New research suggests that ocean turbulence and horizontal stirring will dramatically increase in the Arctic and Southern Oceans due to human-induced Global Warming. The study uses ultra-high-resolution simulations to investigate how mesoscale horizontal stirring (MHS) responds to warming, revealing a pronounced future intensification ...
A study on attine ants reveals that beneficial bacteria live on the surface of their exoskeletons, which nourish these bacteria. The researchers found that these bacteria, including Pseudonocardia, are thought to have initially been gut symbionts and became cuticular symbionts around 20 million years ago.
Researchers have identified two compounds with strong antivirulence activity from actinobacteria in the Arctic Sea, targeting EPEC bacteria that cause severe diarrhea. The compounds inhibit virulence factor formation and binding to host cells, reducing disease severity and potential for resistance.
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Bacteria have found a way to survive stressful environments by producing microscopic syringes called Streptomyces phage tail-like particles (SLPs) that are located inside the cell. These SLPs interact with cellular systems involved in cell wall synthesis and protein translation, providing resistance against osmotic stress.
The study found that all 86 tridomain homologues of NDP-heptose synthetases are conserved in Actinobacteria, with three types of gene clusters encoding different natural products. The kinase domains of four selected proteins were found to be dysfunctional.
Researchers have identified a common species of seaweed, Laminaria ochroleuca, as a rich source of bacteria with antimicrobial and anticancer activities. The study reveals that extracts from these Actinobacteria inhibited growth of various pathogens and showed selective anticancer activity.
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Researchers have identified over half of the strains as having anti-microbial activity, indicating potential for producing antimicrobial natural products. A key finding was the identification of a strain producing metabolites more potent than vancomycin against C. difficile.
Prokaryotes can exchange genes and merge without losing their cell membranes, a process called endosymbiosis. UCLA molecular biologist James A. Lake discovered the first exclusively prokaryote endosymbiosis, which led to the evolution of double-membrane prokaryotes that produced oxygen through photosynthesis.