The formation of large-scale patterns through molecular self-organization is a basic principle of life. Accordingly, the engineering of protein patterns and gradients is of prime relevance for synthetic biology. As a paradigm for such pattern formation, the bacterial MinDE protein system is based on self-organization of the ATPase MinD and ATPase-activating protein MinE on lipid membranes. Min patterns can be tightly regulated by tuning physical or biochemical parameters. Among the biochemically engineerable modules, MinD's membrane targeting sequence, despite being a key regulating element, has received little attention. Here we attempt to engineer patterns by modulating the membrane affinity of MinD. Unlike the traveling waves or stationa...
In Escherichia coli, the pole-to-pole oscillation of the Min proteins directs septum formation to mi...
The rod-shaped bacterium Escherichia coli selects the cell center as site of division with the help ...
The rod-shaped bacterium Escherichia coli selects the cell center as site of division with the help ...
The E. coli MinDE oscillator is a paradigm for protein self-organization and gradient formation. Pre...
The E. coli MinDE oscillator is a paradigm for protein self-organization and gradient formation. Pre...
The E. coli MinDE oscillator is a paradigm for protein self-organization and gradient formation. Pre...
The MinCDE protein system from Escherichia coli has become one of the most striking paradigms of pro...
The MinCDE protein system from Escherichia coli has become one of the most striking paradigms of pro...
The MinDE protein system is a paradigm for molecular self-organization and pattern formation on memb...
Protein patterning is vital for many fundamental cellular processes. This raises two intriguing ques...
Living systems employ protein pattern formation to regulate important life processes in space and ti...
In Escherichia coli, the pole-to-pole oscillation of the Min proteins directs septum formation to mi...
The E. coli MinCDE system has become a paradigmatic reaction–diffusion system in biology. The membra...
<div><p>The rod-shaped bacterium <i>Escherichia coli</i> selects the cell center as site of division...
In Escherichia coli, the pole-to-pole oscillation of the Min proteins directs septum formation to mi...
In Escherichia coli, the pole-to-pole oscillation of the Min proteins directs septum formation to mi...
The rod-shaped bacterium Escherichia coli selects the cell center as site of division with the help ...
The rod-shaped bacterium Escherichia coli selects the cell center as site of division with the help ...
The E. coli MinDE oscillator is a paradigm for protein self-organization and gradient formation. Pre...
The E. coli MinDE oscillator is a paradigm for protein self-organization and gradient formation. Pre...
The E. coli MinDE oscillator is a paradigm for protein self-organization and gradient formation. Pre...
The MinCDE protein system from Escherichia coli has become one of the most striking paradigms of pro...
The MinCDE protein system from Escherichia coli has become one of the most striking paradigms of pro...
The MinDE protein system is a paradigm for molecular self-organization and pattern formation on memb...
Protein patterning is vital for many fundamental cellular processes. This raises two intriguing ques...
Living systems employ protein pattern formation to regulate important life processes in space and ti...
In Escherichia coli, the pole-to-pole oscillation of the Min proteins directs septum formation to mi...
The E. coli MinCDE system has become a paradigmatic reaction–diffusion system in biology. The membra...
<div><p>The rod-shaped bacterium <i>Escherichia coli</i> selects the cell center as site of division...
In Escherichia coli, the pole-to-pole oscillation of the Min proteins directs septum formation to mi...
In Escherichia coli, the pole-to-pole oscillation of the Min proteins directs septum formation to mi...
The rod-shaped bacterium Escherichia coli selects the cell center as site of division with the help ...
The rod-shaped bacterium Escherichia coli selects the cell center as site of division with the help ...