Bacteria react to adverse environmental stimuli by clustering into organized communities called biofilms. A remarkably sophisticated control system based on the dinucleotide 3'-5' cyclic diguanylic acid (c-di-GMP) is involved in deciding whether to form or abandon biofilms. The ability of c-di-GMP to form self-intercalated dimers is also thought to play a role in this complex regulation. A great advantage in the quest of elucidating the catalytic properties of the enzymes involved in c-di-GMP turnover (diguanylate cyclases and phosphodiesterases) would come from the availability of an experimental approach for in vitro quantification of c-di-GMP in real-time. Here, we show that c-di-GMP can be detected and quantified by circular dichroism (...
ABSTRACT The bacterial intracellular second messenger, cyclic dimeric GMP (c-di-GMP), regulates biof...
Cyclic dinucleotides such as cyclic dimeric guanosine monophosphate (c-di-GMP,) cyclic dimeric adeno...
Biofilm formation is responsible for increased antibiotic tolerance in pathogenic bacteria. Cyclic d...
Bacteria react to adverse environmental stimuli by clustering into organized communities called biof...
The physiological response to small molecules (secondary messengers) is the outcome of a delicate eq...
Cyclic di-GMP (c-di-GMP), a ubiquitous bacterial second messenger, has emerged as a key controller o...
The bacterial second messenger cyclic diguanosine monophosphate (c-di-GMP) regulates cellular motili...
Bacteria are able to organize in organized communities named biofilms, difficult to eradicate, highl...
Considerable progress has been made during the last decade towards the identification and characteri...
Bacteria exist in nature in a planktonic single-cell state or in a sessile multicellular state, the ...
Considerable progress has been made during the last decade towards the identification and characteri...
3',5'-Cyclic diguanylic acid (c-di-GMP) is a naturally occurring small cyclic dinucleotide found in ...
Biofilms are microbial communities embedded in a self-produced polymeric matrix, mainly composed by ...
One of the most important signals involved in controlling biofilm formation is represented by the in...
Bacterial cyclic dinucleotides (CDNs) play important roles in regulating biofilm formation, motility...
ABSTRACT The bacterial intracellular second messenger, cyclic dimeric GMP (c-di-GMP), regulates biof...
Cyclic dinucleotides such as cyclic dimeric guanosine monophosphate (c-di-GMP,) cyclic dimeric adeno...
Biofilm formation is responsible for increased antibiotic tolerance in pathogenic bacteria. Cyclic d...
Bacteria react to adverse environmental stimuli by clustering into organized communities called biof...
The physiological response to small molecules (secondary messengers) is the outcome of a delicate eq...
Cyclic di-GMP (c-di-GMP), a ubiquitous bacterial second messenger, has emerged as a key controller o...
The bacterial second messenger cyclic diguanosine monophosphate (c-di-GMP) regulates cellular motili...
Bacteria are able to organize in organized communities named biofilms, difficult to eradicate, highl...
Considerable progress has been made during the last decade towards the identification and characteri...
Bacteria exist in nature in a planktonic single-cell state or in a sessile multicellular state, the ...
Considerable progress has been made during the last decade towards the identification and characteri...
3',5'-Cyclic diguanylic acid (c-di-GMP) is a naturally occurring small cyclic dinucleotide found in ...
Biofilms are microbial communities embedded in a self-produced polymeric matrix, mainly composed by ...
One of the most important signals involved in controlling biofilm formation is represented by the in...
Bacterial cyclic dinucleotides (CDNs) play important roles in regulating biofilm formation, motility...
ABSTRACT The bacterial intracellular second messenger, cyclic dimeric GMP (c-di-GMP), regulates biof...
Cyclic dinucleotides such as cyclic dimeric guanosine monophosphate (c-di-GMP,) cyclic dimeric adeno...
Biofilm formation is responsible for increased antibiotic tolerance in pathogenic bacteria. Cyclic d...