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211 peer-reviewed articles • 31,391 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1Horizontal gene transfers dominate the functional mitochondrial gene space of a holoparasitic plant
New Phytologist, 2021, 229, 1701-1714
8.157Citations (PDF)
2Organellomic data sets confirm a cryptic consensus on (unrooted) land‐plant relationships and provide new insights into bryophyte molecular evolution
American Journal of Botany, 2020, 107, 91-115
2.259Citations (PDF)
3Novel genetic code and record-setting AT-richness in the highly reduced plastid genome of the holoparasitic plant Balanophora7.5100Citations (PDF)
4High and Variable Rates of Repeat-Mediated Mitochondrial Genome Rearrangement in a Genus of Plants4.790Citations (PDF)
5Mitochondrial Retroprocessing Promoted Functional Transfers of rpl5 to the Nucleus in Grasses
Molecular Biology and Evolution, 2017, 34, 2340-2354
4.731Citations (PDF)
6Comparative mitogenomics indicates respiratory competence in parasitic Viscum despite loss of complex I and extreme sequence divergence, and reveals horizontal gene transfer and remarkable variation in genome size
BMC Plant Biology, 2017, 17,
4.372Citations (PDF)
7GinkgoandWelwitschiaMitogenomes Reveal Extreme Contrasts in Gymnosperm Mitochondrial Evolution
Molecular Biology and Evolution, 2016, 33, 1448-1460
4.7219Citations (PDF)
8Homologous recombination and retention of a single form of most genes shape the highly chimeric mitochondrial genome of a cybrid plant
New Phytologist, 2015, 206, 381-396
8.159Citations (PDF)
9The Complete Moss Mitochondrial Genome in the Angiosperm Amborella Is a Chimera Derived from Two Moss Whole-Genome Transfers
PLoS ONE, 2015, 10, e0137532
2.319Citations (PDF)
10Miniaturized mitogenome of the parasitic plant Viscum scurruloideum is extremely divergent and dynamic and has lost all nad genes7.5422Citations (PDF)
11The “fossilized” mitochondrial genome of Liriodendron tulipifera: ancestral gene content and order, ancestral editing sites, and extraordinarily low mutation rate
BMC Biology, 2013, 11,
3.9266Citations (PDF)
12Unique role for translation initiation factor 3 in the light color regulation of photosynthetic gene expression7.537Citations (PDF)
13The Amborella Genome and the Evolution of Flowering Plants
Science, 2013, 342,
36.2878Citations (PDF)
14Horizontal Transfer of Entire Genomes via Mitochondrial Fusion in the Angiosperm Amborella
Science, 2013, 342, 1468-1473
36.2425Citations (PDF)
15Chloroplast phylogeny of Cucurbita: Evolution of the domesticated and wild species3.232Citations (PDF)
16Recent Acceleration of Plastid Sequence and Structural Evolution Coincides with Extreme Mitochondrial Divergence in the Angiosperm Genus Silene2.4145Citations (PDF)
17Rapid Evolution of Enormous, Multichromosomal Genomes in Flowering Plant Mitochondria with Exceptionally High Mutation Rates
PLoS Biology, 2012, 10, e1001241
5.0684Citations (PDF)
18Multiple recent horizontal transfers of the cox1intron in Solanaceae and extended co-conversion of flanking exons3.155Citations (PDF)
19HGT turbulence
Mobile Genetic Elements, 2011, 1, 256-304
3.021Citations (PDF)
20Origins and Recombination of the Bacterial-Sized Multichromosomal Mitochondrial Genome of Cucumber
Plant Cell, 2011, 23, 2499-2513
7.6337Citations (PDF)
21The Mitochondrial Genome of the Legume Vigna radiata and the Analysis of Recombination across Short Mitochondrial Repeats
PLoS ONE, 2011, 6, e16404
2.3179Citations (PDF)
22Extensive loss of translational genes in the structurally dynamic mitochondrial genome of the angiosperm Silene latifolia3.1124Citations (PDF)
23Horizontal acquisition of multiple mitochondrial genes from a parasitic plant followed by gene conversion with host mitochondrial genes
BMC Biology, 2010, 8,
3.9134Citations (PDF)
24Extensive Loss of RNA Editing Sites in Rapidly Evolving Silene Mitochondrial Genomes: Selectionvs. Retroprocessing as the Driving Force
Genetics, 2010, 185, 1369-1380
4.2112Citations (PDF)
25Localized hypermutation and associated gene losses in legume chloroplast genomes
Genome Research, 2010, 20, 1700-1710
4.6282Citations (PDF)
26Gorgeous mosaic of mitochondrial genes created by horizontal transfer and gene conversion7.598Citations (PDF)
27Insights into the Evolution of Mitochondrial Genome Size from Complete Sequences of Citrullus lanatus and Cucurbita pepo (Cucurbitaceae)
Molecular Biology and Evolution, 2010, 27, 1436-1448
4.7521Citations (PDF)
28Fine-scale mergers of chloroplast and mitochondrial genes create functional, transcompartmentally chimeric mitochondrial genes7.576Citations (PDF)
29Relationships Among Phaseoloid Legumes Based on Sequences from Eight Chloroplast Regions
Systematic Botany, 2009, 34, 115-128
0.5121Citations (PDF)
30The draft genome of the transgenic tropical fruit tree papaya (Carica papaya Linnaeus)
Nature, 2008, 452, 991-996
37.91,029Citations (PDF)
31Horizontal gene transfer in eukaryotic evolution
Nature Reviews Genetics, 2008, 9, 605-618
46.91,260Citations (PDF)
32The Amborella genome: an evolutionary reference for plant biology
Genome Biology, 2008, 9, 402
12.270Citations (PDF)
33Frequent, Phylogenetically Local Horizontal Transfer of the cox1 Group I Intron in Flowering Plant Mitochondria
Molecular Biology and Evolution, 2008, 25, 1762-1777
4.7151Citations (PDF)
34Extensive variation in synonymous substitution rates in mitochondrial genes of seed plants3.1260Citations (PDF)
35Cyanobacterial ribosomal RNA genes with multiple, endonuclease-encoding group I introns3.134Citations (PDF)
36Horizontal gene transfer in plants5.1331Citations (PDF)
37An exceptional horizontal gene transfer in plastids: gene replacement by a distant bacterial paralog and evidence that haptophyte and cryptophyte plastids are sisters
BMC Biology, 2006, 4,
3.9162Citations (PDF)
38Patterns of partial RNA editing in mitochondrial genes of Beta vulgaris1.9101Citations (PDF)
39Title is missing!3.140Citations (PDF)
40The Complete Chloroplast Genome Sequence of Pelargonium × hortorum: Organization and Evolution of the Largest and Most Highly Rearranged Chloroplast Genome of Land Plants
Molecular Biology and Evolution, 2006, 23, 2175-2190
4.7491Citations (PDF)
41Evidence from small-subunit ribosomal RNA sequences for a fungal origin of Microsporidia2.844Citations (PDF)
42Title is missing!3.1155Citations (PDF)
43Massive horizontal transfer of mitochondrial genes from diverse land plant donors to the basal angiosperm Amborella7.5256Citations (PDF)
44The plant tree of life: an overview and some points of view
American Journal of Botany, 2004, 91, 1437-1445
2.2166Citations (PDF)
45Mitochondrial substitution rates are extraordinarily elevated and variable in a genus of flowering plants7.5263Citations (PDF)
46Gene transfer from parasitic to host plants
Nature, 2004, 432, 165-166
37.9251Citations (PDF)
47Title is missing!3.1127Citations (PDF)
48Many Independent Origins of trans Splicing of a Plant Mitochondrial Group II Intron1.745Citations (PDF)
49Molecular phylogenies of Parabasalia inferred from four protein genes and comparison with rRNA trees2.845Citations (PDF)
50Genome-scale data, angiosperm relationships, and ‘ending incongruence’: a cautionary tale in phylogenetics
Trends in Plant Science, 2004, 9, 477-483
11.6184Citations (PDF)
51Phylogenetic analysis reveals five independent transfers of the chloroplast gene rbcL to the mitochondrial genome in angiosperms
Current Genetics, 2003, 43, 131-138
1.567Citations (PDF)
52Evolution of mitochondrial gene content: gene loss and transfer to the nucleus2.8702Citations (PDF)
53THE SYMBIOTIC BIRTH AND SPREAD OF PLASTIDS: HOW MANY TIMES AND WHODUNIT?
Journal of Phycology, 2003, 39, 4-12
2.9247Citations (PDF)
54Widespread horizontal transfer of mitochondrial genes in flowering plants
Nature, 2003, 424, 197-201
37.9514Citations (PDF)
55Punctuated evolution of mitochondrial gene content: High and variable rates of mitochondrial gene loss and transfer to the nucleus during angiosperm evolution7.5453Citations (PDF)
56Genes for Two Mitochondrial Ribosomal Proteins in Flowering Plants Are Derived from Their Chloroplast or Cytosolic Counterparts
Plant Cell, 2002, 14, 931-943
7.6115Citations (PDF)
57Gene transfer from mitochondrion to nucleus: novel mechanisms for gene activation from Cox2
Plant Journal, 2002, 30, 11-21
6.152Citations (PDF)
58Mitochondrial Gene Transfer in Pieces: Fission of the Ribosomal Protein Gene rpl2 and Partial or Complete Gene Transfer to the Nucleus
Molecular Biology and Evolution, 2001, 18, 2289-2297
4.774Citations (PDF)
59The Evolutionary Split of Pinaceae from Other Conifers: Evidence from an Intron Loss and a Multigene Phylogeny2.8100Citations (PDF)
60Lateral transfer at the gene and subgenic levels in the evolution of eukaryotic enolase7.578Citations (PDF)
61Many Parallel Losses of infA from Chloroplast DNA during Angiosperm Evolution with Multiple Independent Transfers to the Nucleus
Plant Cell, 2001, 13, 645
7.612Citations (PDF)
62Many Parallel Losses of infA from Chloroplast DNA during Angiosperm Evolution with Multiple Independent Transfers to the Nucleus
Plant Cell, 2001, 13, 645-658
7.6498Citations (PDF)
63Multiple Losses and Transfers to the Nucleus of Two Mitochondrial Succinate Dehydrogenase Genes During Angiosperm Evolution
Genetics, 2001, 158, 1289-1300
4.2102Citations (PDF)
64Multigene Phylogeny of Land Plants with Special Reference to Bryophytes and the Earliest Land Plants
Molecular Biology and Evolution, 2000, 17, 1885-1895
4.7232Citations (PDF)
65Parabasalian flagellates are ancient eukaryotes
Nature, 2000, 405, 635-637
37.993Citations (PDF)
66Repeated, recent and diverse transfers of a mitochondrial gene to the nucleus in flowering plants
Nature, 2000, 408, 354-357
37.9229Citations (PDF)
67The cyanobacterial origin and vertical transmission of the plastid tRNA Leu group-I intron
Current Genetics, 2000, 37, 12-23
1.563Citations (PDF)
68Seed plant phylogeny inferred from all three plant genomes: Monophyly of extant gymnosperms and origin of Gnetales from conifers7.5431Citations (PDF)
69Evidence from Beta-Tubulin Phylogeny that Microsporidia Evolved from Within the Fungi4.7306Citations (PDF)
70The IDB and IEDB: intron sequence and evolution databases
Nucleic Acids Research, 2000, 28, 181-184
15.525Citations (PDF)
71Dynamic evolution of plant mitochondrial genomes: Mobile genes and introns and highly variable mutation rates7.5335Citations (PDF)
72Multiple acquisitions via horizontal transfer of a group I intron in the mitochondrial cox1 gene during evolution of the Araceae family
Molecular Biology and Evolution, 1999, 16, 1155-1165
4.771Citations (PDF)
73The chloroplast genome arrangement ofLobelia thuliniana (Lobeliaceae): Expansion of the inverted repeat in an ancestor of theCampanulales1.147Citations (PDF)
74Shikimate pathway in apicomplexan parasites
Nature, 1999, 397, 219-220
37.992Citations (PDF)
75Investigating Deep Phylogenetic Relationships among Cyanobacteria and Plastids by Small Subunit rRNA Sequence Analysis12.21,459Citations (PDF)
76Multigene analyses identify the three earliest lineages of extant flowering plants
Current Biology, 1999, 9, 1485-1491
3.6222Citations (PDF)
77Intracellular gene transfer in action: Dual transcription and multiple silencings of nuclear and mitochondrial cox2 genes in legumes7.5149Citations (PDF)
78The gain of three mitochondrial introns identifies liverworts as the earliest land plants
Nature, 1998, 394, 671-674
37.9333Citations (PDF)
79Explosive invasion of plant mitochondria by a group I intron7.5275Citations (PDF)
80Chloroplast DNA Evidence on the Origin and Radiation of the Giant Lobelias in Eastern Africa
Systematic Botany, 1998, 23, 109
0.557Citations (PDF)
81Intron "sliding" and the diversity of intron positions7.5159Citations (PDF)
82Implications for the Phylogeny, Classification, and Biogeography of Solanum from cpDNA Restriction Site Variation
Systematic Botany, 1997, 22, 19
0.5115Citations (PDF)
83Isolation and characterization of rad51 orthologs from Coprinus cinereus and Lycopersicon esculentum, and phylogenetic analysis of eukaryotic recA homologs
Current Genetics, 1997, 31, 144-157
1.591Citations (PDF)
84The highly rearranged chloroplast genome of Trachelium caeruleum (Campanulaceae): multiple inversions, inverted repeat expansion and contraction, transposition, insertions/deletions, and several repeat families
Current Genetics, 1997, 31, 419-429
1.5164Citations (PDF)
85Rampant horizontal transfer and duplication of rubisco genes in eubacteria and plastids4.7300Citations (PDF)
86Perspectives on archaeal diversity, thermophily and monophyly from environmental rRNA sequences.7.5642Citations (PDF)
87Second-hand chloroplasts and the case of the disappearing nucleus.7.5115Citations (PDF)
88The root of the universal tree and the origin of eukaryotes based on elongation factor phylogeny.7.5258Citations (PDF)
89The Distribution and Phylogenetic Significance of a 50-kb Chloroplast DNA Inversion in the Flowering Plant Family Leguminosae2.8158Citations (PDF)
90Rubisco surprises in dinoflagellates.
Plant Cell, 1996, 8, 343-345
7.622Citations (PDF)
91Rubisco Surprises in Dinoflagellates
Plant Cell, 1996, 8, 343
7.64Citations (PDF)
92Seven newly discovered intron positions in the triose-phosphate isomerase gene: evidence for the introns-late theory.7.5135Citations (PDF)
93Chloroplast DNA variation and the recent radiation of the giant senecios (Asteraceae) on the tall mountains of eastern Africa.7.591Citations (PDF)
94Rubisco rules fall; gene transfer triumphs
BioEssays, 1995, 17, 1005-1008
2.136Citations (PDF)
95Phylogenetic Analysis of tufA Sequences Indicates a Cyanobacterial Origin of All Plastids2.8130Citations (PDF)
96Isolation, expression, and evolution of the gene encoding mitochondrial elongation factor Tu in Arabidopsis thaliana
Plant Molecular Biology, 1995, 29, 1057-1070
3.225Citations (PDF)
97Transcription, splicing and editing of plastid RNAs in the nonphotosynthetic plant Epifagus virginiana
Plant Molecular Biology, 1995, 29, 721-733
3.297Citations (PDF)
98Fungal origin by horizontal transfer of a plant mitochondrial group I intron in the chimeric coxI gene of Peperomia1.7122Citations (PDF)
99The origin of Dendrosenecio within the Senecioneae (Asteraceae) based on chloroplastDNA EVIDENCE
American Journal of Botany, 1995, 82, 1567-1573
2.236Citations (PDF)
100Multiple Independent Losses of Two Genes and One Intron from Legume Chloroplast Genomes
Systematic Botany, 1995, 20, 272
0.5132Citations (PDF)
101The Origin of Dendrosenecio within the Senecioneae (Asteraceae) Based on Chloroplast DNA Evidence2.214Citations (PDF)
102Chloroplast DNA systematics: a review of methods and data analysis
American Journal of Botany, 1994, 81, 1205-1224
2.2502Citations (PDF)
103A Chloroplast DNA Phylogeny of the Caryophyllales Based on Structural and Inverted Repeat Restriction Site Variation
Systematic Botany, 1994, 19, 236
0.586Citations (PDF)
104Structure and evolution of the largest chloroplast gene (ORF2280): internal plasticity and multiple gene loss during angiosperm evolution
Current Genetics, 1994, 25, 367-378
1.547Citations (PDF)
105Structural rearrangements, including parallel inversions, within the chloroplast genome of Anemone and related genera1.7107Citations (PDF)
106Origin of introns–early or late?
Nature, 1994, 369, 526-526
37.957Citations (PDF)
107Phylogenetic Relationships in Anemone (Ranunculaceae) Based on Morphology and Chloroplast DNA
Systematic Botany, 1994, 19, 169
0.575Citations (PDF)
108Chloroplast DNA Systematics: A Review of Methods and Data Analysis2.2224Citations (PDF)
109Characterization of the Brassica campestris mitochondrial gene for subunit six of NADH dehydrogenase: nad6 is present in the mitochondrion of a wide range of flowering plants
Current Genetics, 1993, 23, 148-153
1.517Citations (PDF)
110A Parsimony Analysis of the Asteridae Sensu Lato Based on rbcL Sequences0.7323Citations (PDF)
111Phylogenetics of Seed Plants: An Analysis of Nucleotide Sequences from the Plastid Gene rbcL0.71,774Citations (PDF)
112Phylogenetic Relationships of the Geraniaceae and Geraniales from rbcL Sequence Comparisons0.793Citations (PDF)
113Interfamilial Relationships of the Asteraceae: Insights from rbcL Sequence Variation0.748Citations (PDF)
114Nucleotide Sequences of the rbcL Gene Indicate Monophyly of Mustard Oil Plants0.7126Citations (PDF)
115Animals and fungi are each other's closest relatives: congruent evidence from multiple proteins.7.5536Citations (PDF)
116A Minority of Muscarinic Receptors Mediate Rabbit Tracheal Smooth Muscle Contraction3.820Citations (PDF)
117Monophyly of the Asteridae and Identification of Their Major Lineages Inferred From DNA Sequences of rbcL0.7398Citations (PDF)
118Phylogenetic Implications of rbcL Sequence Variation in the Asteraceae0.7102Citations (PDF)
119Phylogenetic Relationships of Dipsacales Based on rbcL Sequences0.7606Citations (PDF)
120Restriction Site Mapping of the Chloroplast DNA Inverted Repeat: A Molecular Phylogeny of the Asteridae0.7126Citations (PDF)
121Function and evolution of a minimal plastid genome from a nonphotosynthetic parasitic plant.7.5577Citations (PDF)
122Small single-copy region of plastid DNA in the non-photosynthetic angiosperm Epifagus virginiana contains only two genes
Journal of Molecular Biology, 1992, 223, 95-104
4.132Citations (PDF)
123Large size and complex structure of mitochondrial DNA in two nonflowering land plants
Current Genetics, 1992, 21, 125-129
1.525Citations (PDF)
124Variable intron content of the NADH dehydrogenase subunit 4 gene of plant mitochondria
Current Genetics, 1992, 21, 423-430
1.534Citations (PDF)
125Evolution of the plastid ribosomal RNA operon in a nongreen parasitic plant: Accelerated sequence evolution, altered promoter structure, and tRNA pseudogenes
Plant Molecular Biology, 1992, 18, 1037-1048
3.233Citations (PDF)
126Rapid evolution of the plastid translational apparatus in a nonphotosynthetic plant: Loss or accelerated sequence evolution of tRNA and ribosomal protein genes1.7157Citations (PDF)
127Gene phylogenies and the endosymbiotic origin of plastids
BioSystems, 1992, 28, 75-90
1.6139Citations (PDF)
128A Chloroplast DNA Phylogeny of the Solanaceae: Subfamilial Relationships and Character Evolution0.7191Citations (PDF)
129The recent origins of introns
Current Biology, 1992, 2, 34
3.60Citations (PDF)
130Green ancestry of malarial parasites?
Current Biology, 1992, 2, 318-320
3.649Citations (PDF)
131ORGANIZATION OF THE CHLOROPLAST GENOME OF THE FRESHWATER CENTRIC DIATOM CYCLOTELLA MENEGHINIANA1
Journal of Phycology, 1992, 28, 347-355
2.922Citations (PDF)
132A review of the phylogeny and classification of the Asteraceae
Nordic Journal of Botany, 1992, 12, 141-148
0.748Citations (PDF)
133Ins and outs of plastid genome evolution3.227Citations (PDF)
134RNA-mediated transfer of the gene coxII from the mitochondrion to the nucleus during flowering plant evolution
Cell, 1991, 66, 473-481
33.6383Citations (PDF)
135The recent origins of introns3.2257Citations (PDF)
136Chloroplast DNA Restriction Site Variation, Phylogenetic Relationships, and Character Evolution Among Sections of North Americn Coreopsis (Asteraceae)
Systematic Botany, 1991, 16, 211
0.512Citations (PDF)
137SIX INDEPENDENT LOSSES OF THE CHLOROPLAST DNArpl2 INTRON IN DICOTYLEDONS: MOLECULAR AND PHYLOGENETIC IMPLICATIONS1.9122Citations (PDF)
138Phylogeny and Character Evolution in the Asteraceae Based on Chloroplast DNA Restriction Site Mapping
Systematic Botany, 1991, 16, 98
0.5105Citations (PDF)
139Patterns of mitochondrial DNA instability in Brassica campestris cultured cells
Plant Molecular Biology, 1991, 16, 21-37
3.251Citations (PDF)
140Lack of a functional plastid tRNACys gene is associated with loss of photosynthesis in a lineage of parasitic plants
Current Genetics, 1991, 20, 515-518
1.519Citations (PDF)
141The role of coxI-associated repeated sequences in plant mitochondrial DNA rearrangements and radish cytoplasmic male sterility
Current Genetics, 1991, 19, 183-190
1.547Citations (PDF)
142Six Independent Losses of the Chloroplast DNA rpl2 Intron in Dicotyledons: Molecular and Phylogenetic Implications1.977Citations (PDF)
143PHYLOGENETIC ANALYSIS OF CHLOROPLAST DNA RESTRICTION SITE DATA AT HIGHER TAXONOMIC LEVELS: AN EXAMPLE FROM THE ASTERACEAE1.9100Citations (PDF)
144EVOLUTIONARY SIGNIFICANCE OF THE LOSS OF THE CHLOROPLAST‐DNA INVERTED REPEAT IN THE LEGUMINOSAE SUBFAMILY PAPILIONOIDEAE1.9185Citations (PDF)
145The gain of two chloroplast tRNA introns marks the green algal ancestors of land plants
Nature, 1990, 345, 268-270
37.9150Citations (PDF)
146Loss of photosynthetic and chlororespiratory genes from the plastid genome of a parasitic flowering plant
Nature, 1990, 348, 337-339
37.9329Citations (PDF)
147UNIQUE CHLOROPLAST GENOME IN SPIROGYRA MAXIMA (CHLOROPHYTA) REVEALED BY PHYSICAL AND GENE MAPPING1
Journal of Phycology, 1990, 26, 490-494
2.937Citations (PDF)
148Contrasting modes and tempos of genome evolution in land plant organelles
Trends in Genetics, 1990, 6, 115-120
9.8258Citations (PDF)
149Characterization of radish mitochondrial atpA: influence of nuclear background on transcription of atpA-associated sequences and relationship with male sterility
Plant Molecular Biology, 1990, 15, 735-746
3.262Citations (PDF)
150CHLOROPLAST DNA RESTRICTION SITE VARIATION AND THE PHYLOGENY OF COREOPSIS SECTION COREOPSIS (ASTERACEAE)
American Journal of Botany, 1990, 77, 552-558
2.224Citations (PDF)
151Different fates of the chloroplast tufA gene following its transfer to the nucleus in green algae.7.5107Citations (PDF)
152Phylogenetic Analysis of Chloroplast DNA Restriction Site Data at Higher Taxonomic Levels: An Example from the Asteraceae1.924Citations (PDF)
153A Chloroplast DNA Inversion as a Subtribal Character in the Phaseoleae (Leguminosae)
Systematic Botany, 1990, 15, 378
0.582Citations (PDF)
154Evolutionary transfer of the chloroplast tufA gene to the nucleus
Nature, 1990, 344, 262-265
37.9229Citations (PDF)
155Evolutionary Significance of the Loss of the Chloroplast-DNA Inverted Repeat in the Leguminosae Subfamily Papilionoideae1.969Citations (PDF)
156Chloroplast DNA Restriction Site Variation and the Phylogeny of Coreopsis Section Coreopsis (Asteraceae)2.28Citations (PDF)
157CHLOROPLAST DNA SYSTEMATICS OF LILIOID MONOCOTS: RESOURCES, FEASIBILITY, AND AN EXAMPLE FROM THE ORCHIDACEAE
American Journal of Botany, 1989, 76, 1720-1730
2.251Citations (PDF)
158Evolution of mushroom mitochondrial DNA:Suillus and related genera1.752Citations (PDF)
159Unusual characteristics of Codium fragile chloroplast DNA revealed by physical and gene mapping0.552Citations (PDF)
160Heteroplasmy of chloroplast DNA in Medicago
Plant Molecular Biology, 1989, 12, 3-11
3.261Citations (PDF)
161Rearrangement, amplification, and assortment of mitochondrial DNA molecules in cultured cells of Brassica campestris3.652Citations (PDF)
162Accelerated evolution of a false-truffle from a mushroom ancestor
Nature, 1989, 339, 140-142
37.9202Citations (PDF)
163Chloroplast DNA Systematics of Lilioid Monocots: Resources, Feasibility, and an Example from the Orchidaceae2.233Citations (PDF)
164Dispersed repeats and structural reorganization in subclover chloroplast DNA.4.7143Citations (PDF)
165The atp6 coding region has been disrupted and a novel reading frame generated in the mitochondrial genome of cytoplasmic male-sterile radish
Journal of Biological Chemistry, 1989, 264, 11706-11713
2.2111Citations (PDF)
166Plant mitochondrial DNA evolved rapidly in structure, but slowly in sequence1.7725Citations (PDF)
167Mitochondrial DNAs of Suillus: three fold size change in molecules that share a common gene order
Current Genetics, 1988, 13, 49-56
1.553Citations (PDF)
168Location, identity, amount and serial entry of chloroplast DNA sequences in crucifer mitochondrial DNAs
Current Genetics, 1988, 14, 501-509
1.552Citations (PDF)
169Evolutionary significance of inversions in legume chloroplast DNAs
Current Genetics, 1988, 14, 65-74
1.5131Citations (PDF)
170A transcription map of the pea chloroplast genome
Current Genetics, 1988, 14, 75-89
1.554Citations (PDF)
171Chloroplast DNA Variation and Plant Phylogeny0.7505Citations (PDF)
172A Molecular Reexamination of Introgression between Helianthus annuus and H bolanderi (Compositae)1.944Citations (PDF)
173Physical and gene organization of mitochondrial DNA in fertile and male sterile sunflower. CMS-associated alterations in structure and transcription of theatpA gene
Nucleic Acids Research, 1988, 16, 3787-3799
15.5143Citations (PDF)
174A MOLECULAR REEXAMINATION OF INTROGRESSION BETWEEN HELIANTHUS ANNUUS AND H. BOLANDERI (COMPOSITAE)1.9145Citations (PDF)
175Chloroplast genomes of two conifers lack a large inverted repeat and are extensively rearranged.7.5169Citations (PDF)
176PHYLOGENETIC IMPLICATIONS OF CHLOROPLAST DNA RESTRICTION SITE VARIATION IN THE MUTISIEAE (ASTERACEAE)
American Journal of Botany, 1988, 75, 753-766
2.2100Citations (PDF)
177Intraspecific variation and multicircularity in Brassica mitochondrial DNAs.
Genetics, 1988, 118, 341-351
4.2120Citations (PDF)
178Phylogenetic Implications of Chloroplast DNA Restriction Site Variation in the Mutisieae (Asteraceae)2.240Citations (PDF)
179Mitochondrial DNA Rearrangements and Transcriptional Alterations in the Male-Sterile Cytoplasm of Ogura Radish
Molecular and Cellular Biology, 1988, 8, 1474-1480
2.579Citations (PDF)
180Extensive mitochondrial specific transcription of theBrassica campestrismitochondrial genome
Nucleic Acids Research, 1987, 15, 5141-5156
15.592Citations (PDF)
181Chloroplast DNA Evolution and Biosystematic Uses of Chloroplast DNA Variation
American Naturalist, 1987, 130, S6-S29
2.5324Citations (PDF)
182Unusual structure of geranium chloroplast DNA: A triple-sized inverted repeat, extensive gene duplications, multiple inversions, and two repeat families7.5160Citations (PDF)
183A chloroplast DNA inversion marks an ancient evolutionary split in the sunflower family (Asteraceae)7.5315Citations (PDF)
184Unicircular structure of the Brassica hirta mitochondrial genome
Current Genetics, 1987, 11, 565-570
1.5190Citations (PDF)
185Chloroplast DNA evolution among legumes: Loss of a large inverted repeat occurred prior to other sequence rearrangements
Current Genetics, 1987, 11, 275-286
1.5218Citations (PDF)
186Chloroplast DNA from lettuce and Barnadesia (Asteraceae): structure, gene localization, and characterization of a large inversion
Current Genetics, 1987, 11, 553-564
1.5222Citations (PDF)
187Analysis of organelle genomes in a somatic hybrid derived from cytoplasmic male-sterile Brassica oleracea and atrazine-resistant B. campestris3.666Citations (PDF)
188Conservation of chloroplast genome structure among vascular plants
Current Genetics, 1986, 10, 823-833
1.5200Citations (PDF)
189Structural evolution and flip-flop recombination of chloroplast DNA in the fern genus Osmunda
Current Genetics, 1986, 10, 835-841
1.590Citations (PDF)
190Tripartite mitochondrial genome of spinach: physical structure, mitochondrial gene mapping, and locations of transposed chloroplast DNA sequences
Nucleic Acids Research, 1986, 14, 5651-5666
15.5106Citations (PDF)
191Tricircular mitochondrial genomes ofBrassicaandRaphanus: reversal of repeat configurations by inversiton
Nucleic Acids Research, 1986, 14, 9755-9764
15.5125Citations (PDF)
192Chloroplast DNA and molecular phylogeny
BioEssays, 1985, 2, 263-267
2.140Citations (PDF)
193Comparative Organization of Chloroplast Genomes
Annual Review of Genetics, 1985, 19, 325-354
7.21,006Citations (PDF)
194CHLOROPLAST DNA VARIATION AND EVOLUTION IN PISUM: PATTERNS OF CHANGE AND PHYLOGENETIC ANALYSIS
Genetics, 1985, 109, 195-213
4.2206Citations (PDF)
195Recombination sequences in plant mitochondrial genomes: diversity and homologies to known mitochondrial genes
Nucleic Acids Research, 1984, 12, 6141-6157
15.588Citations (PDF)
196Tripartite structure of the Brassica campestris mitochondrial genome
Nature, 1984, 307, 437-440
37.9464Citations (PDF)
197Extensive and widespread homologies between mitochondrial DNA and chloroplast DNA in plants7.5188Citations (PDF)
198Chloroplast DNA exists in two orientations
Nature, 1983, 301, 92-93
37.9369Citations (PDF)
199An unusual mitochondrial DNA plasmid in the genus Brassica
Nature, 1983, 301, 725-728
37.9160Citations (PDF)
200Phytochrome control of RNA levels in developing pea and mung-bean leaves
Planta, 1983, 158, 487-500
3.3280Citations (PDF)
201Chloroplast DNA evolution and the origin of amphidiploid Brassica species3.6442Citations (PDF)
202Structure and sequence evolution of three legume chloroplast DNAs0.588Citations (PDF)
203Physical and gene mapping of chloroplast DNA from Atriplex triangularis and Cucumis sativa
Nucleic Acids Research, 1982, 10, 1593-1605
15.5157Citations (PDF)
204Novel evolutionary variation in transcription and location of two chloroplast genes
Nucleic Acids Research, 1982, 10, 6819-6832
15.540Citations (PDF)
205Chloroplast DNA evolution and phylogenetic relationships in Lycopersicon7.5295Citations (PDF)
206Chloroplast DNA rearrangements are more frequent when a large inverted repeat sequence is lost
Cell, 1982, 29, 537-550
33.6486Citations (PDF)
207Chloroplast DNA from the fern Osmunda cinnamomea: physical organization, gene localization and comparison to angiosperm
Current Genetics, 1982, 5, 165-170
1.553Citations (PDF)
208Clone banks of the mung bean, pea and spinach chloroplast genomes
Gene, 1981, 15, 21-26
2.376Citations (PDF)
209Rearrangements in the chloroplast genomes of mung bean and pea7.5221Citations (PDF)
210Deoxyribonucleic acid sequence organization in the mung bean genome
Biochemistry, 1979, 18, 5259-5266
2.457Citations (PDF)
211Title is missing!
0
1Citations (PDF)