bioRxiv Science⌕ Search

Biology subjects

Costa, K. C.

Publications and source records attributed to Costa, K. C..

2 recordsLinked to original sources

Functionally redundant formate dehydrogenases enable formate-dependent growth in Methanococcus maripaludis

Methanogens are essential for the complete remineralization of organic matter in anoxic environments. Most cultured methanogens are hydrogenotrophic, using H2 as an electron donor to reduce CO2 to CH4, but in the absence of H2 many can also use formate. Formate dehydrogenase (Fdh) is essential for formate oxidation, where it transfers electrons for reduction of coenzyme F420 or to a flavin-based electron bifurcating reaction catalyzed by heterodisulfide reductase (Hdr), the terminal reaction of methanogenesis. How these competing reactions are coordinated is unknown. Furthermore, methanogens that use formate encode at least two isoforms of Fdh in their genomes, but how these different isoforms participate in methanogenesis is also unknown. Using Methanococcus maripaludis, we undertook a biochemical characterization of both Fdh isoforms involved in methanogenesis. Both Fdh1 and Fdh2 interacted with Hdr to catalyze the flavin-based electron bifurcating reaction, and both reduced F420 at similar rates. F420 reduction preceded flavin-based electron bifurcation activity for both enzymes. In a {Delta}fdh1 mutant background, a suppressor mutation was required for Fdh2 activity. Genome sequencing revealed that this mutation resulted in loss of a specific molybdopterin transferase (moeA), allowing for Fdh2-dependent growth. This suggests that both isoforms of Fdh are functionally redundant, but their activities in vivo may be limited by gene regulation under different growth conditions. Together these results expand our understanding of formate oxidation and the role of Fdh in methanogenesis.

microbiology↗

Random transposon mutagenesis identifies genes essential for transformation in naturally competent archaea

Natural transformation, the process whereby a cell acquires DNA directly from the environment, is an important driver of evolution in microbial populations. While transformation is well characterized in bacteria, relatively little is known about this process in archaea. Here, we leverage an optimized method to generate transposon mutants in Methanococcus maripaludis to screen for genes essential to natural transformation. A screen of 5,376 mutant strains identified 25 candidate genes. Among these are genes encoding components of the type IV-like pilus, transcription/translation associated genes, putative membrane bound transport proteins, and genes of unknown function. Interestingly, similar genes were identified regardless of whether replicating or integrating plasmids were provided as substrate for transformation. Using allelic replacement mutagenesis, we confirmed that several genes identified in these screens are essential for transformation. Finally, we identified a homolog of a membrane bound substrate transporter in Methanoculleus thermophilus and verified its importance using allelic replacement mutagenesis, suggesting a conserved mechanism for DNA transfer in multiple archaea. These data provide an initial catalog of genes important for transformation in the archaea and can inform efforts to understand gene flow in this domain. ImportanceHorizontal gene transfer (HGT) is an important driver of evolution in microbial populations. One of the primary ways microorganisms acquire genetic material through HGT is transformation, the direct uptake of DNA from the environment. While transformation is well-studied in bacteria, little is known about this process in archaea. Using a random mutagenesis screen to identify components of the archaeal transformation pathway, we identify a catalog of genes important to transformation in Methanococcus maripaludis and show that a subset of these genes is functionally conserved across diverse archaea. This is a key step in understanding mechanisms of gene flow in natural populations, and identification of the DNA uptake system will assist in establishing new model genetic systems for studying the archaea.

microbiology↗