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Komatsu, C.

Publications and source records attributed to Komatsu, C..

2 recordsLinked to original sources

Comparative Proteomic Profiling of Receptor Kinase Signaling Reveals Key Trafficking Components Enforcing Plant Stomatal Development

Receptor kinases are pivotal for growth, development, and environmental response of plants. Yet, their regulatory mechanisms and spatial dynamics are still underexplored. The ERECTA-family receptor kinases coordinate diverse developmental processes, including stomatal development. To understand the proteomic landscape of the ERECTA-mediated signaling pathways, we here report comparative analyses of the ERECTA interactome and proximitome by epitope-tagged affinity-purification (ET-AP) and TurboID-based proximity labeling (TbID-PL) mass-spectrometry, respectively. While ET-AP successfully recovered receptor complex components (e.g., TOO MANY MOUTHS), TbID-PL effectively captured transient associations with the components of endosomal trafficking, i.e., clathrin-mediated endocytosis (CME) machinery. We further identify that specific subfamily members of phosphatidylinositol-binding clathrin assembly proteins (PICALMs) interact with and synergistically regulate ERECTA internalization. Mutations of these PICALMs impair ERECTA endocytosis and lead to excessive stomatal clustering by dampening the downstream signaling output. Taken together, our work provides a proteomic atlas of the ERECTA signaling network and suggests that timely removal of receptor kinase by the endocytosis machinery is essential for active signal transduction enforcing stomatal patterning.

plant biology↗

Transfer of cyclobutane pyrimidine dimer photolyase to chloroplasts for Poaceae survival under ultraviolet-B radiation

Cyclobutane pyrimidine dimer (CPD) photolyase (PHR), the primary enzyme for repairing the CPD induced by ultraviolet B (UV-B) radiation, is essential for plants living under sunlight. Rice CPD photolyase (OsPHR), is such a unique triple-targeting protein. The signal sequences required for its translocation to the nucleus or mitochondria are located in the C-terminal region but were yet to be identified for chloroplasts. Here, we identified sequences located in the N-terminal region, including the serine-phosphorylation site at position 7 of OsPHR, and found that OsPHR is transported/localized to chloroplasts via a vesicle transport system under the control of serine phosphorylation. However, the sequence identified in this study is only conserved in some Poaceae species and in many other plants, PHR does not localize to chloroplasts Therefore, we reasoned that Poaceae species need the ability to repair CPD in the chloroplast genome to survive under sunlight and have acquired this new mechanism for chloroplast translocation.

cell biology↗