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The ubiquitin/26S proteasome pathway is emerging as a widespread mechanism for control of diverse biological reactions, including transcriptional regulation, cell-cycle progression and signal transduction, receptor down-regulation or endocytosis, among others processes1-4. In this pathway, the target protein is tagged by ubiquitin residues which are first attached via a thiolester bond to ubiquitin-activating enzyme E1 and then translocated to a cysteine amino acid residue of ubiquitin-conjugation enzyme E2; finally, E2 interacts with ubiquitin ligase E3, resulting in polyubiquitination of the protein substrate. Ultimately, the polyubiquitinated proteins are recognized and degraded by the 26S proteasome. In this mechanism, the E3 enzyme specifies the substrate and acts as the key regulatory component of the ubiquitin/26S proteasome system (UPS). E3 ligases can act independently, such as RING domain ligases, or as part of a multisubunit SCF (Skp1/Cullin/F-box protein) complex, such as F-box domain ligases. SCF-mediated proteasomal degradation pathways are involved in regulation of transcription, cell cycle, signal transduction5-10 and many other major cellular functions.
Besides these critical roles in regulation of cellular processes, UPS takes the central stage in many plant-pathogen interactions. For example, increasing evidence suggests that several plant pathogens, including Agrobacterium tumefaciens, rely on the host UPS for to facilitate the infection process11. Agrobacterium elicits neoplastic growths on plants, which represent its natural hosts, and it can also transform a wide range of other eukaryotes, from fungi1,2 to human cells12,13. During its infection, Agrobacterium exports a DNA element (T-DNA) and several virulence (Vir) proteins into the host cell12-13. One of these proteins is VirF, the first F-box protein found to be encoded by a prokaryotic genome14. As part of the SCF ubiquitin ligase complex, VirF, and its functional host homolog VBF15, facilitate Agrobacterium infection via the UPS-mediated protein degradation, which presumably facilitates uncoating of the invading bacterial T-DNA from its accompanying bacterial and host proteins, VirE2 and VIP1, respectively16,17. Interestingly, many F-box proteins, including VirF, are intrinsically unstable due to their own proteolysis, which is mediated by autoubiquitination activity18,19 or by other E3 ligases for which F-box proteins may serve as substrates20-23.
When studying biochemical activities of F-box proteins, other ubiquitin ligases, and/or their substrates, it would be very useful to employ a simple and reliable assay for proteasomal degradation. Here we describe one such protocol for analyzing protein stability in a cell-free system. In this assay, the stability of the UPS substrate is analyzed in the presence or absence of one of the essential components of the proteasomal degradation pathway, such as an F-box protein, in a cell-free system. Generally, we express the tested protein(s) in plant tissues, prepare cell-free extracts from these tissues and monitor the amounts of the protein(s) of interest by western blotting. The UPS-dependent mechanism of protein degradation is demonstrated by inclusion of specific proteasomal inhibitors and/or using coexpression of dominant-negative form of an SCF component, Cullin. Whereas we illustrate this assay using proteasomal degradation of the Arabidopsis VIP117 protein by the F-box protein VBF15, it may be employed to investigate the stability of any other proteasomal substrates.