4.8 Article

Stable transformation and reverse genetic analysis of Penium margaritaceum: a platform for studies of charophyte green algae, the immediate ancestors of land plants

期刊

PLANT JOURNAL
卷 77, 期 3, 页码 339-351

出版社

WILEY
DOI: 10.1111/tpj.12375

关键词

charophyte; green algae; Penium margaritaceum; pectin; cellulose; plant cell wall; plant evolution; technical advance

资金

  1. US Department of Energy [DOE-FOA 10-0000368]
  2. US National Science Foundation [NSF-MCB 0919925, NSF-DBI 0922805]
  3. Villum Kann Rasmussen Foundation, Denmark
  4. Div Of Biological Infrastructure
  5. Direct For Biological Sciences [1337280] Funding Source: National Science Foundation

向作者/读者索取更多资源

The charophyte green algae (CGA, Streptophyta, Viridiplantae) occupy a key phylogenetic position as the immediate ancestors of land plants but, paradoxically, are less well-studied than the other major plant lineages. This is particularly true in the context of functional genomic studies, where the lack of an efficient protocol for their stable genetic transformation has been a major obstacle. Observations of extant CGA species suggest the existence of some of the evolutionary adaptations that had to occur for land colonization; however, to date, there has been no robust experimental platform to address this genetically. We present a protocol for high-throughput Agrobacterium tumefaciens-mediated transformation of Penium margaritaceum, a unicellular CGA species. The versatility of Penium as a model for studying various aspects of plant cell biology and development was illustrated through non-invasive visualization of protein localization and dynamics in living cells. In addition, the utility of RNA interference (RNAi) for reverse genetic studies was demonstrated by targeting genes associated with cell wall modification (pectin methylesterase) and biosynthesis (cellulose synthase). This provided evidence supporting current models of cell wall assembly and inter-polymer interactions that were based on studies of land plants, but in this case using direct observation in vivo. This new functional genomics platform has broad potential applications, including studies of plant organismal biology and the evolutionary innovations required for transition from aquatic to terrestrial habitats.

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