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Fisher, T. J.

Publications and source records attributed to Fisher, T. J..

2 recordsLinked to original sources

Carbon availability acts via cytokinins to promote gemma cup formation in Marchantia polymorpha

Liverworts can clonally propagate by producing compact shoot structures called gemmae, which develop within basket-like structures known as gemma cups. It was previously reported in Marchantia nepalensis that carbon availability promotes gemma cup formation. However, the mechanisms by which carbon availability controls this process remains largely unexplored. To address this knowledge gap, we investigated how carbon promotes gemma cup formation using Marchantia polymorpha as a model species. Through a series of pharmacological and genetic experiments, we found that carbon availability promotes gemma cup formation by inducing the cytokinin pathway, thereby increasing the expression of MpGCAM1 and MpSTG, which encode two transcription factors involved in forming the basal floor of gemma cups. Indeed, our data show that cytokinins accumulate in marchantia thallus in response to sucrose and to high light treatments. In addition, constitutive induction of cytokinin signalling could overcome the repressive effect of low sucrose on gemma cup formation, whereas suppression of this hormonal pathway led to inhibition of sucrose-induced gemma cup formation. Furthermore, our results indicate that sucrose can induce gemma cup formation independently of KAI2A and MAX2, two molecular components of karrikin signalling known to control this developmental process by inducing cytokinin synthesis. Interestingly, in flowering plants, carbon availability also promotes cytokinin accumulation to induce axillary bud outgrowth, a process involving the transcription factors AtRAX and AtLOF1, the Arabidopsis thaliana orthologues of MpGCAM1 and MpSTG, respectively. Collectively, these observations indicate that the interactions between carbon and cytokinins are critical for the developmental plasticity of land plants in response to their environment.

plant biology↗

The role of IAA and its transport in the complex streptophyte algae Chara braunii

The role of auxin indole-3-acetic acid (IAA), a phytohormone with numerous morphogenic functions, is now well-established in land plants. Although the role of IAA and its transport in algae remains unclear, PIN-driven auxin export is probably an ancient and conserved trait within Streptophytes. Among streptophyte algae, Chara represents a genus with a considerable degree of complexity in body arrangement. This study investigates the auxin response and characterizes homologs of land plant PIN auxin efflux carriers in Chara braunii. Through regeneration experiments, we observed that IAA significantly promotes elongation of thallus and side branch development upon thallus tip decapitation, indicating an effect on morphogenesis. We show that IAA is actively uptaken and metabolized by thallus cells and that this process is influenced by N-1-naphthylphthalamic acid (NPA). To elucidate the underlying mechanisms, we cloned and sequenced the most expressed Chara braunii PINs, CbPINa and CbPINc. Using epitope-specific antibodies, we showed their presence in the plasma membrane (PM) of vegetative internodal cells and generative antheridial cells. Functional tests in tobacco BY-2 cells, supported by in silico docking of IAA and NPA to CbPINa and CbPINc, showed that PM-localized CbPINa interferes with auxin transport in contrast to ER-localized CbPINc. Finally, our phosphoproteome analysis indicated that IAA rapidly induces specific phosphorylation events, including RAF-like kinase phosphorylation, highlighting a potential role for IAA in fast signaling processes in Chara braunii. Altogether, we provide new insights into IAA role in Chara braunii morphogenesis and suggest that while the canonical auxin transport mechanism may not be conserved, auxin still may likely play a role in rapid signaling pathways in this close relative of land plants.

plant biology↗