Full-length transcriptome atlas of Panax vietnamensis var. fuscidiscus reveals novel genes and alternative splicing in tissue-specific biosynthesis of ocotillol-type saponins
Abstract
Panax vietnamensis var. fuscidiscus is the only known Panax species that accumulates exceptionally high levels of ocotillol (OCT)-type ginsenosides, particularly majonoside R2. However, the molecular mechanisms underlying OCT-type ginsenoside biosynthesis remain largely uncharacterized, due in part to the absence of comprehensive full-length transcriptome data and complete gene annotations. We combined PacBio single-molecule real-time (SMRT) and Illumina RNA sequencing (RNA-Seq) technologies to construct the first tissue-specific, full-length transcriptome atlas of P. vietnamensis var. fuscidiscus . A total of 281,468 non-redundant transcripts were assembled, including 8,089 novel genes not present in existing annotations, substantially expanding the documented gene repertoire of this species. We identified 21 candidate genes putatively involved in triterpenoid saponin biosynthesis and uncovered tissue-associated expression patterns across the oleanane (OA)-, protopanaxadiol (PPD)-, protopanaxatriol (PPT)-, and OCT-type biosynthetic pathways. Reverse transcription quantitative real-time PCR (RT-qPCR) analysis of nine candidate genes involved in triterpenoid saponin biosynthesis across root, stem, leaf, and flower tissues broadly corroborated the major tissue-associated expression patterns observed in the transcriptome data. Notably, we detected 46,917 alternative splicing (AS) events, with over 45% of expressed genes producing multiple isoforms. Several key biosynthetic genes—including dammarenediol synthase ( DDS ), cytochrome P450 716A53v2 ( CYP716A53v2 ), and mevalonate diphosphate decarboxylase ( MVD )—exhibited tissue-specific splicing patterns, such as retained introns and exon skipping, which may contribute to functional diversification of isoforms involved in OCT-type ginsenoside biosynthesis. These results highlight the importance of post-transcriptional regulation and transcript diversity in the evolution and fine-tuning of specialized metabolic pathways. This study establishes a high-quality, full-length transcriptomic resource for P. vietnamensis var. fuscidiscus , revealing previously undescribed genes and extensive alternative splicing events related to ginsenoside biosynthesis. Our findings provide novel molecular insights into the mechanisms regulating OCT-type saponin accumulation and offer a foundation for future research into the functional characterization, regulatory mechanisms, and synthetic biological production of rare triterpenoid saponins.
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Authors: Wei Li, Zhe Xu, Aneela Nijabat, Li‐Zhi Gao
Institutions: Hainan University, Sanya University, Tropical Crops Genetic Resources Institute