Biosynthesis of agar in red seaweeds: A review.
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Wei-Kang Lee | P. Namasivayam | Janna Ong Abdullah | C. Ho | A. Leow | Yi-Yi Lim | Y. Lim
[1] D. M. Pharr,et al. Metabolism of Carbohydrates in Sinks and Sources:Galactosyl-Sucrose Oligosaccharides , 2017 .
[2] Wei-Kang Lee,et al. Factors affecting yield and gelling properties of agar , 2016, Journal of Applied Phycology.
[3] Wei-Kang Lee,et al. Agar properties of Gracilaria species (Gracilariaceae, Rhodophyta) collected from different natural habitats in Malaysia , 2016 .
[4] C. Ho. Phylogeny of Algal Sequences Encoding Carbohydrate Sulfotransferases, Formylglycine-Dependent Sulfatases, and Putative Sulfatase Modifying Factors , 2015, Front. Plant Sci..
[5] S. Benjakul,et al. Physico-chemical and gel properties of agar from Gracilaria tenuistipitata from the lake of Songkhla, Thailand , 2015 .
[6] G. Michel,et al. Sweet and sour sugars from the sea: the biosynthesis and remodeling of sulfated cell wall polysaccharides from marine macroalgae , 2015 .
[7] Se-Kwon Kim,et al. Marine algae extracts : processes, products, and applications , 2015 .
[8] T. Tonon,et al. Chemical and enzymatic fractionation of cell walls from Fucales: insights into the structure of the extracellular matrix of brown algae. , 2014, Annals of botany.
[9] W. Zhou,et al. Relationship between gene expression of UDP-glucose pyrophosphorylase and agar yield in Gracilariopsis lemaneiformis (Rhodophyta) , 2014, Journal of Applied Phycology.
[10] Susana M. Coelho,et al. Genome structure and metabolic features in the red seaweed Chondrus crispus shed light on evolution of the Archaeplastida , 2013, Proceedings of the National Academy of Sciences.
[11] C. Ho,et al. Molecular cloning and characterization of GDP-mannose-3′,5′-epimerase from Gracilaria changii , 2013, Journal of Applied Phycology.
[12] C. Ho,et al. MOLECULAR CLONING AND BIOCHEMICAL CHARACTERIZATION OF GALACTOSE‐1‐PHOSPHATE URIDYLYLTRANSFERASE FROM GRACILARIA CHANGII (RHODOPHYTA) 1 , 2012, Journal of phycology.
[13] Sanjay Kumar,et al. Galactans from Gracilaria millardetii and G textorii (Gracilariales, Rhodophyta) of Indian waters , 2011 .
[14] Harris J. Bixler,et al. A decade of change in the seaweed hydrocolloids industry , 2011, Journal of Applied Phycology.
[15] Manoj Kumar,et al. Partial characterization of sulfohydrolase from Gracilaria dura and evaluation of its potential application in improvement of the agar quality , 2011 .
[16] T. Tonon,et al. The cell wall polysaccharide metabolism of the brown alga Ectocarpus siliculosus. Insights into the evolution of extracellular matrix polysaccharides in Eukaryotes. , 2010, The New phytologist.
[17] M. Montaño,et al. Agar from the red seaweed, Laurencia flexilis (Ceramiales, Rhodophyta) from northern Philippines , 2010 .
[18] B. Yan,et al. Cloning and analysis of the galactose-1-phosphate uridylyltransferase (galt) gene of Gracilariopsis lemaneiformis (Rhodophyta) and correlation between gene expression and agar synthesis , 2010, Journal of Applied Phycology.
[19] K. Prasad,et al. Preparation of galactans from Gracilaria debilis and Gracilaria salicornia (Gracilariales, Rhodophyta) of Indian waters , 2010, Journal of Applied Phycology.
[20] B. Kloareg,et al. The Cyclization of the 3,6-Anhydro-Galactose Ring of ι-Carrageenan Is Catalyzed by Two d-Galactose-2,6-Sulfurylases in the Red Alga Chondrus crispus1 , 2009, Plant Physiology.
[21] K. Prasad,et al. Superior quality agar from Gracilaria species (Gracilariales, Rhodophyta) collected from the Gulf of Mannar, India , 2008, Journal of Applied Phycology.
[22] D. Mathews,et al. Molecular characterization of four genes involved in sulfur metabolism in Porphyra purpurea (Roth) C. Agardh , 2008, Journal of Applied Phycology.
[23] S. Arad,et al. Assimilation of sulphur into the cell-wall polysaccharide of the red microalga Porphyridium sp. (Rhodophyta) , 2006 .
[24] D. M. Pharr,et al. Cloning and Expression Analysis of a UDP-Galactose/Glucose Pyrophosphorylase from Melon Fruit Provides Evidence for the Major Metabolic Pathway of Galactose Metabolism in Raffinose Oligosaccharide Metabolizing Plants1 , 2006, Plant Physiology.
[25] Glyn O. Phillips,et al. Food Polysaccharides and Their Applications , 2006 .
[26] Jaroslav Koca,et al. Structures and mechanisms of glycosyltransferases. , 2006, Glycobiology.
[27] Y. Freile-Pelegrín,et al. Agars from three species of Gracilaria (Rhodophyta) from Yucatán Peninsula. , 2005, Bioresource technology.
[28] E. Marinho-Soriano,et al. Polysaccharides from the red seaweed Gracilaria dura (Gracilariales, Rhodophyta). , 2005, Bioresource technology.
[29] P. Dupree,et al. Arabidopsis thaliana expresses multiple Golgi-localised nucleotide-sugar transporters related to GONST1 , 2004, Molecular Genetics and Genomics.
[30] A. Valente,et al. Occurrence of sulfated galactans in marine angiosperms: evolutionary implications. , 2004, Glycobiology.
[31] A. Kivaisi,et al. Standing Stock, Agar Yield and Properties of Gracilaria salicornia Harvested along the Tanzanian Coast , 2004 .
[32] R. Viola,et al. EFFECT OF NUTRIENT DEPRIVATION AND RESUPPLY ON METABOLITES AND ENZYMES RELATED TO CARBON ALLOCATION IN GRACILARIA TENUISTIPITATA (RHODOPHYTA) 1 , 2004 .
[33] E. Marinho-Soriano,et al. Effects of season on the yield and quality of agar from Gracilaria species (Gracilariaceae, Rhodophyta). , 2003, Bioresource technology.
[34] I. Rayment,et al. Structure and Function of Enzymes of the Leloir Pathway for Galactose Metabolism* , 2003, Journal of Biological Chemistry.
[35] H. Kitagawa,et al. Specificities of Three Distinct Human Chondroitin/Dermatan N-Acetylgalactosamine 4-O-Sulfotransferases Demonstrated Using Partially Desulfated Dermatan Sulfate as an Acceptor , 2003, Journal of Biological Chemistry.
[36] E Marinho-Soriano,et al. Agar polysaccharides from Gracilaria species (Rhodophyta, Gracilariaceae). , 2001, Journal of biotechnology.
[37] E. Marinho-Soriano,et al. Seasonal variation in the biomass and agar yield from Gracilaria cervicornis and Hydropuntia cornea from Brazil. , 2001, Bioresource technology.
[38] A. Buléon,et al. STRUCTURE AND DISTRIBUTION OF GLUCOMANNAN AND SULFATED GLUCAN IN THE CELL WALLS OF THE RED ALGA KAPPAPHYCUS ALVAREZII (GIGARTINALES, RHODOPHYTA) , 2000 .
[39] T. Leustek,et al. PATHWAYS AND REGULATION OF SULFUR METABOLISM REVEALED THROUGH MOLECULAR AND GENETIC STUDIES. , 2000, Annual review of plant physiology and plant molecular biology.
[40] D. Robledo,et al. Gelidium robustum agar: Quality characteristics from exploited beds and seasonality from an unexploited bed at Southern Baja California, Mexico , 1999 .
[41] R. Villanueva,et al. Chemical characteristics and gelling properties of agar from two Philippine Gracilaria spp. (Gracilariales, Rhodophyta) , 1999, Journal of Applied Phycology.
[42] F. Goulard,et al. Nucleotides, nucleoside sugars and UDP-glucose-4-epimerase activity in the iota -carrageenophytes Solieria chordalis and Calliblepharis jubata (Rhodophyceae) , 1999 .
[43] M. Sommerfeld,et al. The cell wall chemistry of Bangia atropurpurea (Bangiales, Rhodophyta) and Bostrychia moritziana (Ceramiales, Rhodophyta) from marine and freshwater environments , 1998 .
[44] G. Blunden,et al. Structure and properties of agar from two unexploited agarophytes from Venezuela , 1996, Hydrobiologia.
[45] R. Furneaux,et al. Biosynthesis of agar polysaccharides in Gracilaria chilensis Bird, McLachlan et Oliveira , 1996 .
[46] S. Phang,et al. Studies on Gracilaria changii (Gracilariales, Rhodophyta) from Malaysian mangroves , 1996, Hydrobiologia.
[47] E. Murano. Chemical structure and quality of agars from Gracilaria , 1995, Journal of Applied Phycology.
[48] D. Robledo,et al. Seasonal agar yield and quality inGelidium canariensis (Grunow) Seoane-Camba (Gelidiales, Rhodophyta) from Gran Canaria, Spain , 1995, Journal of Applied Phycology.
[49] D. Kapraun,et al. Karyology and agar analysis of the agarophyteGelidiella acerosa (Forsskål) Feldmannet Hamel from the Philippines , 1994, Journal of Applied Phycology.
[50] B. Santelices,et al. Effects of stock loading and planting distance on the growth and production ofGracilaria chilensis in rope culture , 1993, Journal of Applied Phycology.
[51] A. Elbein,et al. GDP-mannose pyrophosphorylase. Purification to homogeneity, properties, and utilization to prepare photoaffinity analogs. , 1993, The Journal of biological chemistry.
[52] Jingpu Zhang,et al. Some aspects of the growth of Gracilaria tenuistipitata in pond culture , 1993, Hydrobiologia.
[53] R. Pérez,et al. Partial methanolysis of the agar-type sulfated galactan of the red seaweed Laurencia gemmifera. , 1993, Carbohydrate research.
[54] D. Kapraun,et al. Agar yield, quality and standing crop biomass of Gelidium serrulatum, Gelidium floridanum and Pterocladia capillacea in Venezuela , 1991 .
[55] S. Manley,et al. FORMATION OF NUCLEOSIDE DIPHOSPHATE MONOSACCHARIDES (NDP‐SUGARS) BY THE AGAROPHYTE PTEROCLADIA CAPILLACEA (RHODOPHYCEAE) 1 , 1991 .
[56] M. Lahaye,et al. Chemical structure and physico-chemical properties of agar , 1991, Hydrobiologia.
[57] P. Ekman,et al. Effects of altered salinity, darkness and algal nutrient status on floridoside and starch content, α-galactosidase activity and agar yield of cultivated Gracilaria sordida , 1991 .
[58] S. Yu,et al. The α-galactosidase of Gracilaria tenuistipitata and G. sordida (Gracilariales, Rhodophyta) , 1990 .
[59] B. Matsuhiro,et al. Agars fromGracilaria chilensis (Gracilariales) , 1990, Journal of Applied Phycology.
[60] M. Ucko,et al. Relationship between the Unicellular Red Alga Porphyridium sp. and Its Predator, the Dinoflagellate Gymnodinium sp , 1989, Applied and environmental microbiology.
[61] B. Macler. Regulation of Carbon Flow by Nitrogen and Light in the Red Alga, Gelidium coulteri. , 1986, Plant physiology.
[62] M. Lahaye,et al. A new procedure for determining the heterogeneity of agar polymers in the cell walls of Gracilaria spp. (Gracilariaceae, Rhodophyta) , 1986 .
[63] D. M. Pharr,et al. Control of galactosyl‐sugar metabolism in relation to rate of germination , 1983 .
[64] E. Percival. The polysaccharides of green, red and brown seaweeds: Their basic structure, biosynthesis and function , 1979 .
[65] K. Wong,et al. Sulfohydrolase Activity and Carrageenan Biosynthesis in Chondrus crispus (Rhodophyceae). , 1978, Plant physiology.
[66] C. Dawes,et al. AN AUTORADIOGRAPHIC AND HISTOCHEMICAL LOCALIZATION OF SULFATED POLYSACCHARIDES IN EUCHEUMA NUDUM (RHODOPHYTA) 1 , 1976 .
[67] J. Mayes. Purification, properties, and isozyme pattern of galactose-1-phosphate uridyl transferase from calf liver. , 1976, Archives of biochemistry and biophysics.
[68] M. Callow,et al. Studies on the synthesis and composition of extracellular mucilage in the unicellular red alga Rhodella. , 1974, Journal of cell science.
[69] M. Callow,et al. Sulphated polysaccharide synthesis in brown algae , 1973, Planta.
[70] J. Ramus,et al. INCORPORATION OF SULFATE INTO THE CAPSULAR POLYSACCHARIDE OF THE RED ALGA PORPHYRIDIUM , 1972, The Journal of cell biology.
[71] W. Yaphe,et al. The agar polysaccharides of Gracilaria species , 1971 .
[72] W. Yaphe,et al. The structure of agar : Part III. Pyruvic acid, a common feature of agars from different agarophytes , 1971 .
[73] D. Rees,et al. An Enzyme for the Metabolic Control of Polysaccharide Conformation and Function , 1970, Nature.
[74] D. Rees. Enzymic desulphation of porphyran. , 1961, The Biochemical journal.
[75] D. Domozych. Biosynthesis of the Cell Walls of the Algae , 2016 .
[76] K. G. Ramawat,et al. Polysaccharides: Bioactivity and Biotechnology , 2015 .
[77] A. Usov,et al. Polysaccharides of the red algae. , 2011, Advances in carbohydrate chemistry and biochemistry.
[78] V. Morris. 1 – Polysaccharides: their role in food microstructure , 2007 .
[79] T. Kajiwara,et al. Physical and Chemical Characterization of Agar Polysaccharides Extracted from the Thai and Japanese Species of Gracilaria , 2006 .
[80] Elaine Stephens,et al. Resolution of the structural isomers of partially methylesterified oligogalacturonides by polysaccharide analysis using carbohydrate gel electrophoresis. , 2006, Glycobiology.
[81] M. Ragan,et al. Expressed sequence tags (ESTs) from the marine red alga Gracilaria gracilis , 2004, Journal of Applied Phycology.
[82] D. Gibeaut. Nucleotide sugars and glycosyltransferases for synthesis of cell wall matrix polysaccharides , 2000 .
[83] M. Casabianca,et al. Agar from the reproductive and vegetative stages of Gracilaria bursa-pastoris , 1999 .
[84] P. Potin,et al. Evidence of Sulfohydrolase Activity in the Red Alga Calliblepharis jubata , 1997 .
[85] A. Usov,et al. A Modified System of Nomenclature for Red Algal Galactans , 1994 .
[86] M. Sawamura,et al. Effects of thallus age and alkali treatment on pyruvic acid contents of agars from the red alga Gracilaria chorda , 1992 .
[87] Shukun Yu. Enzymes of floridean starch and floridoside degradation in red alge : purification, characterization and physiological studies , 1992 .
[88] S. Yu,et al. The Effect of Salinity Changes on the Activity of α-Galactosidase of the Red Algae Gracilaria sordida and G. tenuistipitata , 1990 .
[89] M. Lahaye,et al. Effects of seasons on the chemical structure and gel strength of Gracilaria pseudoverrucosa agar (Gracilariaceae, rhodophyta) , 1988 .
[90] R. Armisén,et al. Production, properties and uses of agar , 1987 .
[91] G. Ĉoté,et al. Production and Properties of Native Agars from Gracilaria tikvahiae and other Red Algae , 1986 .
[92] P. Harrison,et al. The physiological ecology of seaweeds , 1985 .
[93] S. Hirase. Studies on the Chemical Constitution of Agar-agar. XIX. Pyruvic Acid as a Constituent of Agar-agar (Part 2). Isolation of a Pyruvic Acid-linking Disaccharide Derivative from the Methanolysis Products of Agar , 1957 .