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Gao, L.-Z.

Publications and source records attributed to Gao, L.-Z..

3 recordsLinked to original sources

SMRT sequencing generates the chromosome-scale reference genome of tropical fruit mango, Mangifera indica

Mango (Mangifera indica), a member of the family Anacardiaceae, is one of the worlds most popular tropical fruits. Here we sequenced the variety, "Hong Xiang Ya", and generated a 371.6-Mb mango genome assembly with 34,529 predicted protein-coding genes. Aided with the published genetic map, for the first time, we assembled the M. indica genome to the chromosomes, and finally about 98.77% of the genome assembly was anchored to 20 pseudo-chromosomes. The availability of the chromosome-length genome assembly of M. indica will provide novel insights into genome evolution, understand the genetic basis of specialized phytochemical composites relevant to fruit quality, and enhance allele mining in genomics-assisted breeding for mango genetic improvement.

genomics

SMRT sequencing of the Oryza rufipogon genome reveals the genomic basis of rice adaptation

Asian cultivated rice is believed to have been domesticated from an immediate ancestral progenitor, Oryza rufipogon, which provides promising sources of novel alleles for world rice improvement. Here we first present a high-quality de novo assembly of the typical O. rufipogon genome through the integration of single-molecule sequencing (SMRT), 10x and Hi-C technologies. This chromosome-based reference genome allows a multi-species comparative analysis of the annual selfing O. sativa and its two wild progenitors, the annual selfing O. nivara and perennial outcrossing O. rufipogon, identifying massive numbers of dispensable genes that are functionally enriched in reproductive process. Comparative genomic analyses identified millions of genomic variants, of which large-effect mutations (e.g., SVs, CNV and PAVs) may affect the variation of agronomically significant traits. We demonstrate how lineage-specific expansion of rice gene families may have contributed to the formation of reproduction isolation (e.g., the recognition of pollen and male sterility), thus brightening the role in driving mating system evolution during the evolutionary process of recent speciation. We document thousands of positively selected genes that are mainly involved in flower development, ripening, pollination, reproduction and response to biotic- and abiotic stresses. We show that selection pressures may serve as crucial forces to govern substantial genomic alterations among the three rice species that form the genetic basis of rapid evolution of mating and reproductive systems under diverse habitats. This first chromosome-based wild rice genome in the genus Oryza will become powerful to accelerate the exploration of untapped genomic diversity from wild rice for the enhancement of elite rice cultivars.

genomics

SMRT sequencing yields the chromosome-scale reference genome of tea tree, Camellia sinensis var. sinensis

Tea is the oldest and most popular nonalcoholic beverage consumed in the world. It provides abundant secondary metabolites that account for its diverse flavors and health benefits. Here we present the first high-quality chromosome-length reference genome of C. sinensis var. sinensis using long read single-molecule real time (SMRT) sequencing and Hi-C technologies to anchor the [~]2.85-Gb genome assembly into 15 pseudo-chromosomes with a scaffold N50 length of [~]195.68 Mb. We annotated at least 2.17 Gb ([~]74.13%) of repetitive sequences and high-confidence prediction of 40,812 protein-coding genes in the [~]2.92-Gb genome assembly. This accurately assembled genome allows us to comprehensively annotate functionally important gene families such as those involved in the biosynthesis of catechins, theanine and caffeine. The contiguous genome assembly provides the first view of the repetitive landscape allowing us to accurately characterize retrotransposon diversity. The large tea tree genome is dominated by a handful of Ty3-gypsy long terminal repeat (LTR) retrotransposon families that recently expanded to high copy numbers. We uncover the latest bursts of numerous non-autonomous LTR retrotransposons that may interfere with the propagation of autonomous retroelements. This reference genome sequence will largely facilitate the improvement of agronomically important traits relevant to the tea quality and production.

genomics