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Attrill, S. T.

Publications and source records attributed to Attrill, S. T..

2 recordsLinked to original sources

Microtubules and actin filaments direct nuclear movement during the polarisation of Marchantia spore cells

Multicellular organisms typically develop from single cells, the polarity of which establishes the first body axis of the organism. The multicellular haploid stage of land plants develops from a single haploid cell produced by meiosis - the spore. Starting from a non-polar state, these spores develop polarity and divide asymmetrically to establish the first apical-basal axis of the plant body. In the spore of the liverwort, Marchantia polymorpha, we show that the nucleus migrates from the cell centroid to the side of the cell to define the future basal pole. A microtubule organising centre leads this migration by initiating a dense microtubules array towards the cortex at the basal pole. Simultaneously, cortical microtubules disappear from the apical hemisphere but persist near the basal pole. A dense network of fine actin filaments also accumulates between the nucleus and the basal cell cortex. These data demonstrate that microtubules and actin filaments reorganise during the polarisation of the M. polymorpha spore. We speculate that signals orient microtubules and actin filaments during spore polarisation, resulting in the formation of a fine actin filament network between the nucleus and cell cortex that moves the nucleus to the future basal pole. SUMMARY STATEMENTMicrotubules and actin filament dynamics are required for the basal movement of the nucleus which establishes cell asymmetry before cell division in the Marchantia spore.

plant biology↗

KATANIN-mediated microtubule severing is required for MTOC formation and function in Marchantia polymorpha

Microtubule organising centres (MTOCs) are sites of localised microtubule nucleation in eukaryotic cells. Regulation of microtubule dynamics often involves KATANIN (KTN); a microtubule severing enzyme which cuts microtubules to generate new negative ends leading to catastrophic depolymerisation. In Arabidopsis thaliana, KTN is required for the organisation of microtubules in the cell cortex, preprophase band, mitotic spindle and phragmoplast. However, as angiosperms lack MTOCs, the role of KTN in MTOC formation has yet to be studied in plants. Two unique MTOCs - the polar organisers - form on opposing sides of the prophase nucleus in liverworts. Here we show that KTN-mediated microtubule depolymerisation is required for the de novo formation of polar organisers in the liverwort, Marchantia polymorpha. In Mpktn mutants that lack KTN function, the formation, shape, number, and function of polar organisers is defective. This is in addition to defective microtubule organisation in the cell cortex, preprophase band, mitotic spindle, and phragmoplast. These data demonstrate that KTN-mediated microtubule dynamics are required for the formation of liverwort-specific MTOCs.

plant biology↗