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Site-specific C-terminal and internal loop labeling of proteins using sortase-mediated reactions

TLDR
In this paper, the authors describe the expression and purification conditions for two sortase A enzymes that have different recognition sequences and provide a protocol that allows the functionalization of any given protein at its C terminus, or, for select proteins, at an internal site.
Abstract
Methods for site-specific modification of proteins should be quantitative and versatile with respect to the nature and size of the biological or chemical targets involved. They should require minimal modification of the target, and the underlying reactions should be completed in a reasonable amount of time under physiological conditions. Sortase-mediated transpeptidation reactions meet these criteria and are compatible with other labeling methods. Here we describe the expression and purification conditions for two sortase A enzymes that have different recognition sequences. We also provide a protocol that allows the functionalization of any given protein at its C terminus, or, for select proteins, at an internal site. The target protein is engineered with a sortase-recognition motif (LPXTG) at the place where modification is desired. Upon recognition, sortase cleaves the protein between the threonine and glycine residues, facilitating the attachment of an exogenously added oligoglycine peptide modified with the functional group of choice (e.g., fluorophore, biotin, protein or lipid). Expression and purification of sortase takes ∼3 d, and sortase-mediated reactions take only a few minutes, but reaction times can be extended to increase yields.

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Morphogenesis Guided by 3D Patterning of Growth Factors in Biological Matrices

TL;DR: A 2PP system based on nonfouling hydrophilic photocages and Sortase A (SA)‐based enzymatic coupling is presented, which offers unprecedented orthogonality and signal‐to‐noise ratio in both inert hydrogels and complex mammalian matrices, thus helping to better understand biological guidance in tissue development and regeneration.
Journal ArticleDOI

Tyrosinase-Mediated Oxidative Coupling of Tyrosine Tags on Peptides and Proteins

TL;DR: Generating the o-quinone electrophiles from tyrosine allows greater flexibility in choosing the nucleophilic coupling partner, and expands the scope of the reaction to include C-terminal positions.
Journal ArticleDOI

Stochastic geometry sensing and polarization in a lipid kinase–phosphatase competitive reaction

TL;DR: Experiments and kinetic modeling reveal how geometric confinement effects arise from a mechanism based on stochastic fluctuations in the copy number of membrane-bound kinases and phosphatases, and the underlying requirements for such behavior are unexpectedly simple and likely to occur in natural biological signaling systems.
Journal ArticleDOI

Broadening the scope of sortagging

TL;DR: An overview about the use of sortase A in interdisciplinary research, mainly for protein modification, synthesis of protein–polymer conjugates and immobilization of proteins on surfaces is provided.
References
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Journal ArticleDOI

HaloTag: A Novel Protein Labeling Technology for Cell Imaging and Protein Analysis

TL;DR: The utility of this modular protein tagging system for cellular imaging and protein immobilization is demonstrated by analyzing multiple molecular processes associated with NF-kappaB-mediated cellular physiology, including imaging of subcellular protein translocation and capture of protein--protein and protein--DNA complexes.
Journal ArticleDOI

A general method for the covalent labeling of fusion proteins with small molecules in vivo

TL;DR: A general method for the covalent labeling of fusion proteins in vivo that complements existing methods for noncovalentlabeling of proteins and that may open up new ways of studying proteins in living cells is described.
Journal ArticleDOI

Staphylococcus aureus Sortase, an Enzyme that Anchors Surface Proteins to the Cell Wall

TL;DR: The protein specified by srtA, sortase, may be a useful target for the development of new antimicrobial drugs.
Journal ArticleDOI

An Engineered Protein Tag for Multiprotein Labeling in Living Cells

TL;DR: The generation of an AGT-based tag is reported, named CLIP-tag, which reacts specifically with O2-benzylcytosine derivatives, which is derived from the human DNA repair protein O6-alkylguanine-DNA alkyltransferase (AGT).
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