Living cells use readout molecules to record the state of receptor proteins, similar to measurements or copies in typical computational devices. But is this analogy rigorous? Can cells be optimally efficient, and if not, why? We show that, as in computation, a canonical biochemical readout network generates correlations; extracting no work from these correlations sets a lower bound on dissipation. For general input, the biochemical network cannot reach this bound, even with arbitrarily slow reactions or weak thermodynamic driving. It faces an accuracy-dissipation trade-off that is qualitatively distinct from and worse than implied by the bound, and more complex steady-state copy processes cannot perform better. Nonetheless, the cost remains...
Information-to-energy conversion with feedback measurement stands as one of the most intriguing aspe...
Strand displacement and tile assembly systems are designed to follow prescribed kinetic rules (i.e.,...
The Problem: Recent work addresses the possibility of designing biochemical systems that compute, us...
Information processing at the molecular scale is limited by thermal fluctuations. This can cause und...
The properties and fundamental limits of chemical computers have recently attracted significant inte...
Kinetic proofreading mechanisms explain the extraordinary accuracy observed in central biological ev...
After formulating a nonequilibrium thermodynamics for open chemical reaction networks, the theory wi...
Living systems efficiently use chemical fuel to do work, process information, and assemble patterns ...
The high accuracy exhibited by biological information transcription processes is due to kinetic proo...
Abstract. We show that a rate of conditional Shannon entropy reduction, characterizing the learning ...
peer reviewedThe high accuracy exhibited by biological information transcription processes is due t...
A signature feature of living systems is their ability to produce copies of information-carrying mol...
High accuracy of major biological processes relies on the ability of the participating enzymatic mol...
Information-to-energy conversion with feedback measurement stands as one of the most intriguing aspe...
Can a micron sized sack of interacting molecules understand, and adapt to a constantly-fluctuating e...
Information-to-energy conversion with feedback measurement stands as one of the most intriguing aspe...
Strand displacement and tile assembly systems are designed to follow prescribed kinetic rules (i.e.,...
The Problem: Recent work addresses the possibility of designing biochemical systems that compute, us...
Information processing at the molecular scale is limited by thermal fluctuations. This can cause und...
The properties and fundamental limits of chemical computers have recently attracted significant inte...
Kinetic proofreading mechanisms explain the extraordinary accuracy observed in central biological ev...
After formulating a nonequilibrium thermodynamics for open chemical reaction networks, the theory wi...
Living systems efficiently use chemical fuel to do work, process information, and assemble patterns ...
The high accuracy exhibited by biological information transcription processes is due to kinetic proo...
Abstract. We show that a rate of conditional Shannon entropy reduction, characterizing the learning ...
peer reviewedThe high accuracy exhibited by biological information transcription processes is due t...
A signature feature of living systems is their ability to produce copies of information-carrying mol...
High accuracy of major biological processes relies on the ability of the participating enzymatic mol...
Information-to-energy conversion with feedback measurement stands as one of the most intriguing aspe...
Can a micron sized sack of interacting molecules understand, and adapt to a constantly-fluctuating e...
Information-to-energy conversion with feedback measurement stands as one of the most intriguing aspe...
Strand displacement and tile assembly systems are designed to follow prescribed kinetic rules (i.e.,...
The Problem: Recent work addresses the possibility of designing biochemical systems that compute, us...