bioRxiv Science⌕ Search

Biology subjects

Enkerlin, A. M.

Publications and source records attributed to Enkerlin, A. M..

4 recordsLinked to original sources

When a chaotropic agent turns into a nutrient: Deciphering the assimilation of guanidine and its utilization to drive synthetic processes in cyanobacteria

Guanidine is a well-known chaotropic agent used to denature proteins and nucleic acids. However, recent studies have demonstrated both the widespread synthesis of guanidine, e.g. in plants and mammals, as well as the widespread occurrence of guanidine metabolism in bacteria, suggesting a broader biological role. Here, we provide insights into guanidine assimilation via guanidine hydrolases (GdmH) in cyanobacteria. The gdmH gene is widespread among cyanobacteria and enables growth on guanidine as sole nitrogen source. Strains lacking gdmH, naturally or by deletion, failed to grow on guanidine. Expression of gdmH increased under nitrogen limitation, regulated by the transcription factor NtcA. However, guanidine is toxic above 5 mM, necessitating GdmH activity and adaptive mutations activating the multidrug efflux system PrqA. The gdmH gene is frequently co-localized with ABC transporter genes, which are driven by an additional NtcA-regulated promoter. At low guanidine concentrations, their mutation disrupted guanidine-dependent growth of Synechocystis sp. PCC 6803, supporting that they encode a high affinity transport system. In presence of >1 mM guanidine, these mutants grew like wildtype, suggesting the existence of additional uptake mechanisms for guanidine. We next demonstrate the high-affinity binding of guanidine to a previously described, conserved RNA motif located within the gdmH 5 UTR, validating it as a guanidine I riboswitch. By combining it with various promoters, we achieved precise, titratable control of heterologous gene expression in cyanobacteria in vivo. Our findings establish guanidine assimilation as an integral element of cyanobacterial nitrogen metabolism and highlight guanidine riboswitches as valuable tools for synthetic biology. Significance statementCyanobacteria are promising whole-cell biocatalysts for the sustainable, CO2-neutral production of chemicals and fuels. Unlocking this potential requires deep understanding of their metabolism and advanced molecular tools for genetic engineering. We show that cyanobacteria can assimilate guanidine as sole nitrogen source. Because of its toxicity, guanidine metabolism is tightly controlled, involving the transcription factor NtcA and a riboswitch, an RNA element regulating gene expression by guanidine binding. By utilizing this riboswitch, we achieved precise regulation of heterologous genes. Guanidine is inexpensive and effective at low concentrations, making large-scale applications in cyanobacterial cell factories cost-efficient. This study advances our understanding of the metabolic capacities of environmentally important cyanobacteria and their metabolic engineering, highlighting riboswitches as valuable tools for controlling biotechnological processes.

microbiology↗

Deciphering the metabolic details of L-lysine toxicity in cyanobacteria

L-lysine (Lys) has been explored as a potential cyanobactericide due to its inhibitory effects on cyanobacterial growth at micromolar concentrations, comparable to many antibiotics. Here, we investigated the early metabolic and physiological responses of the model cyanobacterium Synechocystis sp. PCC 6803 to Lys exposure. Physiological analyses revealed cell enlargement, oxidative stress, and photosynthesis inhibition, leading to growth arrest. Metabolomic profiling indicated disruptions in peptidoglycan biosynthesis, evidenced by the accumulation of L-/D-alanine, meso-diaminopimelate, and D-Ala-D-Ala, suggesting interference with cell wall integrity. Furthermore, levels of energy metabolites and other amino acids including tyrosine, tryptophan, valine, and iso-/leucine were significantly altered, implying broader metabolic impacts of Lys toxicity. To explore potential resistance mechanisms, we used a CRISPRi-based genetic screen to identify key genes involved in relieving Lys toxicity. The Bgt permease system, responsible for basic amino acid uptake, was essential for acquiring Lys-resistance, as a bgtA mutant exhibited a normal growth on elevated Lys concentrations, thereby validating our CRISPRi-screen. Additionally, UirR, a DNA-binding response regulator, and genes linked to c-di-AMP signaling, seemed implicated in Lys metabolism. Deletion of c-di-AMP synthase gene increased Lys sensitivity, supporting a role for c-di-AMP in cell wall homeostasis and osmotic stress regulation. Altogether, our findings explored the early metabolic responses and physiological consequences of Lys exposure in Synechocystis, demonstrating its effects on peptidoglycan biosynthesis, amino acid metabolism, and nucleotide biosynthesis. The identification of key genetic factors contributing to Lys resistance provides new insights into cyanobacterial physiology and the potential application of Lys in bloom control strategies.

microbiology↗

The second messenger c-di-AMP controls natural competence via ComFB signaling protein

Natural competence requires a contractile pilus system. Here, we provide evidence that the pilus biogenesis and natural competence in cyanobacteria are regulated by the second messenger c-di-AMP. Furthermore, we show that the ComFB signaling protein is a novel c-di-AMP-receptor protein, widespread in bacterial phyla, and required for pilus biogenesis and DNA uptake.

microbiology↗

A shuttle-vector system allows heterologous gene expression in the thermophilic methanogen Methanothermobacter thermautotrophicus ΔH

Thermophilic Methanothermobacter spp. are used as model microbes to study the physiology and biochemistry of the conversion of hydrogen and carbon dioxide into methane (i.e., hydrogenotrophic methanogenesis), because of their short doubling times and robust growth with high growth yields. Yet, a genetic system for these model microbes was missing despite intense work for four decades. Here, we report the establishment of tools for genetic modification of M. thermautotrophicus. We developed the modular Methanothermobacter vector system, which provided shuttle-vector plasmids (pMVS) with exchangeable selectable markers and replicons for both Escherichia coli and M. thermautotrophicus. For M. thermautotrophicus, a thermostable neomycin-resistance cassette served as the selectable marker for positive selection with neomycin, and the cryptic plasmid pME2001 from Methanothermobacter marburgensis served as the replicon. The pMVS-plasmid DNA was transferred from E. coli into M. thermautotrophicus via interdomain conjugation. After the successful validation of DNA transfer and positive selection in M. thermautotrophicus, we demonstrated heterologous gene expression of a thermostable {beta}-galactosidase-encoding gene (bgaB) from Geobacillus stearothermophilus under the expression control of four distinct synthetic and native promoters. In quantitative in-vitro enzyme activity assays, we found significantly different {beta}-galactosidase activity with these distinct promoters. With a formate dehydrogenase operon-encoding shuttle vector, we allowed growth of M. thermautotrophicus on formate as the sole growth substrate, while this was not possible for the empty vector control. These genetic tools provide the basis to investigate hypotheses from four decades of research on the physiology and biochemistry of Methanothermobacter spp. on a genetic level. Significance StatementThe world economies are facing permanently increasing energy demands. At the same time, carbon emissions from fossil sources need to be circumvented to minimize harmful effects from climate change. The power-to-gas platform is utilized to store renewable electric power and decarbonize the natural gas grid. The microbe Methanothermobacter thermautotrophicus is already applied as the industrial biocatalyst for the biological methanation step in large-scale power-to-gas processes. To improve the biocatalyst in a targeted fashion, genetic engineering is required. With our shuttle-vector system for heterologous gene expression in M. thermautotrophicus, we set the cornerstone to engineer the microbe for optimized methane production, but also for production of high-value platform chemicals in power-to-x processes.

microbiology↗