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Split-BioID: a conditional proteomics approach for high resolution proteomics
ORGANISM(S): Homo sapiens (Human) 
2017-06-01 | PXD005005 | Pride
The in vivo labeling technique Split-Biotin identification (Split-BioID, De Munter et al., 2017, Schopp et al., 2017, Cho et al., 2020) was used to capture the common microenvironment of Bre5 and the ribosomal protein Rps2 (uS5). Biotinylated proteins were enriched from cell lysates using affinity p...
ORGANISM(S): Saccharomyces cerevisiae (Baker's yeast) 
2021-11-10 | PXD028879 | Pride
Proximity-dependent labelling (PL) methods are based on promiscuous labeling enzymes that produce reactive molecules that covalently bind neighbor proteins. Labeled proteins can be then purified and identified using affinity-purification coupled to mass spectrometry methods39. Proximity-dependent bi...
ORGANISM(S): Homo sapiens (Human) 
2021-09-20 | PXD021770 | Pride
Proximity-dependent labelling (PL) methods are based on promiscuous labeling enzymes that produce reactive molecules that covalently bind neighbor proteins. Labeled proteins can be then purified and identified using affinity-purification coupled to mass spectrometry methods39. Proximity-dependent bi...
ORGANISM(S): Homo sapiens (Human) 
2021-09-20 | PXD021809 | Pride
Proximity-dependent labelling methods are based on promiscuous labeling enzymes that produce reactive molecules that covalently bind neighbor proteins. Labeled proteins can be then purified and identified using affinity-purification coupled to mass spectrometry methods23. Proximity-dependent biotin ...
ORGANISM(S): Homo sapiens (Human) 
2021-09-20 | PXD027759 | Pride
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