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Arabidopsis Mutants and the Network of M icrotu bu le-Associated Functions 被引量:7
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作者 Henrik Buschmann Clive W. Lloyd 《Molecular Plant》 SCIE CAS CSCD 北大核心 2008年第6期888-898,共11页
In early eukaryotes, the microtubule system was engaged in mitosis, intracellular transport, and flagellumbased motility. In the plant lineage, the evolution of a multicellular body involved the conservation of some c... In early eukaryotes, the microtubule system was engaged in mitosis, intracellular transport, and flagellumbased motility. In the plant lineage, the evolution of a multicellular body involved the conservation of some core functions, the loss of others, and the elaboration of new microtubule functions associated with the multicellular plant habit. This diversification is reflected by the presence of both conserved (animal/fungi-like) and novel (plant-like) sequences encoding microtubule-related functions in the Arabidopsis genome. The collection of microtubule mutants has grown rapidly over recent years. These mutants present a wide range of phenotypes, consistent with the hypothesis of a functional diversification of the microtubule system. In this review, we focus on mutant analysis and, in particular, discuss double mutant analysis as a valuable tool for pinpointing pathways of gene function. A future challenge will be to define the complete network of genetic and physical interactions of microtubule function in plants. In addition to reviewing recent progress in the functional analysis of the 'MAPome', we present an online database of Arabidopsis mutants impaired in microtubule functions. 展开更多
关键词 cell division cell morphogenesis CYTOSKELETON GENETICS development Arabidopsis.
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Plasma Membrane-Associated SCAR Complex Subunits Promote Cortical F-Actin Accumulation and Normal Growth Characteristics in Arabidopsis Roots 被引量:3
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作者 Julia Dyachok Mon-Ray Shao +5 位作者 Kevin Vaughn Andrew Bowling Michelle Facette Stevan Djakovic Lauren Clark Laurie Smith 《Molecular Plant》 SCIE CAS CSCD 北大核心 2008年第6期990-1006,共17页
The ARP2/3 complex, a highly conserved nucleator of F-actin polymerization, and its activator, the SCAR complex, have been shown to play important roles in leaf epidermal cell morphogenesis in Arabidopsis. However, th... The ARP2/3 complex, a highly conserved nucleator of F-actin polymerization, and its activator, the SCAR complex, have been shown to play important roles in leaf epidermal cell morphogenesis in Arabidopsis. However, the intracellular site(s) and function(s) of SCAR and ARP2/3 complex-dependent actin polymerization in plant cells remain unclear. We demonstrate that putative SCAR complex subunits BRK1 and SCAR1 are localized to the plasma membrane at sites of cell growth and wall deposition in expanding cells of leaves and roots. BRK1 localization is SCAR-dependent, providing further evidence of an association between these proteins in vivo. Consistent with plasma membrane localization of SCAR complex subunits, cortical F-actin accumulation in root tip cells is reduced in brkl mutants. Moreover, mutations disrupting the SCAR or ARP2/3 complex reduce the growth rate of roots and their ability to penetrate semi-solid medium, suggesting reduced rigidity. Cell walls of mutant roots exhibit abnormal structure and composition at intercellular junctions where BRK1 and SCAR1 are enriched in the adjacent plasma membrane. Taken together, our results suggest that SCAR and ARP2/3 complex-dependent actin polymerization promotes processes at the plasma membrane that are important for normal growth and wall assembly. 展开更多
关键词 cell expansion cell morphogenesis CYTOSKELETON root biology Arabidopsis.
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Myosin VI.II Regulates Protonemal Patterning and Developmental Timing in the Moss Physcomitrella patens 被引量:1
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作者 Shu-Zon Wu Julie A. Ritchie +2 位作者 Ai-Hong Pan Ralph S. Quatrano Magdalena Bezanilla 《Molecular Plant》 SCIE CAS CSCD 2011年第5期909-921,共13页
Plants have two classes of myosins. While recent work has focused on class XI myosins showing that myosin XI is responsible for organelle motility and cytoplasmic streaming, much less is known about the role of myosin... Plants have two classes of myosins. While recent work has focused on class XI myosins showing that myosin XI is responsible for organelle motility and cytoplasmic streaming, much less is known about the role of myosin VIII in plant growth and development. We have used a combination of RNAi and insertional knockouts to probe myosin VIII function in the moss Physcomitrella patens. We isolated Amyo8ABCDE plants demonstrating that myosin VIII is not required for plant viability. However, myosin VIII mutants are smaller than wild-type plants in part due to a defect in cell size. Additionally, Amyo8ABCDE plants produce more side branches and form gametophores much earlier than wild-type plants. In the ab- sence of nutrient media, Amyo8ABCDE plants exhibit significant protonemal patterning defects, including highly curved protonemal filaments, morphologically defective side branches, as well as an increase in the number of branches. Exogenous auxin partially rescues protonemal defects in Amyo8ABCDE plants grown in the absence of nutrients. This result, together with defects in protonemal branching, smaller caulonemal ceils, and accelerated development in the Amyo8ABCDE plants, suggests that myosin VIII is involved in hormone homeostasis in P patens. 展开更多
关键词 cell division cell expansion cell morphogenesis CYTOSKELETON development.
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PDZ Domain Proteins: 'Dark Matter' of the Plant Proteome?
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作者 John Gardiner Robyn Overall Jan Marc 《Molecular Plant》 SCIE CAS CSCD 2011年第6期933-937,共5页
PDZ domain proteins in metazoans function in diverse roles, and in conjunction with PDZ domain-binding proteins form macromolecular complexes for signaling at synapses and cell junctions. Bioinformatics approaches usi... PDZ domain proteins in metazoans function in diverse roles, and in conjunction with PDZ domain-binding proteins form macromolecular complexes for signaling at synapses and cell junctions. Bioinformatics approaches using the SMART tool indicate there are only a modest number of Arabidopsis PDZ proteins. However, there are hundreds of proteins predicted to possess PDZ domain-binding motifs, suggesting that there are many PDZ domain proteins not detectable by conventional bioinformatic approaches. Our Scansite analysis of PDZ domain-binding proteins indicates that PDZ domain proteins may play key roles in cytoskeletal organization including actin microfilaments, microtubules, and nuclear cytoskeletal proteins, and in the organization of macromolecular complexes involved in cell-to-cell signaling, transport, and cell wall formation. 展开更多
关键词 Signal transduction cell morphogenesis cell signaling cell walls CYTOSKELETON plasmodesmata.
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