Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 55 checked references that resolve
resolves10.1002/lite.201000068Camelina (<i>Camelina sativa</i> L.) oil as a biofuels feedstock: Golden opportunity or false hope?
resolves10.1002/ep.10461Camelina‐derived jet fuel and diesel: Sustainable advanced biofuels
resolves10.1016/j.biochi.2015.06.009Camelina sativa: An ideal platform for the metabolic engineering and field production of industrial lipids
resolves10.1111/pbi.12379Synthesis of oleyl oleate wax esters in <i>Arabidopsis thaliana</i> and <i>Camelina sativa</i> seed oil
resolves10.1111/tpj.12378Successful high‐level accumulation of fish oil omega‐3 long‐chain polyunsaturated fatty acids in a transgenic oilseed crop
resolves10.1007/BF02541088Some compositional properties of camelina (<i>camelina sativa</i> L. Crantz) seeds and oils
resolves10.1016/j.ympev.2018.06.031Phylogenetics of Camelina Crantz. (Brassicaceae) and insights on the origin of gold-of-pleasure (Camelina sativa)
resolves10.1111/eva.12724Hybridization rate and hybrid fitness for <i>Camelina microcarpa</i> Andrz. ex DC (♀) and <i>Camelina sativa</i> (L.) Crantz(Brassicaceae) (♂)
resolves10.1111/pbr.12067Hybridization between <i><scp>C</scp>amelina sativa</i> (L.) <scp>C</scp>rantz (false flax) and <scp>N</scp>orth <scp>A</scp>merican <i><scp>C</scp>amelina</i> species
resolves10.1038/ng.2484Genome-wide association study dissects the genetic architecture of oil biosynthesis in maize kernels
resolves10.1038/nbt.3096Resequencing 302 wild and cultivated accessions identifies genes related to domestication and improvement in soybean
resolves10.1093/jhered/esw008Genome-Wide Association Study in<i>Arabidopsis thaliana</i>of Natural Variation in Seed Oil Melting Point: A Widespread Adaptive Trait in Plants
resolves10.1139/b65-008THE EFFECT OF TEMPERATURE ON THE OIL CONTENT AND FATTY ACID COMPOSITION OF THE OILS FROM SEVERAL OIL SEED CROPS
resolves10.1104/pp.16.01907Genome Wide Analysis of Fatty Acid Desaturation and Its Response to Temperature
resolves10.1186/1471-2229-13-63Plasticity and constraints on fatty acid composition in the phospholipids and triacylglycerols of Arabidopsis accessions grown at different temperatures
resolves10.1007/s11746-010-1597-7Effects of Seed Color and Growing Locations on Fatty Acid Content and Composition of Two Chia (<i>Salvia hispanica</i> L.) Genotypes
resolves10.1086/303399Adaptive Evolution of Seed Oils in Plants: Accounting for the Biogeographic Distribution of Saturated and Unsaturated Fatty Acids in Seed Oils
resolves10.2307/2529310The Measurement of Observer Agreement for Categorical Data
resolves10.1186/s12870-014-0385-1Side-effects of domestication: cultivated legume seeds contain similar tocopherols and fatty acids but less carotenoids than their wild counterparts
resolves10.1016/j.flora.2019.151477The Eurasian steppe belt in time and space: Phylogeny and historical biogeography of the false flax (Camelina Crantz, Camelineae, Brassicaceae)
resolves10.1139/cjb-2016-0070An update to the Canadian range, abundance, and ploidy of <i>Camelina</i> spp. (Brassicaceae) east of the Rocky Mountains
resolves10.1042/bj1120325The effect of low temperatures on fatty acid biosynthesis in plants
resolves10.1002/joc.1276Very high resolution interpolated climate surfaces for global land areas
resolves10.1016/j.indcrop.2019.06.006Yield and seed composition of 10 spring camelina genotypes cultivated in the temperate climate of Central Europe
resolves10.1016/j.indcrop.2017.06.022Agronomic performance and seed quality attributes of Camelina (Camelina sativa L. crantz) in multi-environment trials across Europe and Canada
resolves10.1104/pp.112.205120<i>SmartGrain</i>: High-Throughput Phenotyping Software for Measuring Seed Shape through Image Analysis
resolves10.1890/12-2010.1PERMANOVA, ANOSIM, and the Mantel test in the face of heterogeneous dispersions: What null hypothesis are you testing?
resolves10.1186/s12859-016-1431-9Fast-GBS: a new pipeline for the efficient and highly accurate calling of SNPs from genotyping-by-sequencing data
resolves10.14806/ej.17.1.200Cutadapt removes adapter sequences from high-throughput sequencing reads
resolves10.1038/ncomms4706The emerging biofuel crop Camelina sativa retains a highly undifferentiated hexaploid genome structure
resolves10.1086/519795PLINK: A Tool Set for Whole-Genome Association and Population-Based Linkage Analyses
resolves10.1371/journal.pone.0206711On the prevalence of uninformative parameters in statistical models applying model selection in applied ecology
resolves10.18637/jss.v075.i06<b>robustlmm</b>: An <i>R</i> Package for Robust Estimation of Linear Mixed-Effects Models
The 12 references without a DOI — listed, not checked
no DOI — not checkedBlume R, Rakhmetov D. Comparative analysis of oil fatty acid composition of Ukrainian spring Camelina sativa breeding forms and varieties as a perspective biodiesel source. Cruciferae Newslett. 2017;36:13–7.
no DOI — not checkedMandáková T, Pouch M, Brock JR, Al-Shehbaz IA, Lysak MA. Origin and evolution of diploid and allopolyploid Camelina genomes was accompanied by chromosome shattering. Plant Cell. 2019;31(11):2596–612.
no DOI — not checkedAl-Shehbaz IA, Beilstein MA. Camelina. In: Flora of North America Editorial Committee, vol. 7. North of Mexico New York and Oxford: Oxford University Press; 2010. p. 451–3.
no DOI — not checkedSinskaja EN. 1928. The oleiferous plants and root crops of the family Cruciferae. Bulletin of Applied Botany, Genetics and Plant Breeding [Russian title: Труды по прикладной ботанике, генетике и селекции] 19: 1–648. (In Russian).
no DOI — not checkedSinskaja EN, Beztuzheva AA. 1931. The forms of Camelina sativa in connection with climate, flax and man. Bulletin of Applied Botany, Genetics and Plant Breeding [Russian title: Труды по прикладной ботанике, генетике и селекции] 25: 98–200. (In Russian).
no DOI — not checkedWu JR. Natural trait variation for taxonomic classification and breeding potential assessment in the genus Camelina. Ottawa, ON, Canada: PhD thesis, Carleton University; 2016.
no DOI — not checkedChadhary R, Koh CS, Kagale S, Tang L, Wu SW, Lv Z, Mason AS, Sharpe AG, Diederichsen A, Parkin IA. Assessing diversity in the Camelina genus provides insights into the genome structure of Camelina sativa. G3: Genes, Genomes. Genetics. 2020;10(4):1297–308.
no DOI — not checkedNagaharu U. Genome analysis in Brassica with special reference to the experimental formation of B. napus and Peculiar Mode of Fertilization. Jpn J Botany. 1935;7:389–452.
no DOI — not checkedde Candolle AP. Regni Vegetabilis Systema Naturale, sive Ordines, genera et species plantarum secundum methodi naturalis normas digestarum et descriptarum, vol. 2. Paris: Treuttel et Würtz; 1821. p. iv–745.
no DOI — not checkedAnderson MJ. A new method for non-parametric multivariate analysis of variance: Non-parametric manova for ecology. Austral Ecol. 2001;26(1):32–46.
no DOI — not checkedOksanen J, Kindt R, Legendre P, O’Hara B, Stevens MHH, Oksanen MJ, Suggests M. The vegan package. Community Ecol Package. 2007;10:631–7.
no DOI — not checkedBates D, Sarkar D, Bates MD, Matrix L. The lme4 package. R Package Version. 2007;2(1):74.
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