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Jespersen, M.

Publications and source records attributed to Jespersen, M..

3 recordsLinked to original sources

Methanogenesis inhibition remodels microbial fermentation and stimulates acetogenesis in ruminants

Rumen microbiota enable ruminants to grow on fibrous plant materials but also produce methane, driving 5% of global greenhouse gas emissions and leading to a loss of gross energy content. Methanogenesis inhibitors such as 3-nitrooxypropanol (3-NOP) decrease methane emissions in ruminants when supplemented in feed. Yet we lack a system-wide, species-resolved understanding of how the rumen microbiota remodels following inhibition and how this influences animal production. Here, we conducted a large-scale trial with 51 dairy calves to analyse microbiota responses to 3-NOP, pairing host performance, emissions, and nutritional profiles with genome-resolved metagenomic and metatranscriptomic data. 3-NOP supplementation decreased methane emissions by an average of 62%, modulated short-chain fatty acid and H2 levels, and did not affect dietary intake or animal performance. We created a rumen microbial genome catalogue with an unprecedented mapping rate. We observed a strong reduction of methanogens and stimulation of reductive acetogens, primarily novel uncultivated lineages such as Candidatus Faecousia. However, there was a shift in major fermentative communities away from acetate production in response to hydrogen gas accumulation. Thus, the divergent responses of the fermentative and hydrogenotrophic communities limit potential productivity gains from methane reduction. Reporting one of the largest reductions in methane emissions in a field trial to date, this study links ruminant greenhouse gas emissions and productivity to specific microbial species. These findings also emphasise the importance of microbiota-wide analysis for optimising methane mitigation strategies and identify promising strategies to simultaneously reduce emissions while increasing animal production. Significance StatementOne strategy to increase the sustainability and productivity of livestock production is to modulate ruminant microbiota to produce absorbable nutrients rather than the potent greenhouse gas methane. Previous studies show supplementing feed with methanogenesis inhibitors such as 3-nitrooxypropanol reduces methane emissions, but also leads to inconsistent productivity gains. Here we report a definitive field trial, combining animal data, meta-omics, and structural modelling, to resolve the key microbes and pathways controlling nutrient and methane production in ruminants. We show that shifts in composition and gene expression of hydrogen-cycling microbes reduce emissions but limit productivity gains. These findings offer insights at unprecedented resolution, while the data and analytical framework provide valuable resources to develop solutions to enhance livestock productivity and sustainability.

microbiology↗

How a methanogen assimilates sulfate: Structural and functional elucidation of the complete sulfate-reduction pathway

By growing on sulfate as the sole source of sulfur, Methanothermococcus thermolithotrophicus breaks a dogma: the ancient metabolic pathways methanogenesis and sulfate-reduction should not co-occur in one organism due to toxic intermediates and energetic barriers. Using a complementary approach of physiological, biochemical, and structural studies, we provide a snapshot of the complete sulfate-reduction pathway of the methanogenic archaeon. While the first two reactions proceed via an ATP-sulfurylase and APS-kinase, common to other organisms, the further steps are catalysed by non-canonical enzymes. 3-phosphoadenosine-5-phosphosulfate (PAPS) released by the APS-kinase is converted into sulfite and 3-phosphoadenosine-5-phosphate (PAP) by a new class of PAPS-reductase that shares high similarity with the APS-reductases involved in dissimilatory sulfate-reduction. The generated PAP is efficiently hydrolysed by a PAP-phosphatase that was likely derived from an RNA exonuclease. Finally, the F420-dependent sulfite-reductase converts sulfite to sulfide for cellular assimilation. While metagenomic and metatranscriptomic studies suggest that genes of the sulfate-reduction pathway are present in various methanogens, M. thermolithotrophicus uses a distinct way to assimilate sulfate. We propose that its entire sulfate-assimilation pathway was derived from a "mix-and-match" strategy in which the methanogen acquired assimilatory and dissimilatory enzymes from other microorganisms and shaped them to fit its physiological needs.

microbiology↗

The structure of the F420-dependent sulfite-detoxifying enzyme from Methanococcales reveals a prototypical sulfite-reductase with assimilatory traits.

The coenzyme F420-dependent sulfite reductase (Fsr group I) protects hydrogenotrophic methanogens, one of the main contributors in worldwide methane emission, from toxic sulfite. Fsr is a single peptide composed of a F420H2-oxidase and a novel class of sulfite reductase. Both catalytic domains have been proposed to be the ancestors of modern F420-oxido/reductases and dissimilatory/assimilatory sulfite reductases. Here, we describe the X-ray crystal structures of Fsr natively isolated from Methanocaldococcus jannaschii (MjFsr) and Methanothermococcus thermolithotrophicus (MtFsr), respectively refined to 2.30 [A] and 1.55 [A] resolution. In both organisms, Fsr oligomerizes as a 280-kDa homotetramer, where each siroheme-[4Fe-4S] is catalytically active, in contrast to dissimilatory homologues. The siroheme-[4Fe-4S], embedded in the sulfite reductase domain, is electronically connected to the flavin in the F420H2-oxidase domain by five [4Fe-4S]-clusters. EPR spectroscopy determined the redox potentials of these [4Fe-4S]2+/1+ clusters (-435 to -275 mV), through which electrons flow from FAD to the siroheme-[4Fe-4S]2+/1+ (siroheme, -114 mV; [4Fe-4S] -445 mV). The electron relay is mainly organized by two inserted ferredoxin modules, which stabilize the higher degree of oligomerization. While the F420H2-oxidase part is similar to the {beta}-subunit of F420-reducing hydrogenases, the sulfite reductase domain is structurally analogous to dissimilatory sulfite reductases, whereas its siroheme-[4Fe-4S] cofactor is bound in the same way as in assimilatory ones. Accordingly, the reaction of MtFsr is unidirectional, reducing sulfite or nitrite with F420H2. Our results provide the first structural insights into this unique fusion, a snapshot of a primitive sulfite reductase that turns a poison into an elementary block of Life.

biochemistry↗