Will a DNA barcoding approach be useful to identify Porphyra species (Bangiales, Rhodophyta)?
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[1] Michael D. Guiry,et al. AlgaeBase. World-wide electronic publication , 2013 .
[2] N. Baeshen,et al. Biological Identifications Through DNA Barcodes , 2012 .
[3] G. Saunders,et al. DNA barcoding reveals multiple overlooked Australian species of the red algal order Rhodymeniales (Florideophyceae), with resurrection of Halopeltis J. Agardh and description of Pseudohalopeltis gen. nov , 2010 .
[4] G. Saunders,et al. A DNA barcode examination of the Laminariaceae (Phaeophyceae) in Canada reveals novel biogeographical and evolutionary insights , 2010 .
[5] L. le Gall,et al. DNA BARCODING IS A POWERFUL TOOL TO UNCOVER ALGAL DIVERSITY: A CASE STUDY OF THE PHYLLOPHORACEAE (GIGARTINALES, RHODOPHYTA) IN THE CANADIAN FLORA 1 , 2010 .
[6] G. Saunders,et al. A comparison of two DNA barcode markers for species discrimination in the red algal family Kallymeniaceae (Gigartinales, Florideophyceae), with a description of Euthora timburtonii sp. nov. , 2010 .
[7] G. Saunders. Routine DNA barcoding of Canadian Gracilariales (Rhodophyta) reveals the invasive species Gracilaria vermiculophylla in British Columbia , 2009, Molecular ecology resources.
[8] J. Brodie,et al. BIODIVERSITY OF CORALLINE ALGAE IN THE NORTHEASTERN ATLANTIC INCLUDING CORALLINA CAESPITOSA SP. NOV. (CORALLINOIDEAE, RHODOPHYTA) 1 , 2009, Journal of phycology.
[9] A. Sherwood,et al. A molecular method for identification of the morphologically plastic invasive algal genera Eucheuma and Kappaphycus (Rhodophyta, Gigartinales) in Hawaii , 2009, Journal of Applied Phycology.
[10] G. Presting,et al. Contrasting intra versus interspecies DNA sequence variation for representatives of the Batrachospermales (Rhodophyta): Insights from a DNA barcoding approach , 2008 .
[11] S. R. Matioli,et al. Group I introns and associated homing endonuclease genes reveals a clinal structure for Porphyra spiralis var. amplifolia (Bangiales, Rhodophyta) along the Eastern coast of South America , 2008, BMC Evolutionary Biology.
[12] G. Presting,et al. Application of universally amplifying plastid primers to environmental sampling of a stream periphyton community , 2008, Molecular ecology resources.
[13] G. Saunders,et al. Assigning morphological variants of Fucus (Fucales, Phaeophyceae) in Canadian waters to recognized species using DNA barcoding , 2008 .
[14] G. Saunders. A DNA barcode examination of the red algal family Dumontiaceae in Canadian waters reveals substantial cryptic species diversity. 1. The foliose Dilsea - Neodilsea complex and Weeksia , 2008 .
[15] J. Brodie,et al. Making the links: towards a global taxonomy for the red algal genus Porphyra (Bangiales, Rhodophyta) , 2008, Journal of Applied Phycology.
[16] S. Lindstrom. Cryptic diversity, biogeography and genetic variation in Northeast Pacific species of Porphyra sensu lato (Bangiales, Rhodophyta) , 2008, Journal of Applied Phycology.
[17] M. Nei,et al. MEGA4: Molecular Evolutionary Genetics Analysis (MEGA) software version 4.0. , 2007, Molecular biology and evolution.
[18] G. Presting,et al. UNIVERSAL PRIMERS AMPLIFY A 23S rDNA PLASTID MARKER IN EUKARYOTIC ALGAE AND CYANOBACTERIA 1 , 2007 .
[19] P. Hebert,et al. bold: The Barcode of Life Data System (http://www.barcodinglife.org) , 2007, Molecular ecology notes.
[20] J. Brodie,et al. New insights into the cryptic diversity of the North Atlantic–Mediterranean ‘ Porphyra leucosticta ’ complex: P. olivii sp. nov. and P. rosengurttii (Bangiales, Rhodophyta) , 2007 .
[21] S. Ratnasingham,et al. BOLD : The Barcode of Life Data System (www.barcodinglife.org) , 2007 .
[22] Rapeeporn Ruangchuay,et al. Reproductive Strategy and Occurence of Gametophytes of Thai Laver Porphyra vietnamensis Tanaka et Pham-Hoang Ho (Bangiales, Rhodophyta) from Songkhla Province , 2007 .
[23] P. Hebert,et al. bold: The Barcode of Life Data System (http://www.barcodinglife.org) , 2007, Molecular ecology notes.
[24] G. Presting. Identification of conserved regions in the plastid genome: implications for DNA barcoding and biological function , 2006 .
[25] G. Barker,et al. Assessing the use of the mitochondrial cox1 marker for use in DNA barcoding of red algae (Rhodophyta). , 2006, American journal of botany.
[26] G. Saunders,et al. Applying DNA barcoding to red macroalgae: a preliminary appraisal holds promise for future applications , 2005, Philosophical Transactions of the Royal Society B: Biological Sciences.
[27] M. C. de Oliveira,et al. Molecular phylogeny of Bangiales (Rhodophyta) based on small subunit rDNA sequencing: emphasis on Brazilian Porphyra species , 2005 .
[28] J. Cannone,et al. A molecular phylogenetic analysis of the Bangiales (Rhodophyta) and description of a new genus and species, Pseudobangia kaycoleia , 2005 .
[29] M. Kimura. A simple method for estimating evolutionary rates of base substitutions through comparative studies of nucleotide sequences , 1980, Journal of Molecular Evolution.
[30] I. Levine,et al. Molecular features of a defined genetic marker for the determination of the Porphyra tenera lineage , 2003, Journal of Applied Phycology.
[31] D. Hill,et al. Species recognition in New Zealand Porphyra using 18S rDNA sequencing , 1999, Journal of Applied Phycology.
[32] Y. Aruga,et al. Rapid DNA extraction from conchocelis and ITS-1 rDNA sequences of seven strains of cultivated Porphyra yezoensis (Bangiales, Rhodophyta) , 2004, Journal of Applied Phycology.
[33] N. Turner. The ethnobotany of edible seaweed (Porphyra abbottae and related species; Rhodophyta: Bangiales) and its use by First Nations on the Pacific Coast of Canada , 2003 .
[34] A. Mathieson,et al. PORPHYRA BIRDIAE SP. NOV. (BANGIALES, RHODOPHYTA): A NEW SPECIES FROM THE NORTHWEST ATLANTIC , 2002 .
[35] C. Yarish,et al. A reassessment of the taxonomic status of Porphyra suborbiculata, Porphyra carolinensis and Porphyra lilliputiana (Bangiales, Rhodophyta) based on molecular and morphological data , 2002 .
[36] E. Oliveira,et al. Porphyra drewiana, a new species of red algae (Bangiales, Rhodophyta) from Brazil , 2001 .
[37] N. Butterfield,et al. Bangiomorpha pubescens n. gen., n. sp.: implications for the evolution of sex, multicellularity, and the Mesoproterozoic/Neoproterozoic radiation of eukaryotes , 2000, Paleobiology.
[38] G. Burger,et al. A mitochondrial marker for red algal intraspecific relationships , 1999, Molecular ecology.
[39] T. A. Hall,et al. BIOEDIT: A USER-FRIENDLY BIOLOGICAL SEQUENCE ALIGNMENT EDITOR AND ANALYSIS PROGRAM FOR WINDOWS 95/98/ NT , 1999 .
[40] T. Crease,et al. Biogeography and systematics of Bangia (Bangiales, Rhodophyta) based on the Rubisco spacer, rbcL gene and 18S rRNA gene sequences and morphometric analyses. 1. North America , 1998 .
[41] R. Gutell,et al. A preliminary investigation of the order Bangiales (Bangiophycidae, Rhodophyta) based on sequences of nuclear small‐subunit ribosomal RNA genes , 1995 .
[42] J. Thompson,et al. CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. , 1994, Nucleic acids research.
[43] M. Ragan,et al. Variant forms of a group I intron in nuclear small-subunit rRNA genes of the marine red alga Porphyra spiralis var. amplifolia. , 1994, Molecular biology and evolution.
[44] J. Stiller,et al. MOLECULAR ANALYSIS REVEALS CRYPTIC DIVERSITY IN PORPHYRA (RHODOPHYTA) 1 , 1993 .
[45] Oliveira Filho,et al. Algas marinhas bentônicas do Brasil , 1977 .
[46] E. C. Filho,et al. The Genus Porphyra C. Ag. (Rhodophyta-Bangiales) in the American South Atlantic. II. Uruguayan Species , 1976 .
[47] J. Coll,et al. The C. Ag. (Rhodophyta-Bangiales) in the American South Atlantic. I. Brazilian Species , 1975 .
[48] K. Drew. Conchocelis-Phase in the Life-History of Porphyra umbilicalis (L.) Kütz. , 1949, Nature.