Sweetpotato (Ipomoea batatas) is a vital crop in developing countries, providing essential nutrients and combating vitamin A deficiency in Africa as a hexaploid species. The first genome sequence, cultivar Taizhong 6, utilized Illumina sequencing, later enhanced with third-generation sequencing technologies, leading to a high-quality, chromosome-scaled genome assembly. However, challenges remain in achieving precise genome annotations due to the limitations of short-read sequencing. Recently, advancements in long-read sequencing, like Oxford Nanopore Technologies, have facilitated more accurate annotations and allowed deeper insights into gene structure and alternative splicing.
A study (DOI: 10.48130/tp-0024-0009) published in Tropical Plants on 21 March 2024, builds on this progress using a refined annotation pipeline that incorporated both Nanopore full-length and extensive RNA-seq datasets, enhancing the current genome annotation for sweetpotato.
In this study, researchers improved the annotation of the I. batata genome to version 1.0.a2, utilizing a comprehensive approach integrating Nanopore full-length transcriptomes and Illumina RNA-seq data across various developmental stages and tissues of sweetpotato. Their method employed BRAKER for initial gene predictions, enriched by various genomic hints, followed by consensus model generation through EVidenceModeler (EVM). Notably, the updated annotation now contains 42,751 protein-coding genes, enhancing the model with 3′ and 5′ UTRs and increasing the average exon count per gene. Significantly, this revision added or modified 31,771 gene models, incorporating 8,736 alternative splicing isoforms, and introduced a new gene nomenclature for clearer reference. This more detailed annotation aids in precise genomic studies and supports advanced functional genomics in sweetpotato. Moreover, integrating miRNA data and their targets offers new insights into gene regulation, particularly during different developmental stages of storage roots, enhancing our understanding of sweetpotato biology and aiding targeted breeding efforts. The comprehensive gene function predictions were executed using InterProScan and eggNOG mapper, providing a richer annotation crucial for ongoing research and breeding programs focused on improving sweetpotato cultivars for global agriculture.
According to the study’s lead researcher, Prof. Guopeng Zhu, “Our study contributes to an updated genome annotation for the sweetpotato genome, which will significantly facilitate gene functional studies in sweetpotato and promote genomic analyses across the Convolvulaceae family.” Overall, this enhanced genomic framework facilitates deeper functional genomics in sweetpotato and supports advanced breeding programs by integrating detailed miRNA data and gene function predictions to improve cultivar traits.
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References
DOI
Original Source URL
https://doi.org/10.48130/tp-0024-0009
Authors
Bei Liang1,2,#, Yang Zhou1,2,#, Tianjia Liu1,2, Mengzhao Wang1,2, Yi Liu1,2, Yonghua Liu1,2 Yongping Li1,2,* , Guopeng Zhu1,2,*
Affiliations
1. School of Breeding and Multiplication (Sanya Institute of Breeding and Multiplication), Hainan University, Sanya 572025, China
2. Key Laboratory for Quality Regulation of Tropical Horticultural Crops of Hainan Province, School of Tropical Agriculture and Forestry, Hainan University, Haikou 570228, China