English

Optimal Design of a Molecular Recognizer: Molecular Recognition as a Bayesian Signal Detection Problem

Molecular Networks 2010-07-27 v1 Information Theory math.IT Biological Physics

Abstract

Numerous biological functions-such as enzymatic catalysis, the immune response system, and the DNA-protein regulatory network-rely on the ability of molecules to specifically recognize target molecules within a large pool of similar competitors in a noisy biochemical environment. Using the basic framework of signal detection theory, we treat the molecular recognition process as a signal detection problem and examine its overall performance. Thus, we evaluate the optimal properties of a molecular recognizer in the presence of competition and noise. Our analysis reveals that the optimal design undergoes a "phase transition" as the structural properties of the molecules and interaction energies between them vary. In one phase, the recognizer should be complementary in structure to its target (like a lock and a key), while in the other, conformational changes upon binding, which often accompany molecular recognition, enhance recognition quality. Using this framework, the abundance of conformational changes may be explained as a result of increasing the fitness of the recognizer. Furthermore, this analysis may be used in future design of artificial signal processing devices based on biomolecules.

Keywords

Cite

@article{arxiv.1007.4527,
  title  = {Optimal Design of a Molecular Recognizer: Molecular Recognition as a Bayesian Signal Detection Problem},
  author = {Yonatan Savir and Tsvi Tlusty},
  journal= {arXiv preprint arXiv:1007.4527},
  year   = {2010}
}

Comments

Bayesian detection, conformational changes, molecular recognition, specificity. http://www.weizmann.ac.il/complex/tlusty/papers/IEEE2008.pdf

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