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Suetsugu, N.

Publications and source records attributed to Suetsugu, N..

3 recordsLinked to original sources

Evolutionary acquisition of a primitive light-dependent nuclear relocation in Marchantia polymorpha

The terrestrialization of plants was accompanied by exposure to several environmental stresses. Adaptation to these stresses required numerous changes at the cellular and molecular level. One such adaptation in the leaves of Arabidopsis thaliana is the movement of cell nuclei to avoid UV damage. In the dark, the nuclei locate to the bottom walls of leaf cells to distance genetic material from external stresses, but in response to intense blue light (an indication of the presence of UV), they move to the side walls to escape UV-induced DNA damage1. The movement is driven by the photoreceptor phototropin and the actin cytoskeleton2. However, how this protective mechanism evolved in land plants remains unclear. Here, we show that in the liverwort Marchantia polymorpha, nuclei show a similar, but less stable movement in response to intense blue light. In the dark, M. polymorpha positioned nuclei on the upper walls of epidermal cells in young thalli, but in response to intense blue light, the nuclei immediately moved to the side walls, similar to A. thaliana. However, the movement was transient and the nuclei returned to the upper walls through both the actin and microtubule cytoskeletons. Unlike A. thaliana, M. polymorpha responded to prolonged (> 1 day) exposure to low light by moving nuclei from the upper to the side walls through both the actin and microtubule cytoskeletons and two photoreceptors (phototropin and phytochrome). However, no light-dependent nuclear relocation was observed in charophyte algae, suggesting that light-dependent nuclear relocation was initially established in the common ancestor of land plants as a result of terrestrialization and then diverged during land plant evolution.

plant biology↗

Regulation of Plant Phototropic Growth by NPH3/RPT2-like Substrate Phosphorylation and 14-3-3 Binding

Polarity underlies all plant physiology and directional growth responses such as phototropism. Yet, our understanding of how plant tropic responses are established is far from complete. The plasma-membrane associated BTB-containing protein, NON-PHOTOTROPIC HYPOCOTYL 3 (NPH3) is a key determinant of phototropic growth which is regulated by AGC kinases known as the phototropins (phots). However, the mechanism by which phots initiate phototropic signalling via NPH3, and other NPH3/RPT2-like (NRL) members, has remained unresolved. Here we demonstrate that NPH3 is directly phosphorylated by phot1 both in vitro and in vivo. Light-dependent phosphorylation within a conserved consensus sequence (RxS) located at the extreme C-terminus of NPH3 is necessary to promote its functionality for phototropism and petiole positioning in Arabidopsis. Phosphorylation of this region by phot1 also triggers 14-3-3 binding combined with changes in NPH3 phosphorylation and localisation status. Seedlings expressing mutants of NPH3 that are unable to bind or constitutively bind 14-3-3s show compromised functionality that is consistent with a model where signalling outputs arising from a gradient in NPH3 RxS phosphorylation/localisation across the stem are a major contributor to phototropic responsiveness. Our current findings provide further evidence that 14-3-3 proteins are instrumental components regulating auxin-dependent growth and show for the first time that NRL proteins are direct phosphorylation targets for plant AGC kinases. Moreover, the C-terminal phosphorylation site/14-3-3-binding motif of NPH3 is conserved in several members of the NRL family, suggesting a common mechanism of regulation.

plant biology↗

CHLOROPLAST UNUSUAL POSITIONING 1 is a new type of actin nucleation factor in plants

Plants have evolved unique responses to fluctuating light conditions in their environment. One such response, chloroplast photorelocation movement, optimizes photosynthesis under weak light and prevents photodamage under strong light. CHLOROPLAST UNUSUAL POSITIONING 1 (CHUP1) plays a pivotal role in the light-responsive chloroplast movements, which are driven by dynamic reorganization of chloroplast actin (cp-actin) filaments. In this study, we demonstrated that fluorescently tagged CHUP1 colocalized and was coordinately reorganized with cp-actin filaments during chloroplast movement in Arabidopsis thaliana. The resulting asymmetric distribution of CHUP1 was reversibly regulated by the blue light receptor phototropin. X-ray crystallography indicated that the CHUP1 C-terminal domain shares structural similarity with the formin homology 2 (FH2) domain, although there is no sequence similarity between the two domains. The CHUP1 C-terminal domain stimulated actin polymerization in the presence of profilin. We conclude that CHUP1 is a novel, plant-specific actin nucleator that functions in cp-actin-based chloroplast movement. HighlightsO_LIBlue light changes the distribution pattern of CHUP1 C_LIO_LIFormin FH2 and CHUP1 C-terminal domains are structurally similar but not homologous C_LIO_LICHUP1 nucleates and severs actin filaments in vitro C_LIO_LICHUP1 is a novel, plant-specific actin nucleator for chloroplast movement C_LI

plant biology↗