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Proteins interact within an intricate hierarchical network and form complexes that play a pivotal role in nearly all biological processes occurring in an unpredictable cellular environment. However, from plant development to growth responses, there has been a lack of convenient tools that can not only quickly but also efficiently identify and monitor these dynamic signaling events at the subcellular level.
The transient protein expression system in tobacco leaf epidermis has appealing advantages for visualizing fluorescent proteins in living cells. This system provides semi-in vivo conditions that allow post-translational protein modification and quick examination of protein localization. By examining the complemented YFP signal, the bimolecular fluorescent complementation (BiFC) assay informs the possibility of protein-protein interaction in plant cells. Compared to other methods, e.g., yeast-two hybrid (Y2H) and co-immunoprecipitation (Co-IP), BiFC also provides a powerful means of visualizing compartments where protein-protein interactions may occur at the subcellular level.
Because asymmetric cell division (ACD) maintains stem cell population while generating new cell types for tissue/organ formation, it is an indispensable mechanism for promoting eukaryotic multicellularity. Arabidopsis stomatal development has been used as a model system for studying ACD in plants. The precursor cell, meristemoid mother cell, divides asymmetrically to produce two different daughter cells, a meristemoid (undergoes stem cell-like divisions before terminating into a pair of guard cells) and a stomatal lineage ground cell (SLGC) (may divide and differentiate into a pavement cell), respectively (Figure 1). In stomatal ACD, the novel protein Breaking of Asymmetry in the Stomatal Lineage (BASL) is polarized premitotically to drive division asymmetries, which include physical asymmetry and cell fate asymmetry1. A MAPK cascade composed of the MAPKKK YODA and the MAPKs, MPK3 and 6 is central for stomatal division patterning and fate adoption2,3, 4,5.
Recently, Zhang et al. linked the polarity protein BASL to the YDA-MAPK signaling pathway in Arabidopsis stomatal ACD 6. The canonical YODA-MAPK pathway, through MPK3/6, phosphorylates BASL and activates its polarization. Phosphorylated BASL functions as a scaffold and recruits YODA (YDA) and MPK3/6 to form a protein complex and concentrate the signaling at the cell cortex6. Polarization of the MAPK components and the positive feedback loop between BASL and the YDA-MAPK pathway represents a novel mechanism for protein polarization in plant cells. Locally enriched MAPK signaling is hypothesized to be closely linked to cell fate differentiation in stomatal ACD6 (Figure 1). One of the key experimental data that supported this model came from the tobacco assays that demonstrated the spatial redistribution of MAPKs induced by the expression of BASL6.
In general, it is not easy to monitor where MAPK signaling occurs because MAPK molecules were often found everywhere inside of a cell. In this study, we utilized the split-YFP system to visualize the interaction between the upstream kinase and downstream ones to suggest where the signaling relay occurs. We further extended the use of the BiFC system by co-expressing a third protein (CFP-tagged) with the split YFP pair (suggestive of protein-protein interaction) to visualize whether and how the complemented YFP could be spatially modulated by the co-expressed CFP protein. By doing so, we demonstrated that co-expression of CFP-BASL induced spatial reorganization of interactions between YDA and MPK6, from even distribution to polarized patterning at the cell cortex of the tobacco epidermal cells. This system therefore has the potential to be developed for monitoring dynamic signaling events in plant cells under conditions when cells are challenged by the internal or external stimuli (e.g., co-expression of other proteins, chemical application, pathogen attack or environmental changes, etc.).