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Biology subjects

Taylor, G. C. A.

Publications and source records attributed to Taylor, G. C. A..

2 recordsLinked to original sources

Rapid and specific degradation of endogenous proteins in mouse models using auxin-inducible degrons

Auxin-inducible degrons are a chemical genetic tool for targeted protein degradation and are widely used to study protein function in cultured mammalian cells. Here, we develop CRISPR-engineered mouse lines that enable rapid and highly specific degradation of tagged endogenous proteins in vivo. Most but not all cell types are competent for degradation. Using mouse genetics, we show that degradation kinetics depend upon the dose of the tagged protein, ligand, and the E3 ligase subunit Tir1. Rapid degradation of condensin I and condensin II - two essential regulators of mitotic chromosome structure - revealed that both complexes are individually required for cell division in precursor lymphocytes, but not in their differentiated peripheral lymphocyte derivatives. This generalisable approach provides unprecedented temporal control over the dose of endogenous proteins in mouse models, with implications for studying essential biological pathways and modelling drug activity in mammalian tissues. HighlightsO_LIAuxin-inducible degradation of endogenously tagged proteins in living mice and a range of primary cells. C_LIO_LIMost but not all cell types are competent for degradation C_LIO_LIDosage of the tagged protein, E3 ligase substrate receptor and ligand can all determine degradation kinetics C_LIO_LIRapid degradation of condensin subunits in lymphocytes reveals stage-specific requirements during cell division C_LI

genetics↗

Developmental regulation of mitotic chromosome formation revealed by condensin reporter mice

Withdrawal Note: The authors have withdrawn their manuscript due to the discovery of artifacts that call into question key findings from the study. Both artifacts originate from cell-type differences that arose during sample processing, creating the impression that non-SMC subunits of condensin proteins were present at substantially higher levels in thymic T cells compared to bone marrow B cells or erythroblast cells. Based on data collected since the preprint was submitted, we no longer believe this to be true. The experimental artifacts do not affect the data contributed by the Papadopoulos laboratory (Figure 4). The authors wish to make it clear that all data and experimental protocols in the original manuscript were accurately reported, and that the experimental artifacts which affect data interpretation were discovered during internal review, independently of peer review, and are being reported at the authors own instigation. They do not, to our knowledge, affect the interpretation of data from any other published work. Due to the issues outlined above, the authors do not wish this work to be cited as reference for the project. If you have any questions, please contact the corresponding author.

cell biology↗