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MicroID2: A Novel Biotin Ligase Enables Rapid Proximity-Dependent Proteomics

Identifying protein–protein and other proximal interactions is central to dissecting signaling and regulatory processes in cells. BioID is a proximity-dependent biotinylation method that uses an “abortive” biotin ligase to detect proximal interactions in cells in a highly reproducible manner. Recent...

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Autores principales: Johnson, Benjamin S., Chafin, Lexie, Farkas, Daniela, Adair, Jessica, Elhance, Ajit, Farkas, Laszlo, Bednash, Joseph S., Londino, James D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9293651/
https://www.ncbi.nlm.nih.gov/pubmed/35688383
http://dx.doi.org/10.1016/j.mcpro.2022.100256
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author Johnson, Benjamin S.
Chafin, Lexie
Farkas, Daniela
Adair, Jessica
Elhance, Ajit
Farkas, Laszlo
Bednash, Joseph S.
Londino, James D.
author_facet Johnson, Benjamin S.
Chafin, Lexie
Farkas, Daniela
Adair, Jessica
Elhance, Ajit
Farkas, Laszlo
Bednash, Joseph S.
Londino, James D.
author_sort Johnson, Benjamin S.
collection PubMed
description Identifying protein–protein and other proximal interactions is central to dissecting signaling and regulatory processes in cells. BioID is a proximity-dependent biotinylation method that uses an “abortive” biotin ligase to detect proximal interactions in cells in a highly reproducible manner. Recent advancements in proximity-dependent biotinylation tools have improved efficiency and timing of labeling, allowing for measurement of interactions on a cellular timescale. However, issues of size, stability, and background labeling of these constructs persist. Here we modified the structure of BioID2, derived from Aquifex aeolicus BirA, to create a smaller, highly active, biotin ligase that we named MicroID2. Truncation of the C terrminus of BioID2 and addition of mutations to alleviate blockage of biotin/ATP binding at the active site of BioID2 resulted in a smaller and highly active construct with lower background labeling. Several additional point mutations improved the function of our modified MicroID2 construct compared with BioID2 and other biotin ligases, including TurboID and miniTurbo. MicroID2 is the smallest biotin ligase reported so far (180 amino acids [AAs] for MicroID2 versus 257 AAs for miniTurbo and 338 AAs for TurboID), yet it demonstrates only slightly less labeling activity than TurboID and outperforms miniTurbo. MicroID2 also had lower background labeling than TurboID. For experiments where precise temporal control of labeling is essential, we in addition developed a MicroID2 mutant, termed lbMicroID2 (low background MicroID2), that has lower labeling efficiency but significantly reduced biotin scavenging compared with BioID2. Finally, we demonstrate utility of MicroID2 in mass spectrometry experiments by localizing MicroID2 constructs to subcellular organelles and measuring proximal interactions.
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spelling pubmed-92936512022-07-20 MicroID2: A Novel Biotin Ligase Enables Rapid Proximity-Dependent Proteomics Johnson, Benjamin S. Chafin, Lexie Farkas, Daniela Adair, Jessica Elhance, Ajit Farkas, Laszlo Bednash, Joseph S. Londino, James D. Mol Cell Proteomics Research Identifying protein–protein and other proximal interactions is central to dissecting signaling and regulatory processes in cells. BioID is a proximity-dependent biotinylation method that uses an “abortive” biotin ligase to detect proximal interactions in cells in a highly reproducible manner. Recent advancements in proximity-dependent biotinylation tools have improved efficiency and timing of labeling, allowing for measurement of interactions on a cellular timescale. However, issues of size, stability, and background labeling of these constructs persist. Here we modified the structure of BioID2, derived from Aquifex aeolicus BirA, to create a smaller, highly active, biotin ligase that we named MicroID2. Truncation of the C terrminus of BioID2 and addition of mutations to alleviate blockage of biotin/ATP binding at the active site of BioID2 resulted in a smaller and highly active construct with lower background labeling. Several additional point mutations improved the function of our modified MicroID2 construct compared with BioID2 and other biotin ligases, including TurboID and miniTurbo. MicroID2 is the smallest biotin ligase reported so far (180 amino acids [AAs] for MicroID2 versus 257 AAs for miniTurbo and 338 AAs for TurboID), yet it demonstrates only slightly less labeling activity than TurboID and outperforms miniTurbo. MicroID2 also had lower background labeling than TurboID. For experiments where precise temporal control of labeling is essential, we in addition developed a MicroID2 mutant, termed lbMicroID2 (low background MicroID2), that has lower labeling efficiency but significantly reduced biotin scavenging compared with BioID2. Finally, we demonstrate utility of MicroID2 in mass spectrometry experiments by localizing MicroID2 constructs to subcellular organelles and measuring proximal interactions. American Society for Biochemistry and Molecular Biology 2022-06-08 /pmc/articles/PMC9293651/ /pubmed/35688383 http://dx.doi.org/10.1016/j.mcpro.2022.100256 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research
Johnson, Benjamin S.
Chafin, Lexie
Farkas, Daniela
Adair, Jessica
Elhance, Ajit
Farkas, Laszlo
Bednash, Joseph S.
Londino, James D.
MicroID2: A Novel Biotin Ligase Enables Rapid Proximity-Dependent Proteomics
title MicroID2: A Novel Biotin Ligase Enables Rapid Proximity-Dependent Proteomics
title_full MicroID2: A Novel Biotin Ligase Enables Rapid Proximity-Dependent Proteomics
title_fullStr MicroID2: A Novel Biotin Ligase Enables Rapid Proximity-Dependent Proteomics
title_full_unstemmed MicroID2: A Novel Biotin Ligase Enables Rapid Proximity-Dependent Proteomics
title_short MicroID2: A Novel Biotin Ligase Enables Rapid Proximity-Dependent Proteomics
title_sort microid2: a novel biotin ligase enables rapid proximity-dependent proteomics
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9293651/
https://www.ncbi.nlm.nih.gov/pubmed/35688383
http://dx.doi.org/10.1016/j.mcpro.2022.100256
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