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Gasparrini, W.

Publications and source records attributed to Gasparrini, W..

2 recordsLinked to original sources

Metabolic engineering of Escherichia coli to modulate hydrogen sulfide levels in the mammalian gut

Hydrogen sulfide (H2S) is a microbiota-derived metabolite in the gastrointestinal tract implicated in a number of diseases. Its volatility and reactivity make experimentally controlling H2S concentration in vivo difficult, limiting our ability to interrogate its dose-dependent effects on host physiology. Engineered bacteria present a compelling solution, yet most probiotic metabolic engineering approaches have focused on in vitro optimization, failing to account for the complex intestinal environment. Here, we engineered Escherichia coli strains to produce or consume H2S in specific intestinal regions by incorporating knowledge of the local metabolic environment and resident microbial activities into the design process. Analysis of human-derived ex vivo cultures revealed that glutathione (GSH) is inefficiently converted to H2S, suggesting GSH as a relatively stable substrate for engineered sulfide production. We thus engineered a GSH-dependent H2S producer, which increased levels 21-fold ex vivo. To target the nutrient-rich, microbially sparse environment of the small intestine, we optimized a H2S producer that uses L-cysteine as a sulfur source, demonstrating a 7-fold increase in H2S levels in mice. Finally, to develop strains capable of sequestering H2S, we leveraged the availability of fumarate and nitrate as electron acceptors in the large intestine by engineering a strain expressing sulfide:quinone oxidoreductase (Sqr). This enables oxidation of H2S to intracellular polysulfides and achieves higher consumption rates than alternative sequestration strategies reliant on resource-intensive GSH production. Together, this work developed engineered microbes as precision tools to modulate H2S levels and showcases a generalizable framework for region-targeted design of engineered probiotics.

synthetic biology↗

Exploring C1 substrate cofeeding in Eubacterium limosum with AneVO, a low-cost anaerobic parallel bioreactor platform

Acetogenic bacteria have emerged as attractive biocatalysts for renewable biochemical production, using the highly efficient Wood-Ljungdahl pathway to convert a range of sustainable single-carbon (C1) feedstocks. The major challenge is their energy-constrained anaerobic lifestyle, which results in slow growth and limits the product spectrum. To overcome this limitation, here we investigate substrate co-metabolism in the acetogen Eubacterium limosum, cofeeding either carbon monoxide (CO) or glucose alongside the primary C1 substrate (methanol or formate). To increase experimental throughput, we developed AneVO, a parallel mini bioreactor system based on eVOLVER that enables benchtop anaerobic batch and fed-batch cultivation, along with continuous delivery of anaerobic gas blends. With all substrate pairs tested, E. limosum grew faster and reached 52-254% higher cell densities with cofeeding, while maintaining or improving the volumetric uptake rate of the main C1 substrate. Product formation also improved, with an increase in volumetric acetate productivity from glucose cofeeding of 2.2-fold with formate and 2.4-fold with methanol, and 3-fold from CO cofeeding with methanol. Together these results validate AneVO as a low-cost platform for convenient benchtop cultivation of strict anaerobic microbes in multiple growth modes, and present a strategy for enhancing C1 bioconversion rates in E. limosum, an emerging model acetogen.

microbiology↗