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Baur, T.

Publications and source records attributed to Baur, T..

2 recordsLinked to original sources

Establishing the fluorescence-activating and absorption-shifting tag as a fluorescent reporter protein in Methanothermobacter thermautotrophicus ΔH

The thermophilic methanogen Methanothermobacter thermautotrophicus {Delta}H is a model microbe for hydrogenotrophic methanogenesis and an emerging platform host for metabolic engineering. Despite recent advances in its genetic accessibility, the available molecular toolbox lacks fluorescent reporter proteins that are suitable for anaerobic and thermophilic conditions. Here, we established the fluorescence-activating and absorption-shifting tag (FAST) as a reporter protein in M. thermautotrophicus. We expressed codon-optimized variants of FAST by applying established genetic tools, and evaluated the performance for two temperatures and three fluorogens. We demonstrated that FAST is functional in M. thermautotrophicus but exhibits temperature-dependent instability, which is more pronounced at 60{degrees}C compared to 50{degrees}C. Among the tested fluorogens, TFLime and TFAmber yielded comparable fluorescence intensities, while TFCoral resulted in significantly lower fluorescence intensity. Exploiting the partial thermolability of FAST, we characterized the dynamic expression profiles of several promoters, which revealed growth phase-dependent regulation patterns. Our findings challenge previous assumptions of constitutive expression for several promoters. Notably, we identified distinct expression patterns for promoters that are associated with methanogenesis and energy-converting hydrogenases. Our results establish FAST as a versatile fluorescent reporter for thermophilic methanogens and provide new insights into promoter regulation in M. thermautotrophicus. This work expands the genetic toolbox for this microbe and lays the foundation for advanced studies in archaeal cell biology and biotechnology.

microbiology↗

Metabolic engineering of Methanothermobacter thermautotrophicus ΔH for recombinant acetoin production

Thermophilic methanogens of the genus Methanothermobacter are established biocatalysts in power-to-gas applications, converting H2 and CO2 into CH4 through the process of methanogenesis. Further expanding this platform for the bioproduction of value-added compounds (power-to-x) has the potential to increase the economic viability of such processes. This requires a genetic toolset that enables the controlled expression of recombinant pathways. Here, we report the fully autotrophic inducible recombinant bioproduction of acetoin from H2 and CO2 in Methanothermobacter thermautotrophicus {Delta}H. To facilitate inducible gene expression, we implemented an anhydrotetracycline (aTc)-inducible promoter system, expanding our available set of promoters. The aTc-inducible system enabled controlled expression of a codon-optimized acetoin-production operon comprising the acetolactate synthase- and acetolactate decarboxylase-encoding genes from Streptococcus thermophilus. Batch cultivation at 42{degrees}C demonstrated aTc-dependent acetoin formation, yielding up to 0.45 {+/-} 0.08 mM acetoin. Fed-batch bioreactor experiments confirmed growth-coupled, recombinant acetoin production, while eliminating the non-specific acetoin accumulation that we observed during non-growth phases in batch cultivation. Continuous cultivation in a chemostat resulted in stable acetoin production rates of 1.28 {+/-} 0.07 {micro}mol L-{superscript 1} h-{superscript 1} at 42{degrees}C. Elevated temperatures led to reduced acetoin production, suggesting diminished activity or thermal instability of the heterologous enzymes. This study demonstrates the feasibility of value-added bioproduction in Methanothermobacter and establishes an inducible expression system suitable for pathway engineering in thermophilic methanogens. Together with genome-scale modeling and emerging enzyme engineering strategies, these results lay the foundation for developing robust, CH4-co-producing power-to-x bioprocesses with Methanothermobacter species.

microbiology↗