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Data from: Transcriptionally active LTR retrotransposons in Eucalyptus genus are differentially expressed and insertionally polymorphic
负责人:
关键词:
Eucalyptus grandis;LTR retrotransposons;Gypsy;Eucalyptus retrotransposon;Copia
DOI:
doi:10.5061/dryad.h2t57
摘要:
Background: In Eucalyptus genus, studies on genome composition and transposable elements (TEs) are particularly scarce. Nearly half of the recent
Data from: Speciation in the presence of gene flow: population genomics of closely related and diverging Eucalyptus species
负责人:
关键词:
Eucalyptus dendromorpha;Eucalyptus stricta;Diversity Arrays Technology (DArTseq);Eucalyptus cunninghamii;Eucalyptus laophila;Eucalyptus obstans;Eucalyptus langleyi
DOI:
doi:10.5061/dryad.gd8gp17
摘要:
in our understanding of speciation, there are still many unanswered questions, especially regarding barriers to gene flow in diverging populations. Eucalyptus is an app
Eucalyptus trees, Mihecani, Mozambique, ca.1925
负责人:
关键词:
agriculture education School children
DOI:
doi:10.25549/impa-c123-80009
摘要:
"Blue gum [Eucalyptus] trees near school". Large group portrait showing six rows of school children with Eucalyptus trees behind them. Mihecani
Data from: Estimations of evapotranspiration in an age sequence of Eucalyptus plantations in subtropical China
负责人:
关键词:
DOI:
doi:10.5061/dryad.53d8h
摘要:
Eucalyptus species are widely planted for reforestation in subtropical China. However, the effects of Eucalyptus plantations on the regional
Data from: Morphological and moisture availability controls of the leaf area-to-sapwood area ratio: analysis of measurements on Australian trees
负责人:
关键词:
Eucalyptus regnans;Pultenea flexilis;Hakea teretifolia;Eremophila longifolia;Calamus australis;Lomatia silaifolia;Boronia pinnata;Eucalyptus sclerophylla;Alstonia muelleriana;Eucalyptus socialis;Pimelea microcephala;sapwood area;Leptospermum rupestre;Aegiceras corniculatum;tree morphology;Acacia colletioides;Cryptocarya mackinnoniana;Eucalyptus crebra;Calamus caryotoides;Banksia littoralis;Eremophila glabra;Eucalyptus intertexta;Persoonia linearis;Ceratopelatum sucirubrum;Richea scoparium;Eucalyptus haemostoma;Olearia pimelioides;Acacia mearnsii;Bertya cunninghamii;Acacia myrtifolia;Eucalyptus polybractea;Eucalyptus delegatensis;Geijera parviflora;Philotheca difformis;Leucopogon esquamatus;Angophora costata;Holocene;climatic moisture;Avicennia marina;Isopogon anemonifolius;Persoonia levis;Eucalyptus occidentalis;Leucopogon microphyllus;Argyrodendron trifoliolatum;Eucalyptus miniata and Eucalyptus tetrodonta;Castanospora alphandii;Doryphora aromatica;Dillwynia retorta;Corymbia gummifera;Eucalyptus miniata;Acacia floribunda;Nothofagus cunninghamii;Pultenaea stipularis;Acacia suaveolens;Angophora hispida;Syncarpia glomulifera;Callitris glaucophylla;Eucalyptus tetrodonta;Diselma archeri;Alphitonia whitei;Eucalyptus sieberi;Brachychiton australis;Hakea tephrosperma;Melaleuca uncinata;Astrotricha floccosa;pipe model;Phyllanthus hirtellus;Doryphora sassafras;Leptospermum trinervium;plant hydraulics;Beyeria opaca;Glochidion ferdinandi;Acacia wilhelmiana;Tasmannia lanceolata;Santalum acuminatum;Brachychiton populneus;Epacris pulchella;Eucalyptus loxophleba;Acacia doratoxylon;Argyrodedron trifoliolatum;Eucalyptus nitens;Banksia integrifolia;Eriostemon australasius;Pinus radiata;Cassinia laevis;Eucalyptus maculata;Flindersia brayleyana;Micrantheum ericoides;Acacia dealbata;Dodonaea viscosa;Angophora bakeri;Banksia attenuata;Grevillea speciosa;Corymbia opaca;Gompholobium glabratum;Syzygium johnsonii;Eremophila deserti;Eucalyptus marginata;Angophora hispida; Banksia oblongifolia;Podocarpus lawrencei;Dodonaea viscosa spathulata;Senna artemisioides;Lasiopetalum ferrugineum;Persoonia pinifolia;Eucalyptus camaldulensis;Pultenaea elliptica;Banksia spinulosa;Acacia havilandii;Eutaxia microphylla;Austromyrtus bidwillii;Eucalyptus populnea;Gillbeea adenopetala;Eucalyptus victrix;Persoonia lanceolata;Eucalyptus capitellata;Phyllota phylicoides;Baeckea brevifolia;Eucalyptus gomphocelia;Leptospermum squarrosum;Eucalyptus dumosa;Acacia aneura;Banksia menziesii;Eucalyptus globulus;Eucalyptus coccifera;Ceratopetalum apetalum;Synoum glandulosum;Cissus hypoglauca;Eucalyptus kochii;Epacris microphylla;Olearia decurrens;Boronia ledifolia;Hibbertia bracteata;Phyllocladus aspleniifolius;Petrophile pulchella;Olearia oswaldii;Banksia ilicifolia;Cardwellia sublimis;Lambertia formosa;Hakea dactyloides;Cochlospermum gillivraei;Eucalyptus largiflorens;Alphitonia excelsa;Banksia oblongifolia;Eucalyptus grandis;Pomaderris aspera;Bossiaea obcordata;Atherosperma moschatum;leaf area;Acacia havilandiorum
DOI:
doi:10.5061/dryad.m7m4r
摘要:
t the sapwood cross-sectional area of a stem or branch at any point should scale isometrically with the area of leaves distal to that point. Opt
Data from: Multiple introductions from multiple sources: invasion patterns for an important eucalyptus leaf pathogen
负责人:
关键词:
Eucalyptus;population genetics;Teratosphaeria suttonii;1995-2010;forest biosecurity;plantation forestry;alien invasive;microsatellite markers
DOI:
doi:10.5061/dryad.rc8hj
摘要:
of Eucalyptus originate in Australia and consequently with indigenous populations available, and it is possible to study the pathways of invasion. Teratosphaeria
Spatial variability of soil physical attributes in integrated production systems in the Amazon region
负责人:
关键词:
100199 Agricultural Biotechnology not elsewhere classified
DOI:
doi:10.6084/m9.figshare.11266772.v1
摘要:
in alleys between eucalyptus (Eucalyptus spp.) rows, spaced at 18, 30, and 42 m. Corn grain and forage yields were positively correlated with soil c
Spatial variability of soil physical attributes in integrated production systems in the Amazon region
负责人:
关键词:
100199 Agricultural Biotechnology not elsewhere classified
DOI:
doi:10.6084/m9.figshare.11266772
摘要:
in alleys between eucalyptus (Eucalyptus spp.) rows, spaced at 18, 30, and 42 m. Corn grain and forage yields were positively correlated with soil c

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