Tellurite (TeO32-) is a hazardous and toxic oxyanion for living organisms. However, several microorganisms can bioconvert TeO32-into the less toxic form of elemental tellurium (Te0). Here, Rhodococcus aetherivorans BCP1 resting (non-growing) cells showed the proficiency to produce tellurium-based nanoparticles (NPs) and nanorods (NRs) through the bioconversion of TeO32-, depending on the oxyanion initial concentration and time of cellular incubation. Te-nanostructures initially appeared in the cytoplasm of BCP1 cells as spherical NPs, which, as the exposure time increased, were converted into NRs. This observation suggested the existence of an intracellular mechanism of TeNRs assembly and growth that resembled the chemical surfactant-assist...
Formation and recovery of elemental tellurium (Te) from wastewaters are required by increasing deman...
The biosynthesis of nanoparticles using green technology is emerging as a cost-efficient, eco-friend...
The intense use of tellurium (Te) in industrial applications, along with the improper disposal of Te...
Tellurite (TeO32-) is a hazardous and toxic oxyanion for living organisms. However, several microorg...
Background: Tellurite (TeO32-) is recognized as a toxic oxyanion to living organisms. However, mainl...
The toxic oxyanion tellurite (TeO32-) is acquired by cells of Rhodobacter capsulatus grown anaerobic...
Tellurite (TeO32-) and selenite (SeO32-) are hazardous and toxic oxyanions for livingorganisms. Howe...
The toxic oxyanion tellurite (TeO32-) is acquired by cells of Rhodobacter capsulatus grown anaerobic...
The present study was designed to isolate bacterial strain capable of tellurium nanorods' (Te NRs) p...
none3siHere, we overview the most recent advances in understanding the bacterial mechanisms that sta...
Antibacterial tellurium nanoparticles have the advantages of high activity and biocompatibility. Mic...
Cells of the facultative photosynthetic bacterium Rhodobacter capsulatus exploit the simultaneous pr...
Tellurium (Te) is a metalloid with scarce and scattered abundance but with an increased interest in ...
The intense use of tellurium (Te) in industrial applications, along with the improper disposal of Te...
Formation and recovery of elemental tellurium (Te) from wastewaters are required by increasing deman...
The biosynthesis of nanoparticles using green technology is emerging as a cost-efficient, eco-friend...
The intense use of tellurium (Te) in industrial applications, along with the improper disposal of Te...
Tellurite (TeO32-) is a hazardous and toxic oxyanion for living organisms. However, several microorg...
Background: Tellurite (TeO32-) is recognized as a toxic oxyanion to living organisms. However, mainl...
The toxic oxyanion tellurite (TeO32-) is acquired by cells of Rhodobacter capsulatus grown anaerobic...
Tellurite (TeO32-) and selenite (SeO32-) are hazardous and toxic oxyanions for livingorganisms. Howe...
The toxic oxyanion tellurite (TeO32-) is acquired by cells of Rhodobacter capsulatus grown anaerobic...
The present study was designed to isolate bacterial strain capable of tellurium nanorods' (Te NRs) p...
none3siHere, we overview the most recent advances in understanding the bacterial mechanisms that sta...
Antibacterial tellurium nanoparticles have the advantages of high activity and biocompatibility. Mic...
Cells of the facultative photosynthetic bacterium Rhodobacter capsulatus exploit the simultaneous pr...
Tellurium (Te) is a metalloid with scarce and scattered abundance but with an increased interest in ...
The intense use of tellurium (Te) in industrial applications, along with the improper disposal of Te...
Formation and recovery of elemental tellurium (Te) from wastewaters are required by increasing deman...
The biosynthesis of nanoparticles using green technology is emerging as a cost-efficient, eco-friend...
The intense use of tellurium (Te) in industrial applications, along with the improper disposal of Te...