Publication | Open Access
The rubber tree genome reveals new insights into rubber production and species adaptation
428
Citations
50
References
2016
Year
BotanyComparative GenomicsGeneticsRubber BiosynthesisMolecular BiologyMolecular GeneticsGenomicsPlant GenomicsPhylogenetic AnalysisPara Rubber TreePhylogeneticsMolecular EcologyMolecular AdaptationPlant BiologyGenome StudyRubber ProductionGenetic VariationAgricultural BiotechnologySpecies AdaptationNatural RubberBiologyNatural SciencesEvolutionary BiologyGenetic EngineeringSynthetic Plant BiologySymbiosisMedicine
Abstract The Para rubber tree ( Hevea brasiliensis ) is an economically important tropical tree species that produces natural rubber, an essential industrial raw material. Here we present a high-quality genome assembly of this species (1.37 Gb, scaffold N50 = 1.28 Mb) that covers 93.8% of the genome (1.47 Gb) and harbours 43,792 predicted protein-coding genes. A striking expansion of the REF/SRPP (rubber elongation factor/small rubber particle protein) gene family and its divergence into several laticifer-specific isoforms seem crucial for rubber biosynthesis. The REF/SRPP family has isoforms with sizes similar to or larger than SRPP1 (204 amino acids) in 17 other plants examined, but no isoforms with similar sizes to REF1 (138 amino acids), the predominant molecular variant. A pivotal point in Hevea evolution was the emergence of REF1, which is located on the surface of large rubber particles that account for 93% of rubber in the latex (despite constituting only 6% of total rubber particles, large and small). The stringent control of ethylene synthesis under active ethylene signalling and response in laticifers resolves a longstanding mystery of ethylene stimulation in rubber production. Our study, which includes the re-sequencing of five other Hevea cultivars and extensive RNA-seq data, provides a valuable resource for functional genomics and tools for breeding elite Hevea cultivars.
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