In vitro compartmentalization of biochemical reaction networks is a crucial step towards engineering artificial cell-scale devices and systems. At this scale the dynamics of molecular systems becomes stochastic, which introduces several engineering challenges and opportunities. Here we study a programmable transcriptional oscillator system that is compartmentalized into microemulsion droplets with volumes between 33 fl and 16 pl. Simultaneous measurement of large populations of droplets reveals major variations in the amplitude, frequency and damping of the oscillations. Variability increases for smaller droplets and depends on the operating point of the oscillator. Rather than reflecting the stochastic kinetics of the chemical reaction net...
The stochasticity due to the infrequent collisions among low copy-number molecules within the crowde...
\u3cp\u3eUnderstanding the dynamics of complex enzymatic reactions in highly crowded small volumes i...
The stochasticity due to the infrequent collisions among low copy-number molecules within the crowde...
In vitro compartmentalization of biochemical reaction networks is a crucial step towards engineering...
Encapsulation of <i>in vitro</i> biochemical reaction circuits into small, cell-sized compartments c...
Living cells maintain a steady state of biochemical reaction rates by exchanging energy and matter w...
Chemical communication leading to synchronization and collective behaviour of dynamic elements, such...
International audienceWe report the splitting of an oscillating DNA circuit into ∼ 700 droplets with...
International audienceWe report the splitting of an oscillating DNA circuit into ∼ 700 droplets with...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
International audienceWe report the splitting of an oscillating DNA circuit into ∼ 700 droplets with...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
The stochasticity due to the infrequent collisions among low copy-number molecules within the crowde...
\u3cp\u3eUnderstanding the dynamics of complex enzymatic reactions in highly crowded small volumes i...
The stochasticity due to the infrequent collisions among low copy-number molecules within the crowde...
In vitro compartmentalization of biochemical reaction networks is a crucial step towards engineering...
Encapsulation of <i>in vitro</i> biochemical reaction circuits into small, cell-sized compartments c...
Living cells maintain a steady state of biochemical reaction rates by exchanging energy and matter w...
Chemical communication leading to synchronization and collective behaviour of dynamic elements, such...
International audienceWe report the splitting of an oscillating DNA circuit into ∼ 700 droplets with...
International audienceWe report the splitting of an oscillating DNA circuit into ∼ 700 droplets with...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
International audienceWe report the splitting of an oscillating DNA circuit into ∼ 700 droplets with...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
Understanding the dynamics of complex enzymatic reactions in highly crowded small volumes is crucial...
The stochasticity due to the infrequent collisions among low copy-number molecules within the crowde...
\u3cp\u3eUnderstanding the dynamics of complex enzymatic reactions in highly crowded small volumes i...
The stochasticity due to the infrequent collisions among low copy-number molecules within the crowde...