhancing the reliability of biofilm management strategies in the industry. ImportanceIt is becoming more widely understood that any investigation of microbiologically influenced corrosion requires a multidisciplinary focus on multiple lines of evidence. While there are numerous standards available to guide specific types of testing, there are none that focus on integrating biofilm testing. By developing a novel dual anaerobic reactor model to study biofilms, insights into the different abiotic and biotic corrosion mechanisms under relevant environmental conditions can be gained. Using multiple lines of evidence to gain a holistic understanding, more sustainable prevention and mitigation strategies can be designed. To our knowledge, this is the first time all these metrics have been combined in one unified approach. The overall aim for this paper is to explore recent advances in biofilm testing and corrosion research, to provide recommendations for future standards being drafted. However, it is important to note that this article itself is not intending to serve as a standard.

microbiology↗

Radical Protein Footprinting in Mammalian Whole Blood

Hydroxyl Radical Protein Footprinting (HRPF) is a powerful tool to probe protein higher-order structure, as well as protein-protein and protein-carbohydrate interactions. It is mostly performed in vitro, but recent advances have extended its use to live cells, nematodes, and 3D cultures. However, application in living mammalian tissues has not been accomplished. Here, we present the first successful use of radical protein footprinting (RPF) in mammalian whole blood from wild-type (WT) and type 2 diabetes mellitus (T2DM) BKS. Cg Dock7m +/+ Leprdb/J mice. Using persulfate photoactivated with the FOX Photolysis System, we achieved effective protein labeling without significant disruption to blood cell morphology. An optimized quenching protocol eliminated background labeling. We report oxidative modifications in 11 selected proteins, revealing disease-associated conformational changes in multiple proteins. These findings demonstrate the feasibility of RPF in mammalian blood and open new opportunities for structural proteomics in preclinical models and clinical samples.

biochemistry↗

Efficient Analysis of Proteome-wide FPOP Data by FragPipe

Monitoring protein structure before and after perturbations can give insights into the role and function of proteins. Fast photochemical oxidation of proteins (FPOP) coupled with mass spectrometry (MS) allows monitoring of structural rearrangements by exposing proteins to OH radicals that oxidize solvent accessible residues, indicating protein regions undergoing movement. Some of the benefits of FPOP include high throughput and lack of scrambling due to label irreversibility. However, the challenges of processing FPOP data have thus far limited its proteome-scale uses. Here, we present a computational workflow for fast and sensitive analysis of FPOP datasets. Our workflow combines the speed of MSFragger search with a unique hybrid search method to restrict the large search space of FPOP modifications. Together, these features enable more than 10-fold faster FPOP searches that identify 50% more modified peptide spectra than previous methods. We hope this new workflow will increase the accessibility of FPOP to enable more protein structure and function relationships to be explored.

bioinformatics↗

Broad-spectrum extracellular antiviral properties of Cucurbiturils

Viruses are microscopic pathogens capable of causing disease and are responsible for a range of human mortality and morbidity worldwide. They can be rendered harmless or destroyed with a range of antiviral chemical compounds. Cucurbit[n]urils (CB[n]s) are a macrocycle chemical compound existing as a range of homologues; due to their structure they can bind to biological materials, acting as supramolecular "hosts" to "guests", such as amino acids. Due to the increasing need for a non-toxic antiviral compound, we investigated whether cucurbit[n]urils could act in an antiviral manner. We have found that certain cucurbit[n]uril homologues do indeed have an antiviral effect against a range of viruses, including RSV and SARS-CoV-2. In particular, we demonstrate that CB[7] is the active homologue of CB[n] mixtures, having an antiviral effect against enveloped and non-enveloped species. High levels of efficacy were observed with five-minute contact times across different viruses. We also demonstrate that CB[7] acts with an extracellular virucidal mode of action via host-guest supramolecular interactions between viral surface proteins and the CB[n] cavity, rather than via cell internalisation or a virustatic mechanism. This finding demonstrates that CB[7] acts as a supramolecular virucidal antiviral (a mechanism distinct from other current extracellular antivirals) demonstrating the potential of supramolecular interactions for future antiviral disinfectants.

microbiology↗