ReviewAnnals of botany2006
Cytoskeleton and morphogenesis in brown algae.
Review in Annals of botany, 2006. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 16 papers.
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Who cites it
16 citing papers in PubMed, 65 citations in OpenAlex.
- Calpains as Potential Regulators of Microtubule-Associated Cytokinesis: A Cross-Eukaryotic Unifying Hypothesis.Life (Basel, Switzerland) · 2026Article
- 3-D Growth: the diversity of strategies in brown algae.Annals of botany · 2025Review
- Longitudinal growth of the Saccharina kelp embryo depends on actin filaments that control the formation of a corset-like structure composed of alginate.Scientific reports · 2025Article
- F-Actin Organization and Epidermal Cell Morphogenesis in the Brown AlgaInternational journal of molecular sciences · 2023Article
- At the Nexus between Cytoskeleton and Vacuole: How Plant Cytoskeletons Govern the Dynamics of Large Vacuoles.International journal of molecular sciences · 2023Review
- Review
- The brown algal mode of tip growth: Keeping stress under control.PLoS biology · 2019Article
- Stomatal Complex Development and F-Actin Organization in Maize Leaf Epidermis Depend on Cellulose Synthesis.Molecules (Basel, Switzerland) · 2018Article
- The role of the cytoskeleton in biomineralisation in haptophyte algae.Scientific reports · 2017Article
- Morphoelasticity in the development of brown algaJournal of the Royal Society, Interface · 2017Article
- Ultrastructural and structural characterization of zygotes and embryos during development in Sargassum cymosum (Phaeophyceae, Fucales).Protoplasma · 2015Article
- Exploring the evolutionary history of centrosomes.Philosophical transactions of the Royal Society of London. Series B, Biological sciences · 2014Review
- Brown algal morphogenesis: atomic force microscopy as a tool to study the role of mechanical forces.Frontiers in plant science · 2014Article
- Dynamic microtubules and endomembrane cycling contribute to polarity establishment and early development of Ectocarpus mitospores.Protoplasma · 2013Article
- Auxin metabolism and function in the multicellular brown alga Ectocarpus siliculosus.Plant physiology · 2010Article
- Cytoplasmic inheritance of organelles in brown algae.Journal of plant research · 2010Review
Corrections and comments
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Authors and funding
3 authors at 1 institution in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
backgroundMorphogenesis on a cellular level includes processes in which cytoskeleton and cell wall expansion are strongly involved. In brown algal zygotes, microtubules (MTs) and actin filaments (AFs) participate in polarity axis fixation, cell division and tip growth. Brown algal vegetative cells lack a cortical MT cytoskeleton, and are characterized by centriole-bearing centrosomes, which function as microtubule organizing centres. SCOPE: Extensive electron microscope and immunofluorescence studies of MT organization in different types of brown algal cells have shown that MTs constitute a major cytoskeletal component, indispensable for cell morphogenesis. Apart from participating in mitosis and cytokinesis, they are also involved in the expression and maintenance of polarity of particular cell types. Disruption of MTs after Nocodazole treatment inhibits cell growth, causing bulging and/or bending of apical cells, thickening of the tip cell wall, and affecting the nuclear positioning. Staining of F-actin using Rhodamine-Phalloidin, revealed a rich network consisting of perinuclear, endoplasmic and cortical AFs. AFs participate in mitosis by the organization of an F-actin spindle and in cytokinesis by an F-actin disc. They are also involved in the maintenance of polarity of apical cells, as well as in lateral branch initiation. The cortical system of AFs was found related to the orientation of cellulose microfibrils (MFs), and therefore to cell wall morphogenesis. This is expressed by the coincidence in the orientation between cortical AFs and the depositing MFs. Treatment with cytochalasin B inhibits mitosis and cytokinesis, as well as tip growth of apical cells, and causes abnormal deposition of MFs.
conclusionsBoth the cytoskeletal elements studied so far, i.e. MTs and AFs are implicated in brown algal cell morphogenesis, expressed in their relationship with cell wall morphogenesis, polarization, spindle organization and cytokinetic mechanism. The novelty is the role of AFs and their possible co-operation with MTs.
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Registered trials
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