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Alharthi, R.

Publications and source records attributed to Alharthi, R..

2 recordsLinked to original sources

Thermodynamic, Electrochemical and Practical Constraints on Electromicrobial Formate Assimilation

Electromicrobial production (EMP) technologies aim to combine renewable electricity, CO2, and engineered microbes to make energy-dense molecules at efficiencies exceeding photosynthesis. CO2 can be electrochemically reduced to formate, which is far easier to handle at the bench than H2 or an electrode, but formate carries only two electrons per carbon against the six in a biofuel. The remaining electrons must come from oxidizing additional formate, from H2 oxidation, or from extracellular electron uptake (EEU), and no rigorous comparison of these options coupled to the choice of carbon assimilation pathway currently exists. We calculate upper-limit efficiencies for butanol production by six carbon assimilation pathways, each paired with all three electron delivery mechanisms, using electrochemical parameters drawn from a survey of the recent literature. Electrical to butanol energy conversion efficiencies range from 35.5 to 51.7%, corresponding to solar-to-fuel efficiencies of 11.7 to 17%, so even the least efficient route exceeds the 8% theoretical ceiling of algal photosynthesis. The serine variant of the reductive glycine pathway reaches an electrical energy conversion efficiency of when using H2 oxidation, within 1.9 points of the most efficient pathway, and is the only high-efficiency option that tolerates O2. This makes an EMP system that combines electron delivery by formate coupled with the serine variant of reductive glycine pathway highly attractive, as it presents few barriers to rapid, iterative engineering in the lab, and a high theoretical ceiling. Drawing both carbon and electrons from formate costs 6.2 points against H2 at a state-of-the-art whole-cell voltage (2.2 V). However, this small penalty is amplified three-fold by any rise in the CO2-to-formate cell voltage, and reaches 13.5 points at the highest whole-cell voltages reported for scaled-up CO2-to-formate electrolyzers, where formate-only operation falls to 11.2 electrical-to-fuel and 3.7% solar-to-fuel efficiency, below the ceiling of photosynthesis, against 24.7 and 8.1% for H2 (only just above algal photosynthesis). Our choice between a formate-only system and one coupled to H2 oxidation or EEU therefore depends on our belief about the trajectory of CO2 reduction technology. If whole-cell voltages continue to fall at the rate of the past decade, formate alone is the right target, and the simplicity of its workflow is bought at low cost. However, if that improvement plateaus, the electron delivery mechanism must be swappable, and a system should be designed from the outset so that it can be. At the US Department of Energy SunShot target of 2 cents per kilowatt hour, the electricity to make a US gallon of butanol costs $1.40 for a formate-only system at the state of the art, rising to $5.45 at the highest scaled-up electrolyzer voltage reported, against $1.23 and $2.47 for formate and H2 system.

synthetic biology↗

The sulfur-related metabolic status of Aspergillus fumigatus during infection reveals cytosolic serine hydroxymethyltransferase as a promising antifungal target.

Sulfur metabolism is an essential aspect of fungal physiology and is known to be crucial for pathogenicity. Fungal sulfur metabolism comprises anabolic and catabolic routes that are not well- conserved in mammals, and therefore can be considered a promising source of prospective novel antifungal targets. To gain insight into the status of the Aspergillus fumigatus sulfur-related metabolism during infection we used a NanoString custom nCounter TagSet and compared the expression of 68 key metabolic genes in different murine models of invasive pulmonary aspergillosis, at three different time-points, and a variety of in vitro conditions. We identified a set of 15 genes that are consistently expressed at higher levels in vivo than in vitro, suggesting that they may be particularly relevant for intrapulmonary growth and therefore constitute promising drug targets. Indeed, the role of five of the fifteen genes had previously been empirically validated, supporting the likelihood that the remaining candidates are relevant. In addition, the analysis of the dynamics of gene expression at the early (16h), mid (24h-1) and late (72h) time-points uncovered potential disease initiation and progression factors. We further characterised one of the identified genes, encoding the cytosolic serine hydroxymethyltransferase ShmB, and demonstrated that it is an essential gene of A. fumigatus and that it is also required for virulence in a murine model of established pulmonary infection. We further show that the structure of the ligand binding pocket of the fungal enzyme differs significantly from its human counterpart, suggesting that specific inhibitors can be designed. Therefore, in vivo transcriptomics is a powerful tool to identify genes crucial for fungal pathogenicity that might encode promising antifungal target candidates. AUTHOR SUMMARYAspergillus fumigatus is an opportunistic human fungal pathogen that causes devastating chronic and invasive infections in immunocompromised patients. Our arsenal of antifungal drugs to fight this and other fungal pathogens is very limited, partly because of the high similarity between eukaryotic fungal and human cells makes the identification of suitable drug targets a challenging task. Furthermore, targets identified in vitro are often not effective in vivo, as their action is not relevant for fungal virulence. To address this challenge, we compared the expression profiles of a set of genes involved in sulfur metabolism, a promising source of potential drug targets, in numerous in vitro and in vivo conditions to identify favourable antifungal candidates. Subsequently, we validated one of the highlighted genes, demonstrating that it is essential for A. fumigatus viability and virulence, and that it can likely be targeted by specific inhibitors. Hence, we show the potential of using in vivo transcriptomics to identify targets that contribute to virulence, propose various candidates for future studies and present a novel target validated for further antifungal drug development.

microbiology↗