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Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
Genome-wide surveys for phosphorylation-dependent substrates of SCF ubiquitin ligases
Xiaojing Tang1, Stephen Orlicky, Qingquan Liu
1Samuel Lunenfeld Research Institute, Mount Sinai Hospital, Toronto, Ontario, USA.
Abstract:
The SCF (Skp1-Cullin-F-box) family of ubiquitin ligases target numerous substrates for ubiquitin-dependent proteolysis, including cell cycle regulators, transcription factors, and signal transducers. Substrates are recruited to an invariant core SCF complex through one of a large family of substrate-specific adapter subunits called F-box proteins, each of which binds multiple specific substrates, often in a phosphorylation-dependent manner. The identification of substrates for SCF complexes has proven difficult, especially given the requirement of often complex phosphorylation events for substrate recognition. The archetype for such interactions is the binding of the yeast F-box protein Cdc4 to its various substrates by means of multiple motifs that weakly match an optimal consensus called the Cdc4 phosphodegron (CPD), which is phosphorylated by cyclin-dependent kinases (CDKs) and possibly other kinases. Provided phosphodegron recognition motifs and/or the targeting kinases for SCF substrates are delineated, it is possible to use genome-wide methods to identify new substrates. Here we describe two methods for the systematic retrieval of SCF substrates based on membrane arrays of synthetic phosphopeptides and on genome-wide kinase substrate profiles. In the first approach, which identifies substrates with strong matches to the CPD, a search of the predicted yeast proteome with the optimal CPD motif identified approximately 1100 matches. A phosphopeptide membrane array corresponding to each of these sequences is then probed with recombinant Cdc4, thereby identifying potential substrates. In the second approach, which identifies substrates that lack strong CPD motifs, a genome-wide set of recombinant CDK substrates is phosphorylated and directly assayed for binding to Cdc4. The proteins corresponding to these hits from each approach can then be subjected to the more stringent criteria of phosphorylation-dependent binding to Cdc4, ubiquitination by SCF(Cdc4)in vitro, and Cdc4-dependent protein instability in vivo. Both methods have identified novel substrates of Cdc4 and may, in principle, be used to identify numerous new substrates of other SCF and SCF-like complexes from yeast to humans.
Insights
Researchers developed two new methods to identify substrates for SCF ubiquitin ligase complexes. These approaches systematically identify novel protein targets, advancing our understanding of protein degradation and cell regulation.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- SCF (Skp1-Cullin-F-box) complexes are ubiquitin ligases crucial for targeted protein degradation.
- Identifying SCF substrates is challenging due to complex, often phosphorylation-dependent, recognition mechanisms.
- The Cdc4 phosphodegron (CPD) motif, recognized by the F-box protein Cdc4, exemplifies substrate recognition.
Purpose of the Study:
- To develop and validate systematic, genome-wide methods for identifying novel SCF substrates.
- To overcome challenges in substrate recognition, particularly phosphorylation-dependent binding.
- To enable the discovery of substrates for SCF complexes across species.
Main Methods:
- Developed two genome-wide approaches: phosphopeptide membrane arrays and kinase substrate profiling.
- Method 1: Probed arrays of synthetic phosphopeptides matching the CPD motif with recombinant Cdc4.
- Method 2: Assayed binding of Cdc4 to phosphorylated, genome-wide kinase substrates lacking strong CPD motifs.
Main Results:
- Identified approximately 1100 potential yeast proteome matches to the CPD motif.
- Both methods successfully identified novel substrates for the SCF(Cdc4) complex.
- Validated hits through phosphorylation-dependent binding, in vitro ubiquitination, and in vivo instability assays.
Conclusions:
- The developed methods provide a systematic strategy for SCF substrate identification.
- These approaches can be applied to discover substrates for other SCF and SCF-like complexes in various organisms.
- This work significantly expands the toolkit for studying ubiquitin-proteasome system substrates.

