4.6 Article

A Genetically Encoded Isonitrile Lysine for Orthogonal Bioorthogonal Labeling Schemes

Journal

MOLECULES
Volume 26, Issue 16, Pages -

Publisher

MDPI
DOI: 10.3390/molecules26164988

Keywords

non-canonical amino acid (ncAA); genetic code expansion (GCE); orthogonal-bioorthogonal; dual colour labeling; self-labeling peptide tag (SLPT); HaloTag

Funding

  1. National Research, Development and Innovation Office of Hungary [K-131439, K-128011, PD-123955]
  2. Eotvos Lorand Research Network [KEP-10/2020]

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Bioorthogonal click-reactions are ideal for selectively labeling biomolecules with small synthetic dyes, and genetic code expansion facilitates the specific installation of bioorthogonal handles on proteins of interest. The introduction of bioorthogonalized non-canonical amino acids is a minimally perturbing approach to studying proteins in their native environment. Developing orthogonal bioorthogonal reactions for simultaneous modification of biomolecules has become a focus, with recent advancements allowing for efficient genetic incorporation of a new non-canonical amino acid for protein labeling in live and fixed mammalian cells.
Bioorthogonal click-reactions represent ideal means for labeling biomolecules selectively and specifically with suitable small synthetic dyes. Genetic code expansion (GCE) technology enables efficient site-selective installation of bioorthogonal handles onto proteins of interest (POIs). Incorporation of bioorthogonalized non-canonical amino acids is a minimally perturbing means of enabling the study of proteins in their native environment. The growing demand for the multiple modification of POIs has triggered the quest for developing orthogonal bioorthogonal reactions that allow simultaneous modification of biomolecules. The recently reported bioorthogonal [4 + 1] cycloaddition reaction of bulky tetrazines and sterically demanding isonitriles has prompted us to develop a non-canonical amino acid (ncAA) bearing a suitable isonitrile function. Herein we disclose the synthesis and genetic incorporation of this ncAA together with studies aiming at assessing the mutual orthogonality between its reaction with bulky tetrazines and the inverse electron demand Diels-Alder (IEDDA) reaction of bicyclononyne (BCN) and tetrazine. Results showed that the new ncAA, bulky-isonitrile-carbamate-lysine (BICK) is efficiently and specifically incorporated into proteins by genetic code expansion, and despite the slow [4 + 1] cycloaddition, enables the labeling of outer membrane receptors such as insulin receptor (IR) with a membrane-impermeable dye. Furthermore, double labeling of protein structures in live and fixed mammalian cells was achieved using the mutually orthogonal bioorthogonal IEDDA and [4 + 1] cycloaddition reaction pair, by introducing BICK through GCE and BCN through a HaloTag technique.

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