Impact of the Allium Genomes on Plant Breeding

[1]  N. Van Roy,et al.  Tandem repeats of Allium fistulosum associated with major chromosomal landmarks , 2017, Molecular Genetics and Genomics.

[2]  R. Crowhurst,et al.  The Onion (Allium cepa L.) R2R3-MYB Gene MYB1 Regulates Anthocyanin Biosynthesis , 2016, Front. Plant Sci..

[3]  Jung Sun Kim,et al.  Construction of a draft reference transcripts of onion (Allium cepa) using long-read sequencing , 2016, Plant Biotechnology Reports.

[4]  E. Y. Kim,et al.  Identification of two novel mutant ANS alleles responsible for inactivation of anthocyanidin synthase and failure of anthocyanin production in onion (Allium cepa L.) , 2016, Euphytica.

[5]  Xingjin He,et al.  Molecular phylogeny, divergence time estimates and historical biogeography within one of the world's largest monocot genera , 2016, AoB PLANTS.

[6]  Tae-Jin Yang,et al.  Completion of the mitochondrial genome sequence of onion (Allium cepa L.) containing the CMS-S male-sterile cytoplasm and identification of an independent event of the ccmFN gene split , 2016, Current Genetics.

[7]  Zdenka Sitova,et al.  Allium telomeres unmasked: the unusual telomeric sequence (CTCGGTTATGGG)n is synthesized by telomerase. , 2016, The Plant journal : for cell and molecular biology.

[8]  Yul-Kyun Ahn,et al.  Single Nucleotide Polymorphisms and Indel Markers from the Transcriptome of Garlic , 2016 .

[9]  Jiming Jiang,et al.  High-resolution tyramide-FISH mapping of markers tightly linked to the male-fertility restoration (Ms) locus of onion , 2016, Theoretical and Applied Genetics.

[10]  D. Choi,et al.  Identification of candidate genes associated with fertility restoration of cytoplasmic male-sterility in onion (Allium cepa L.) using a combination of bulked segregant analysis and RNA-seq , 2015, Theoretical and Applied Genetics.

[11]  M. Havey,et al.  Tyramide-FISH mapping of single genes for development of an integrated recombination and cytogenetic map of chromosome 5 of Allium cepa. , 2015, Genome.

[12]  R. Kamenetsky,et al.  Integrated transcriptome catalogue and organ-specific profiling of gene expression in fertile garlic (Allium sativum L.) , 2015, BMC Genomics.

[13]  H. Kanamori,et al.  Development of transcriptome shotgun assembly-derived markers in bunching onion (Allium fistulosum) , 2015, Molecular Breeding.

[14]  T. Yang,et al.  Comparative analysis of the complete chloroplast genome sequences of a normal male-fertile cytoplasm and two different cytoplasms conferring cytoplasmic male sterility in onion (Allium cepaL.) , 2015 .

[15]  D. Choi,et al.  Integrative structural annotation of de novo RNA-Seq provides an accurate reference gene set of the enormous genome of the onion (Allium cepa L.) , 2014, DNA research : an international journal for rapid publication of reports on genes and genomes.

[16]  Tae-Jin Yang,et al.  Characterization of three active transposable elements recently inserted in three independent DFR-A alleles and one high-copy DNA transposon isolated from the Pink allele of the ANS gene in onion (Allium cepa L.) , 2015, Molecular Genetics and Genomics.

[17]  Hong Zhao,et al.  RNA-Seq Reveals Leaf Cuticular Wax-Related Genes in Welsh Onion , 2014, PloS one.

[18]  M. Havey,et al.  Quantitative Trait Loci Controlling Amounts and Types of Epicuticular Waxes in Onion , 2014 .

[19]  Sònia Garcia,et al.  Plant rDNA database: update and new features , 2014, Database J. Biol. Databases Curation.

[20]  L. Khrustaleva,et al.  GISH study of advanced generation of the interspecific hybrids between Allium cepa L. and Allium fistulosum L. with relative resistance to downy mildew , 2014, Russian Journal of Genetics.

[21]  Sunggil Kim A codominant molecular marker in linkage disequilibrium with a restorer-of-fertility gene (Ms) and its application in reevaluation of inheritance of fertility restoration in onions , 2014, Molecular Breeding.

[22]  B. Bohanec,et al.  Genetic analyses of anthocyanin concentrations and intensity of red bulb color among segregating haploid progenies of onion , 2014, Molecular Breeding.

[23]  Xingjin He,et al.  Phylogenetic reappraisal of Allium subgenus Cyathophora (Amaryllidaceae) and related taxa, with a proposal of two new sections , 2013, Journal of Plant Research.

[24]  M. Havey,et al.  Sequencing and annotation of the chloroplast DNAs and identification of polymorphisms distinguishing normal male-fertile and male-sterile cytoplasms of onion. , 2013, Genome.

[25]  Sunggil Kim,et al.  At least nine independent natural mutations of the DFR-A gene are responsible for appearance of yellow onions (Allium cepa L.) from red progenitors , 2013, Molecular Breeding.

[26]  J. Bennetzen,et al.  Young, intact and nested retrotransposons are abundant in the onion and asparagus genomes. , 2013, Annals of botany.

[27]  M. Havey Single Nucleotide Polymorphisms in Linkage Disequilibrium with the Male-fertility Restoration (Ms) Locus in Open-pollinated and Inbred Populations of Onion , 2013 .

[28]  B. Patil,et al.  Development of a codominant CAPS marker linked to the Ms locus controlling fertility restoration in onion (Allium cepa L.) , 2013 .

[29]  A. Chan,et al.  Transcriptome sequencing to produce SNP-based genetic maps of onion , 2013, Theoretical and Applied Genetics.

[30]  B. Patil,et al.  Construction of high-resolution linkage map of the Ms locus, a restorer-of-fertility gene in onion (Allium cepa L.) , 2012, Euphytica.

[31]  H. Kitano,et al.  Identification of two SCAR markers co-segregated with the dominant Ms and recessive ms alleles in onion (Allium cepa L.) , 2012, Euphytica.

[32]  Jinji Shono,et al.  Chromosomal Organization and Sequence Diversity of Genes Encoding Lachrymatory Factor Synthase in Allium cepa L. , 2012, G3: Genes | Genomes | Genetics.

[33]  J. McCallum,et al.  Development of robust genomic simple sequence repeat markers for estimation of genetic diversity within and among bulb onion (Allium cepa L.) populations , 2012, Molecular Breeding.

[34]  L. Terry,et al.  Physiological, biochemical and transcriptional analysis of onion bulbs during storage. , 2012, Annals of botany.

[35]  M. Shigyo,et al.  Alien genes introgression and development of alien monosomic addition lines from a threatened species, Allium roylei Stearn, to Allium cepa L. , 2012, Theoretical and Applied Genetics.

[36]  Takuro Ito,et al.  Random BAC FISH of monocot plants reveals differential distribution of repetitive DNA elements in small and large chromosome species , 2011, Plant Cell Reports.

[37]  M. Shigyo,et al.  Production of novel alloplasmic male sterile lines in Allium cepa harbouring the cytoplasm from Allium roylei , 2011 .

[38]  I. Chung,et al.  Molecular genetic diversity and population structure of a selected core set in garlic and its relatives using novel SSR markers , 2011 .

[39]  A. Khar,et al.  Microsatellite marker based analysis of genetic diversity in short day tropical Indian onion and cross amplification in related Allium spp. , 2011, Genetic Resources and Crop Evolution.

[40]  B. Patil,et al.  Development of simple PCR-based markers linked to the Ms locus, a restorer-of-fertility gene in onion (Allium cepa L.) , 2011, Euphytica.

[41]  Y. Yu,et al.  Phylogeny and biogeography of Allium (Amaryllidaceae: Allieae) based on nuclear ribosomal internal transcribed spacer and chloroplast rps16 sequences, focusing on the inclusion of species endemic to China. , 2010, Annals of botany.

[42]  Sunggil Kim,et al.  Comparison of mitochondrial and chloroplast genome segments from three onion (Allium cepa L.) cytoplasm types and identification of a trans-splicing intron of cox2 , 2010, Current Genetics.

[43]  J. Jakše,et al.  Origins of Allium ampeloprasum horticultural groups and a molecular phylogeny of the section Allium (Allium: Alliaceae). , 2010, Molecular phylogenetics and evolution.

[44]  Y. Tashiro,et al.  Development of microsatellite markers in cultivated and wild species of sections Cepa and Phyllodolon in Allium , 2010, Euphytica.

[45]  T. Ohara,et al.  Inheritance mode of male sterility in bunching onion (Allium fistulosum L.) accessions , 2010, Euphytica.

[46]  Sunggil Kim,et al.  Identification of two novel inactive DFR-A alleles responsible for failure to produce anthocyanin and development of a simple PCR-based molecular marker for bulb color selection in onion (Allium cepa L.) , 2009, Theoretical and Applied Genetics.

[47]  G. Fiskesjö Chromosomal relationships between three species of Allium as revealed by C-banding , 2009 .

[48]  G. Vivero Resistance to Fusarium basal rot and response to arbuscular mycorrhizal fungi in Allium , 2009 .

[49]  B. Patil,et al.  Identification of a novel chimeric gene, orf725, and its use in development of a molecular marker for distinguishing among three cytoplasm types in onion (Allium cepa L.) , 2009, Theoretical and Applied Genetics.

[50]  Andrew C. Clarke,et al.  Genetic Diversity Analysis and Single-nucleotide Polymorphism Marker Development in Cultivated Bulb Onion Based on Expressed Sequence Tag–Simple Sequence Repeat Markers , 2008 .

[51]  H. Kanamori,et al.  Construction of SSR-based chromosome map in bunching onion (Allium fistulosum) , 2008, Theoretical and Applied Genetics.

[52]  C. Town,et al.  Pilot sequencing of onion genomic DNA reveals fragments of transposable elements, low gene densities, and significant gene enrichment after methyl filtration , 2008, Molecular Genetics and Genomics.

[53]  C. Waalwijk,et al.  Genetic variation among Fusarium isolates from onion, and resistance to Fusarium basal rot in related Allium species , 2008, European Journal of Plant Pathology.

[54]  J. Jakše,et al.  Segregations for onion bulb colors reveal that red is controlled by at least three loci , 2008 .

[55]  H. Kanamori,et al.  Isolation of 1,796 SSR clones from SSR-enriched DNA libraries of bunching onion (Allium fistulosum) , 2007, Euphytica.

[56]  R. Antonise,et al.  The long and winding road leading to the successful introgression of downy mildew resistance into onion , 2007, Euphytica.

[57]  E. Earle,et al.  Estimation of nuclear DNA content of plants by flow cytometry , 1991, Plant Molecular Biology Reporter.

[58]  B. Bohanec,et al.  Characterization of a novel form of fertile great headed garlic (Allium sp.) , 2006 .

[59]  N. Yamane,et al.  Chromosomal locations of microsatellites in onion , 2006 .

[60]  F. Blattner,et al.  Phylogeny and new intrageneric classification of Allium (Alliaceae) based on nuclear ribosomal DNA its sequences , 2006 .

[61]  Sunggil Kim,et al.  Identification of the fourth allele of the ANS (anthocyanidin synthase) gene and its effect on red color intensity in onions (Allium cepa) , 2006, Euphytica.

[62]  Mikihisa Umehara,et al.  Interspecific hybrids betweenAllium fistulosumandAllium schoenoprasumreveal carotene-rich phenotype , 2006, Euphytica.

[63]  J. Jakše,et al.  Single Nucleotide Polymorphisms, Indels, and Simple Sequence Repeats for Onion Cultivar Identification , 2005 .

[64]  T. Ohara,et al.  Genetic mapping of AFLP markers in Japanese bunching onion (Allium fistulosum) , 2005, Euphytica.

[65]  C. Town,et al.  Genetic mapping of expressed sequences in onion and in silico comparisons with rice show scant colinearity , 2005, Molecular Genetics and Genomics.

[66]  J. Prince,et al.  The First Genetic Linkages among Expressed Regions of the Garlic Genome , 2005 .

[67]  S. Nadot,et al.  Evolution of genome size across some cultivated Allium species. , 2005, Genome.

[68]  Y. Tashiro,et al.  Chromosomal location of a pollen fertility-restoring gene, Rf, for CMS in Japanese bunching onion (Allium fistulosum L.) possessing the cytoplasm of A. galanthum Kar. et Kir. revealed by genomic in situ hybridization , 2005, Theoretical and Applied Genetics.

[69]  Richard W. Jones,et al.  The L locus, one of complementary genes required for anthocyanin production in onions (Allium cepa), encodes anthocyanidin synthase , 2005, Theoretical and Applied Genetics.

[70]  A. W. van Heusden,et al.  The Integration of Recombination and Physical Maps in a Large-Genome Monocot Using Haploid Genome Analysis in a Trihybrid Allium Population , 2005, Genetics.

[71]  Y. Tashiro,et al.  Seed productivity test of CMS lines of Japanese bunching onion (Allium fistulosum L.) possessing the cytoplasm of a wild species, A. galanthum Kar. et Kir. , 2004, Euphytica.

[72]  J. S. Heslop-Harrison,et al.  TheTy1-copia group retrotransposons ofAllium cepa are distributed throughout the chromosomes but are enriched in the terminal heterochromatin , 1996, Chromosome Research.

[73]  J. Fuchs,et al.  How do Alliaceae stabilize their chromosome ends in the absence of TTTAGGG sequences? , 1996, Chromosome Research.

[74]  A. K. Koul,et al.  Cytology of the tetraploidAllium ampeloprasum with chiasma localization , 1970, Chromosoma.

[75]  Sunggil Kim,et al.  Development of a codominant PCR-based marker for allelic selection of the pink trait in onions (Allium cepa), based on the insertion mutation in the promoter of the anthocyanidin synthase gene , 2005, Theoretical and Applied Genetics.

[76]  Sunggil Kim,et al.  Development of a PCR-based marker utilizing a deletion mutation in the dihydroflavonol 4-reductase (DFR) gene responsible for the lack of anthocyanin production in yellow onions (Allium cepa) , 2005, Theoretical and Applied Genetics.

[77]  T. Ohara,et al.  Development of Microsatellite Markers in Bunching Onion (Allium fistulosum L.) , 2004 .

[78]  Y. Tashiro,et al.  Production and characterization of alien chromosome additions in shallot (Allium cepa L. Aggregatum group) carrying extra chromosome(s) of Japanese bunching onion (A. fistulosum L.). , 2004, Genes & genetic systems.

[79]  R. Jones,et al.  Gold color in onions ( Allium cepa): a natural mutation of the chalcone isomerase gene resulting in a premature stop codon , 2004, Molecular Genetics and Genomics.

[80]  S. Park,et al.  Pink (P), a new locus responsible for a pink trait in onions (Allium cepa) resulting from natural mutations of anthocyanidin synthase , 2004, Molecular Genetics and Genomics.

[81]  C. Richards,et al.  Genetic Diversity among U.S. Garlic Clones as Detected Using AFLP Methods , 2004 .

[82]  Sunghun Park,et al.  Inactivation of DFR (Dihydroflavonol 4-reductase) gene transcription results in blockage of anthocyanin production in yellow onions (Allium cepa) , 2004, Molecular Breeding.

[83]  J. Prince,et al.  A Unique Set of 11,008 Onion Expressed Sequence Tags Reveals Expressed Sequence and Genomic Differences between the Monocot Orders Asparagales and Poales Online version contains Web-only data. Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.0 , 2004, The Plant Cell Online.

[84]  N. Friesen,et al.  Origin of some minor vegetatively propagated Allium crops studied with RAPD and GISH , 1998, Genetic Resources and Crop Evolution.

[85]  G. H. Jones,et al.  Comparative Analysis of Crossover Exchanges and Chiasmata in Allium Cepa × Fistulosum After Genomic In Situ Hybridization (GISH) , 1998, Chromosome Research.

[86]  I. Schubert,et al.  Terminal Heterochromatin and Alternative Telomeric Sequences in Allium Cepa , 1998, Chromosome Research.

[87]  R. Fritsch,et al.  Evolution of genome size inAllium (Alliaceae) , 1998, Plant Systematics and Evolution.

[88]  H. I. Maass Studies on triploid viviparous onions and their origin , 1997, Genetic Resources and Crop Evolution.

[89]  J. Puizina,et al.  Cytogenetical evidences for hybrid structure and origin of diploid and triploid shallots (Allium cepa var.viviparum, Liliaceae) from Dalmatia (Croatia) , 1996, Plant Systematics and Evolution.

[90]  J. Fuchs,et al.  Telomere sequence localization and karyotype evolution in higher plants , 1995, Plant Systematics and Evolution.

[91]  O. Rajora,et al.  Paternal plastid DNA can be inherited in lentil , 1995, Theoretical and Applied Genetics.

[92]  M. Havey Identification of cytoplasms using the polymerase chain reaction to aid in the extraction of maintainer lines from open-pollinated populations of onion , 1995, Theoretical and Applied Genetics.

[93]  T. Tatlioglu,et al.  Molecular analysis of cytoplasmic male sterility in chives (Allium schoenoprasum L.) , 1993, Theoretical and Applied Genetics.

[94]  P. Isaac,et al.  Random amplified polymorphic DNA (RAPD) markers for genetic analysis inAllium , 1993, Theoretical and Applied Genetics.

[95]  T. Mikami,et al.  The use of mitochondrial DNA polymorphism in the classification of individual onion plants by cytoplasmic genotypes , 1993, Theoretical and Applied Genetics.

[96]  M. Havey A putative donor of S-cytoplasm and its distribution among open-pollinated populations of onion , 1993, Theoretical and Applied Genetics.

[97]  C. Ohsumi,et al.  Interspecific hybrid between Allium cepa and Allium sativum , 1993, Theoretical and Applied Genetics.

[98]  M. Havey Restriction enzyme analysis of the chloroplast and nuclear 45s ribosomal DNA ofAllium sectionsCepa andPhyllodolon (Alliaceae) , 1992, Plant Systematics and Evolution.

[99]  M. Havey Restriction enzyme analysis of the nuclear 45s ribosomal DNA of six cultivated Alliums (Alliaceae) , 1992, Plant Systematics and Evolution.

[100]  E. B. Peffley,et al.  Chromosomal location of rDNA in Allium: in situ hybridization using biotin- and fluorescein-labelled probe , 1992, Theoretical and Applied Genetics.

[101]  P. Holford,et al.  Differences between, and possible origins of, the cytoplasms found in fertile and male-sterile onions (Allium cepa L.) , 1991, Theoretical and Applied Genetics.

[102]  M. Havey Phylogenetic relationships among cultivated Allium species from restriction enzyme analysis of the chloroplast genome , 1991, Theoretical and Applied Genetics.

[103]  F. Vedel,et al.  DNA polymorphism in Allium cepa cytoplasms and its implications concerning the origin of onions , 1989, Theoretical and Applied Genetics.

[104]  U. Wobus,et al.  In situ hybridization confirms jumping nucleolus organizing regions in Allium , 1985, Chromosoma.

[105]  S. Barnes,et al.  The organisation, nucleotide sequence, and chromosomal distribution of a satellite DNA from Allium cepa , 1985, Chromosoma.

[106]  I. Schubert,et al.  Phylogenetic conclusions from Giemsa banding and NOR staining in top onions (Liliaceae) , 1983, Plant Systematics and Evolution.

[107]  P. Ranjekar,et al.  Analysis of plant genomes. V. Comparative study of molecular properties of DNAs of seven Allium species , 1978, Biochemical Genetics.

[108]  P. Barsanti,et al.  Individual variation of the nucleolus organizer regions in Allium cepa and A. sativum , 1978, Chromosoma.

[109]  F. Garbari,et al.  Amounts of ribosomal DNA inAllium (Liliaceae) , 1977, Plant Systematics and Evolution.

[110]  S. Brat Genetic systems in Allium , 1965, Chromosoma.

[111]  A. Ipek,et al.  Demonstration of linkage and development of the first low-density genetic map of garlic, based on AFLP markers , 2004, Theoretical and Applied Genetics.

[112]  D. Comings,et al.  The chromosomes and DNA of Allium cepa , 2004, Chromosoma.

[113]  E. B. Peffley,et al.  Introgression of Allium fistulosum L. into Allium cepa L.: cytogenetic evidence , 2004, Theoretical and Applied Genetics.

[114]  R. Narayan Constraints upon the organisation and evolution of chromosomes in Allium , 2004, Theoretical and Applied Genetics.

[115]  T. Engelke,et al.  The fertility restorer genes X and T alter the transcripts of a novel mitochondrial gene implicated in CMS1 in chives ( Allium schoenoprasum L.) , 2004, Molecular Genetics and Genomics.

[116]  T. Engelke,et al.  A PCR marker system for monitoring the frequencies of normal and sterility‐inducing cytoplasm types in German chive varieties , 2003 .

[117]  T. Engelke,et al.  A PCR-based marker system monitoring CMS-(S), CMS-(T) and (N)-cytoplasm in the onion (Allium cepa L.) , 2003, Theoretical and Applied Genetics.

[118]  Philipp W. Simon,et al.  Comparison of AFLPs, RAPD Markers, and Isozymes for Diversity Assessment of Garlic and Detection of Putative Duplicates in Germplasm Collections , 2003 .

[119]  Yutaka Sato,et al.  Molecular Tagging of the Ms Locus in Onion , 2002 .

[120]  M. Hizume,et al.  Evolution of 5S rDNA units and their chromosomal localization in Allium cepa and Allium schoenoprasum revealed by microdissection and FISH , 2002, Theoretical and Applied Genetics.

[121]  M. Hizume,et al.  The identification and analysis of the sequences that allow the detection of Allium cepa chromosomes by GISH in the allodiploid A. wakegi , 2002, Chromosoma.

[122]  K. Pistrick,et al.  Phenology and Genome Size Variation in Allium L. ‐ a Tight Correlation? , 2001 .

[123]  J. McCallum,et al.  Expressed sequence markers for genetic analysis of bulb onion (Allium cepa L.) , 2001, Theoretical and Applied Genetics.

[124]  M. Yamamoto,et al.  BAC FISH analysis in Allium cepa. , 2001, Genes & genetic systems.

[125]  I. Goldman,et al.  Genetic analyses of correlated solids, flavor, and health-enhancing traits in onion (Allium cepa L.) , 2001, Molecular Genetics and Genomics.

[126]  Y. Tashiro,et al.  RFLP Analysis of Mitochondrial DNA in Wakegi Onion , 2001 .

[127]  Y. Tashiro,et al.  Phylogenetic Relationships among Cultivated and Wild Species in Section Cepa of Allium Based on RFLPs of Mitochondrial and Chloroplast DNAs , 2001 .

[128]  M. Havey Diversity among male-sterility-inducing and male-fertile cytoplasms of onion , 2000, Theoretical and Applied Genetics.

[129]  K. Bachmann,et al.  Onion microsatellites for germplasm analysis and their use in assessing intra- and interspecific relatedness within the subgenus Rhizirideum , 2000, Theoretical and Applied Genetics.

[130]  E. Peffley,et al.  Recombinant chromosomes of advanced backcross plants between Allium cepa L. and A. fistulosum L. revealed by in situ hybridization , 2000, Theoretical and Applied Genetics.

[131]  T. Engelke,et al.  Mitochondrial genome diversity in connection with male sterility in Allium schoenoprasum L. , 2000, Theoretical and Applied Genetics.

[132]  Y. Tashiro,et al.  Visualization of Nucleus Substitution between Allium galanthum and Shallot (A. cepa) by Genomic In Situ Hybridization , 2000 .

[133]  E. Peffley,et al.  Bulb-type onion introgressants posessing Allium fistulosum L. genes recovered from interspecific hybrid backcrosses between A. cepa L. and A. fistulosum L. , 2000, Theoretical and Applied Genetics.

[134]  A. W. van Heusden,et al.  A genetic map of an interspecific cross in Allium based on amplified fragment length polymorphism (AFLPTM) markers , 2000, Theoretical and Applied Genetics.

[135]  C. Kik,et al.  Introgression of Allium fistulosum into A. cepa mediated by A. roylei , 2000, Theoretical and Applied Genetics.

[136]  B. Bohanec,et al.  Random amplified polymorphic DNA analysis, genome size, and genomic in situ hybridization of triploid viviparous onions , 1999, Genome.

[137]  M. Havey Seed Yield, Floral Morphology, and Lack of Male-fertility Restoration of Male-sterile Onion (Allium cepa) Populations Possessing the Cytoplasm of Allium galanthum , 1999 .

[138]  Y. Tashiro,et al.  Cytoplasm of a Wild Species, Allium galanthum Kar. et Kir., is Useful for Developing the Male Sterile Line of A. fistulosum L. , 1999 .

[139]  M. Havey,et al.  Morphological, Biochemical, and Molecular Markers in Onion , 1999 .

[140]  Y. Tashiro,et al.  Possibility of Developing a Male Sterile Line of Shallot (Allium cepa L. Aggregatum Group) with Cytoplasm from A. galanthum Kar. et Kir. , 1999 .

[141]  Y. Tashiro,et al.  Identification of alien chromosomes in a series of Allium fistulosum - A. cepa monosomic addition lines by means of genomic in situ hybridization , 1998 .

[142]  M. Klaas Applications and impact of molecular markers on evolutionary and diversity studies in the genus Allium. , 1998 .

[143]  Y. Sato PCR amplification of CMS-specific mitochondrial nucleotide sequences to identify cytoplasmic genotypes of onion (Allium cepa L.) , 1998, Theoretical and Applied Genetics.

[144]  L. Khrustaleva,et al.  Cytogenetical studies in the bridge cross Allium cepa× (A. fistulosum×A. roylei) , 1998, Theoretical and Applied Genetics.

[145]  J. Bradeen,et al.  A low-density genetic map of onion reveals a role for tandem duplication in the evolution of an extremely large diploid genome , 1998, Theoretical and Applied Genetics.

[146]  L. V. van Raamsdonk,et al.  Mitochondrial DNA variation and crossability of leek (Allium porrum) and its wild relatives from the Allium ampeloprasum complex , 1997, Theoretical and Applied Genetics.

[147]  Y. Tashiro,et al.  Establishment of a series of alien monosomic addition lines of Japanese bunching onion (Allium fistulosum L.) with extra chromosomes from shallot (A. cepa L. aggregatum group). , 1996, Genes & genetic systems.

[148]  S. Stack,et al.  Localized chiasmata and meiotic nodules in the tetraploid onion Allium porrum. , 1996, Genome.

[149]  J. Bradeen,et al.  Randomly Amplified Polymorphic DNA in Bulb Onion and Its Use to Assess Inbred Integrity , 1995 .

[150]  M. Hizume Allodiploid nature of Allium wakegi Araki revealed by genomic in situ hybridization and localization of 5S and 18S rDNAs. , 1994, Idengaku zasshi.

[151]  M. Havey,et al.  Molecular Confirmation that Sterile Cytoplasm Has Been Introduced into Open-pollinated Grano Onion Cultivars , 1994 .

[152]  L. Raamsdonk,et al.  Crossing experiments in Allium L. section Cepa , 1992 .

[153]  M. Havey Molecular Characterization of the Interspecific Origin of Viviparous Onion , 1991 .

[154]  Y. Ogihara,et al.  Physical map of chloroplast DNA of the onion Allium cepa L., showing the location of photosynthesis-related genes , 1991 .

[155]  G. Wricke,et al.  Genetic analysis of isozyme loci in chives (Allium schoenoprasum L.) , 1990 .

[156]  A. Kofoet,et al.  Resistance to downy mildew (Peronospora destructor (Berk.) Casp.) in Allium species , 1990 .

[157]  S. Albini,et al.  Synaptonemal complex spreading in Allium cepa and Allium fistulosum. II. Pachytene observations: the SC karyotype and the correspondence of late recombination nodules and chiasmata , 1988 .

[158]  S. Albini,et al.  Synaptonemal complex spreading in Allium cepa and A , 1990 .

[159]  T. Tatlioglu Genetic control of temperature-sensitivity of cytoplasmic male sterility (cms) in chives (Allium schoenoprasum L.) , 1987 .

[160]  T. T. Elkington,et al.  Nuclear DNA variation in the genus Allium L. (Liliaceae) , 1987, Heredity.

[161]  E. Peffley Evidence for Chromosomal Differentiation of Allium fistulosum and A. cepa , 1986, Journal of the American Society for Horticultural Science.

[162]  Takeshi Uehara,et al.  Inheritance of Cytoplasmic Male Sterility in Allium fistulosum L. (Welsh onion) , 1985 .

[163]  J. S. Heslop-Harrison,et al.  Nuclear dna amounts in angiosperms. , 1976, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.

[164]  L. Currah,et al.  PROTANDRY AND THE SEQUENCE OF FLOWER OPENING IN THE ONION (ALLIUM CEP A L.) , 1978 .

[165]  A. K. Koul,et al.  Further Studies on Natural Triploidy in Viviparous Onion , 1971 .

[166]  J. Kirk,et al.  Base composition of nuclear DNA within the genus Allium , 1970, Heredity.

[167]  H. Rees,et al.  Nuclear DNA variation in Allium , 1968, Heredity.

[168]  M. El-Shafie,et al.  Inheritance of bulb color in the onion (Allium cepa L.) , 1967 .

[169]  G. Davis,et al.  Inbreeding and Heterosis and Their Relation to the Development of New Varieties of Onions , 1944 .

[170]  H. A. Jones Inheritance of male sterility in the onion and the production of hybrid seed , 1943 .

[171]  A. E. Clarke,et al.  A NATURAL AMPHIDIPLOID FROM AN ONION SPECIES HYBRID , 1942 .

[172]  威成 前田 ネギ, タマネギ, 雜種F1, F2, 戻雜種に於けるキアズマ觀察 , 1937 .

[173]  H. Jones,et al.  An interspecific hybrid in Allium , 1935 .

[174]  G. H. Rieman Genetic factors for pigmentation in the Onion and their relation to disease resistance , 1931 .