Bioorthogonal chemistry has had a major impact on the study of biological processes in vivo. Biomolecules of interest can be tracked by using probes and reporters that do not react with cellular components and do not interfere with metabolic processes in living cells. Much time and effort has been devoted to the screening of potential bioorthogonal reagents experimentally. This Account describes how our groups have performed computational screening of reactivity and mutual orthogonality. Our collaborations with experimentalists have led to the development of new and useful reactions. Dozens of bioorthogonal cycloadditions have been reported in the literature in the past few years, but as interest in tracking multiple targets arises, our com...
Density functional theory (DFT) calculations and experiments in tandem led to discoveries of new rea...
The azide–dibenzocyclooctyne and <i>trans</i>-cyclooctene–tetrazine cycloadditions are both bioortho...
Heteroaromatic azadienes, especially 1,2,4,5-tetrazines, are extremely reactive partners with alkene...
Chemical tools are transforming our understanding of biomolecules and living systems. Included in th...
Expanding the scope of bioorthogonal reactivity requires access to new and mutually compatible reage...
Bioorthogonal chemistries are reactions that are designed to proceed in living environments without ...
Expanding the scope of bioorthogonal reactivity requires access to new and mutually compatible reage...
Expanding the scope of bioorthogonal reactivity requires access to new and mutually compatible reage...
Labelling a biomolecule in vivo or building a bioconjugate in vitro requires the use of very selecti...
Bioorthogonal chemistries are reactions that are designed to proceed in living environments without ...
Density functional theory (DFT) calculations and experiments in tandem led to discoveries of new rea...
The 1,3-dipolar cycloaddition and Diels-Alder reaction have been applied countless times in syntheti...
The bioorthogonal chemical reporter strategy provides a method for selectively labeling biomolecules...
Density functional theory (DFT) calculations and experiments in tandem led to discoveries of new rea...
Density functional theory (DFT) calculations and experiments in tandem led to discoveries of new rea...
Density functional theory (DFT) calculations and experiments in tandem led to discoveries of new rea...
The azide–dibenzocyclooctyne and <i>trans</i>-cyclooctene–tetrazine cycloadditions are both bioortho...
Heteroaromatic azadienes, especially 1,2,4,5-tetrazines, are extremely reactive partners with alkene...
Chemical tools are transforming our understanding of biomolecules and living systems. Included in th...
Expanding the scope of bioorthogonal reactivity requires access to new and mutually compatible reage...
Bioorthogonal chemistries are reactions that are designed to proceed in living environments without ...
Expanding the scope of bioorthogonal reactivity requires access to new and mutually compatible reage...
Expanding the scope of bioorthogonal reactivity requires access to new and mutually compatible reage...
Labelling a biomolecule in vivo or building a bioconjugate in vitro requires the use of very selecti...
Bioorthogonal chemistries are reactions that are designed to proceed in living environments without ...
Density functional theory (DFT) calculations and experiments in tandem led to discoveries of new rea...
The 1,3-dipolar cycloaddition and Diels-Alder reaction have been applied countless times in syntheti...
The bioorthogonal chemical reporter strategy provides a method for selectively labeling biomolecules...
Density functional theory (DFT) calculations and experiments in tandem led to discoveries of new rea...
Density functional theory (DFT) calculations and experiments in tandem led to discoveries of new rea...
Density functional theory (DFT) calculations and experiments in tandem led to discoveries of new rea...
The azide–dibenzocyclooctyne and <i>trans</i>-cyclooctene–tetrazine cycloadditions are both bioortho...
Heteroaromatic azadienes, especially 1,2,4,5-tetrazines, are extremely reactive partners with alkene...