Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Global mapping of the energetic and allosteric landscapes of protein binding domains

View through CrossRef
Abstract Allosteric communication between distant sites in proteins is central to nearly all biological regulation but still poorly characterised for most proteins, limiting conceptual understanding, biological engineering and allosteric drug development. Typically only a few allosteric sites are known in model proteins, but theoretical, evolutionary and some experimental studies suggest they may be much more widely distributed. An important reason why allostery remains poorly characterised is the lack of methods to systematically quantify long-range communication in diverse proteins. Here we address this shortcoming by developing a method that uses deep mutational scanning to comprehensively map the allosteric landscapes of protein interaction domains. The key concept of the approach is the use of ‘multidimensional mutagenesis’: mutational effects are quantified for multiple molecular phenotypes—here binding and protein abundance—and in multiple genetic backgrounds. This is an efficient experimental design that allows the underlying causal biophysical effects of mutations to be accurately inferred en masse by fitting thermodynamic models using neural networks. We apply the approach to two of the most common human protein interaction domains, an SH3 domain and a PDZ domain, to produce the first global atlases of allosteric mutations for any proteins. Allosteric mutations are widely dispersed with extensive long-range tuning of binding affinity and a large mutational target space of network-altering ‘edgetic’ variants. Mutations are more likely to be allosteric closer to binding interfaces, at Glycines in secondary structure elements and at particular sites including a chain of residues connecting to an opposite surface in the PDZ domain. This general approach of quantifying mutational effects for multiple molecular phenotypes and in multiple genetic backgrounds should allow the energetic and allosteric landscapes of many proteins to be rapidly and comprehensively mapped.
Title: Global mapping of the energetic and allosteric landscapes of protein binding domains
Description:
Abstract Allosteric communication between distant sites in proteins is central to nearly all biological regulation but still poorly characterised for most proteins, limiting conceptual understanding, biological engineering and allosteric drug development.
Typically only a few allosteric sites are known in model proteins, but theoretical, evolutionary and some experimental studies suggest they may be much more widely distributed.
An important reason why allostery remains poorly characterised is the lack of methods to systematically quantify long-range communication in diverse proteins.
Here we address this shortcoming by developing a method that uses deep mutational scanning to comprehensively map the allosteric landscapes of protein interaction domains.
The key concept of the approach is the use of ‘multidimensional mutagenesis’: mutational effects are quantified for multiple molecular phenotypes—here binding and protein abundance—and in multiple genetic backgrounds.
This is an efficient experimental design that allows the underlying causal biophysical effects of mutations to be accurately inferred en masse by fitting thermodynamic models using neural networks.
We apply the approach to two of the most common human protein interaction domains, an SH3 domain and a PDZ domain, to produce the first global atlases of allosteric mutations for any proteins.
Allosteric mutations are widely dispersed with extensive long-range tuning of binding affinity and a large mutational target space of network-altering ‘edgetic’ variants.
Mutations are more likely to be allosteric closer to binding interfaces, at Glycines in secondary structure elements and at particular sites including a chain of residues connecting to an opposite surface in the PDZ domain.
This general approach of quantifying mutational effects for multiple molecular phenotypes and in multiple genetic backgrounds should allow the energetic and allosteric landscapes of many proteins to be rapidly and comprehensively mapped.

Related Results

Review on allosteric modulators of dopamine receptors so far
Review on allosteric modulators of dopamine receptors so far
AbstractBackgroundContemporary research is predominantly directed towards allosteric modulators, a class of compounds designed to interact with specific sites distinct from the ort...
Causality, Transfer Entropy and Allosteric Communication Landscapes in Proteins with Harmonic Interactions
Causality, Transfer Entropy and Allosteric Communication Landscapes in Proteins with Harmonic Interactions
Abstract A fast and approximate method of generating allosteric communication landscapes is presented by using Schreiber's entropy transfer concept in combination w...
Allosteric Site Prediction Using Protein Language Models and Orthosteric Conditioning
Allosteric Site Prediction Using Protein Language Models and Orthosteric Conditioning
Abstract Allosteric modulators as therapeutics offer many advantages over orthosteric modulators, including improved selectivity and tunability. However, identifyin...
Computational analysis of long-range allosteric communications in CFTR
Computational analysis of long-range allosteric communications in CFTR
Abstract Malfunction of the CFTR protein results in cystic fibrosis, one of the most common hereditary diseases. CFTR functions as an anion channel, the gating of w...
Allosteric and Energetic Remodeling by Protein Domain Extensions
Allosteric and Energetic Remodeling by Protein Domain Extensions
Abstract Many functions of proteins are performed by independently folding structural units called domains. The structures of domains are conserved during evolution...
Allosteric regulation of kinase activity in living cells
Allosteric regulation of kinase activity in living cells
Abstract The dysregulation of protein kinases is associated with multiple diseases due to the kinases’ involvement in a variety of cell signaling pathways. Manipula...
Allosteric regulation of kinase activity in living cells
Allosteric regulation of kinase activity in living cells
Abstract The dysregulation of protein kinases is associated with multiple diseases due to the kinases’ involvement in a variety of cell signaling pathways. Manipula...
Allosteric regulation of kinase activity in living cells
Allosteric regulation of kinase activity in living cells
Abstract The dysregulation of protein kinases is associated with multiple diseases due to the kinases’ involvement in a variety of cell signaling pathways. Manipula...

Back to Top