Regulation of gametogenesis and zoosporogenesis in Ulva linza (Chlorophyta): comparison with Ulva mutabilis and potential for laboratory culture
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[1] Guangce Wang,et al. A Strategy for the Proliferation of Ulva prolifera, Main Causative Species of Green Tides, with Formation of Sporangia by Fragmentation , 2010, PloS one.
[2] Jonas Dahl,et al. Bioenergy potential of Ulva lactuca: biomass yield, methane production and combustion. , 2011, Bioresource technology.
[3] The Arabidopsis Genome Initiative. Analysis of the genome sequence of the flowering plant Arabidopsis thaliana , 2000, Nature.
[4] Thomas Wichard,et al. GAMETOGENESIS AND GAMETE RELEASE OF ULVA MUTABILIS AND ULVA LACTUCA (CHLOROPHYTA): REGULATORY EFFECTS AND CHEMICAL CHARACTERIZATION OF THE “SWARMING INHIBITOR” 1 , 2010 .
[5] Philip N Benfey,et al. Beyond Arabidopsis. Translational Biology Meets Evolutionary Developmental Biology , 2004, Plant Physiology.
[6] Adriana Zingone,et al. Green and golden seaweed tides on the rise , 2013, Nature.
[7] Brigitte Courtois,et al. Genetic control of root development in rice, the model cereal. , 2010, Trends in plant science.
[8] N. Paul,et al. Methods for the Induction of Reproduction in a Tropical Species of Filamentous Ulva , 2014, PloS one.
[9] A. Oliphant,et al. A draft sequence of the rice genome (Oryza sativa L. ssp. japonica). , 2002, Science.
[10] L. Fries. Some observations on the morphology of Enteromorpha linza (L.) J. Ag. And Enteromorpha compressa (L.) Grev. in axenic culture , 1975 .
[11] T. Nelson,et al. ARE “GREEN TIDES” HARMFUL ALGAL BLOOMS? TOXIC PROPERTIES OF WATER‐SOLUBLE EXTRACTS FROM TWO BLOOM‐FORMING MACROALGAE, ULVA FENESTRATA AND ULVARIA OBSCURA (ULVOPHYCEAE) , 2003 .
[12] Olivier De Clerck,et al. Research note: Identity of the Qingdao algal bloom , 2009 .
[14] M. V. van Hoek. Biofilms , 2013, Virulence.
[15] Z. Ramezanpour,et al. Chemical compositions of the marine algae Gracilaria salicornia (Rhodophyta) and Ulva lactuca (Chlorophyta) as a potential food source. , 2012, Journal of the science of food and agriculture.
[16] S. Shimada,et al. A new green‐tide‐forming alga, Ulva ohnoi Hiraoka et Shimada sp. nov. (Ulvales, Ulvophyceae) from Japan , 2004 .
[17] A. Loevlie. GENETIC CONTROL OF DIVISION RATE AND MORPHOGENESIS IN ULVA MUTABILIS FOEYN. , 1964, Comptes-rendus des travaux du Laboratoire Carlsberg.
[18] K. Mayer,et al. Exploring the genomes: from Arabidopsis to crops. , 2011, Journal of plant physiology.
[19] N. Ye,et al. Activities of principal photosynthetic enzymes in green macroalga Ulva linza: functional implication of C4 pathway in CO2 assimilation , 2013, Science China Life Sciences.
[20] Hans Berglund,et al. Stimulation of Growth of Two Marine Green Algae by Organic Substances Excreted by Enteromorpha linza in Unialgal and Axenic Cultures , 1969 .
[21] T. Girin,et al. Brachypodium: a promising hub between model species and cereals. , 2014, Journal of experimental botany.
[22] J. Bennetzen,et al. The Physcomitrella Genome Reveals Evolutionary Insights into the Conquest of Land by Plants , 2008, Science.
[23] C. O'kelly,et al. Molecular and morphological diversity of Narragansett Bay (RI, USA) Ulva (Ulvales, Chlorophyta) populations , 2013, Journal of phycology.
[24] Huanming Yang,et al. A Draft Sequence of the Rice Genome (Oryza sativa L. ssp. indica) , 2002, Science.
[25] Hiroyuki Noda,et al. The main seaweed foods in Japan , 1987, Hydrobiologia.
[26] Thomas Wichard,et al. Growth and Thallus Morphogenesis of Ulva mutabilis (Chlorophyta) Depends on A Combination of Two Bacterial Species Excreting Regulatory Factors , 2012, Journal of phycology.
[27] X. Draye,et al. Post-embryonic root organogenesis in cereals: branching out from model plants. , 2013, Trends in plant science.
[28] Michael S. Barker,et al. The Selaginella Genome Identifies Genetic Changes Associated with the Evolution of Vascular Plants , 2011, Science.
[29] H. Kasai,et al. Isolation and phylogenetic characterization of bacteria capable of inducing differentiation in the green alga Monostroma oxyspermum. , 2003, Environmental microbiology.
[30] C. Buell,et al. Arabidopsis to Rice. Applying Knowledge from a Weed to Enhance Our Understanding of a Crop Species1 , 2004, Plant Physiology.
[31] G. Nilsen,et al. A sporulation-inhibiting substance from vegetative thalli of the green alga Ulva mutabilis, Føyn , 1975, Planta.
[32] I. Joint,et al. Effect of Marine Bacterial Isolates on the Growth and Morphology of Axenic Plantlets of the Green Alga Ulva linza , 2006, Microbial Ecology.
[33] W. Oertel,et al. DIFFERENTIATION OF ULVA MUTABILIS (CHLOROPHYTA) GAMETANGIA AND GAMETE RELEASE ARE CONTROLLED BY EXTRACELLULAR INHIBITORS 1 , 1996 .
[34] Maureen E. Callow,et al. The Ulva Spore Adhesive System , 2006 .
[35] S. Kuegler,et al. Prevalence and mechanism of polyunsaturated aldehydes production in the green tide forming macroalgal genus Ulva (Ulvales, Chlorophyta). , 2014, Chemistry and physics of lipids.
[36] M. Stanhope,et al. Novel morphology in Enteromorpha (Ulvophyceae) forming green tides. , 2002, American journal of botany.
[37] J. Huisman. Green Seaweeds of Britain and Ireland , 2008 .