Literature DB >> 16756506

Domains, motifs, and scaffolds: the role of modular interactions in the evolution and wiring of cell signaling circuits.

Roby P Bhattacharyya1, Attila Reményi, Brian J Yeh, Wendell A Lim.   

Abstract

Living cells display complex signal processing behaviors, many of which are mediated by networks of proteins specialized for signal transduction. Here we focus on the question of how the remarkably diverse array of eukaryotic signaling circuits may have evolved. Many of the mechanisms that connect signaling proteins into networks are highly modular: The core catalytic activity of a signaling protein is physically and functionally separable from molecular domains or motifs that determine its linkage to both inputs and outputs. This high degree of modularity may make these systems more evolvable-in principle, novel circuits, and therefore highly innovative regulatory behaviors, can arise from relatively simple genetic events such as recombination, deletion, or insertion. In support of this hypothesis, recent studies show that such modular systems can be exploited to engineer nonnatural signaling proteins and pathways with novel behavior.

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Year:  2006        PMID: 16756506     DOI: 10.1146/annurev.biochem.75.103004.142710

Source DB:  PubMed          Journal:  Annu Rev Biochem        ISSN: 0066-4154            Impact factor:   23.643


  198 in total

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3.  Rewiring kinase specificity with a synthetic adaptor protein.

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6.  Structural biology: The twist in Crk signaling revealed.

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7.  Rule-based modelling and simulation of biochemical systems with molecular finite automata.

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8.  Two hydrophobic residues can determine the specificity of mitogen-activated protein kinase docking interactions.

Authors:  A Jane Bardwell; Lee Bardwell
Journal:  J Biol Chem       Date:  2015-09-14       Impact factor: 5.157

Review 9.  Edgotype: a fundamental link between genotype and phenotype.

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Review 10.  Protein engineering: a new frontier for biological therapeutics.

Authors:  Peter H Tobin; David H Richards; Randolph A Callender; Corey J Wilson
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