Biblio
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2025. A Ready-to-use TR4-resilient subset.
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2025. Unravelling genomic drivers of speciation in Musa through genome assemblies of wild banana ancestors. Nature Communications. 16:961.
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2024. Painting the diversity of a world′ s favourite fruit: A next generation catalogue of cultivated bananas. Plants, People and Planet. :2024–05.
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2022. Comparative plastome analysis of Musaceae and new insights into phylogenetic relationships. BMC genomics. 23:1–20.
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2020. Unraveling the complex story of intergenomic recombination in ABB allotriploid bananas. Annals of Botany.
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2019. Metabolite profiling characterises chemotypes of Musa diploids and triploids at juvenile and pre-flowering growth stages. Scientific reports. 9:4657.
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2019. Transcriptomic analysis of resistant and susceptible banana corms in response to infection by Fusarium oxysporum f. sp. cubense tropical race 4. Scientific reports. 9:1–14.
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2019. Transcriptomic analysis of resistant and susceptible banana corms in response to infection by Fusarium oxysporum f. sp. cubense tropical race 4. Scientific reports. 9:8199.
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2018. Recombination and large structural variations shape interspecific edible bananas genomes. Molecular biology and evolution. 36:97–111.
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2016. Differential root transcriptomics in a polyploid non-model crop: the importance of respiration during osmotic stress.. Sci Rep. 6:25683.
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2016. A Genome-Wide Association Study on the Seedless Phenotype in Banana (Musa spp.) Reveals the Potential of a Selected Panel to Detect Candidate Genes in a Vegetatively Propagated Crop.. PLoS One. 11(5):e0154448.
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2016. Improvement of the banana "Musa acuminata" reference sequence using NGS data and semi-automated bioinformatics methods.. BMC Genomics. 17:243.
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2012. The banana (Musa acuminata) genome and the evolution of monocotyledonous plants.. Nature. 488(7410):213-7.

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