» Articles » PMID: 36926697

Comparative Genomics Reveals the Diversification of Triterpenoid Biosynthesis and Origin of Ocotillol-type Triterpenes in Panax

Overview
Journal Plant Commun
Specialty Biology
Date 2023 Mar 17
PMID 36926697
Authors
Affiliations
Soon will be listed here.
Abstract

Gene duplication is assumed to be the major force driving the evolution of metabolite biosynthesis in plants. Freed from functional burdens, duplicated genes can mutate toward novelties until fixed due to selective fitness. However, the extent to which this mechanism has driven the diversification of metabolite biosynthesis remains to be tested. Here we performed comparative genomics analysis and functional characterization to evaluate the impact of gene duplication on the evolution of triterpenoid biosynthesis using Panax species as models. We found that whole-genome duplications (WGDs) occurred independently in Araliaceae and Apiaceae lineages. Comparative genomics revealed the evolutionary trajectories of triterpenoid biosynthesis in plants, which was mainly promoted by WGDs and tandem duplication. Lanosterol synthase (LAS) was likely derived from a tandem duplicate of cycloartenol synthase that predated the emergence of Nymphaeales. Under episodic diversifying selection, the LAS gene duplicates produced by γ whole-genome triplication have given rise to triterpene biosynthesis in core eudicots through neofunctionalization. Moreover, functional characterization revealed that oxidosqualene cyclases (OSCs) responsible for synthesizing dammarane-type triterpenes in Panax species were also capable of producing ocotillol-type triterpenes. Genomic and biochemical evidence suggested that Panax genes encoding the above OSCs originated from the specialization of one OSC gene duplicate produced from a recent WGD shared by Araliaceae (Pg-β). Our results reveal the crucial role of gene duplication in diversification of triterpenoid biosynthesis in plants and provide insight into the origin of ocotillol-type triterpenes in Panax species.

Citing Articles

Enhancing active ingredient biosynthesis in Chinese herbal medicine: biotechnological strategies and molecular mechanisms.

Guo Z, Yang N, Xu D PeerJ. 2025; 13:e18914.

PMID: 39950047 PMC: 11823656. DOI: 10.7717/peerj.18914.


Functional Genomics and Comparative Genomics Analysis in Plants.

Lu Y, Zou Q Curr Issues Mol Biol. 2024; 46(12):13780-13782.

PMID: 39727951 PMC: 11726742. DOI: 10.3390/cimb46120823.


Ginsenosides: an immunomodulator for the treatment of colorectal cancer.

Qian J, Jiang Y, Hu H Front Pharmacol. 2024; 15:1408993.

PMID: 38939839 PMC: 11208871. DOI: 10.3389/fphar.2024.1408993.


Telomere-to-telomere reference genome for highlights the evolution of saponin biosynthesis.

Song Y, Zhang Y, Wang X, Yu X, Liao Y, Zhang H Hortic Res. 2024; 11(6):uhae107.

PMID: 38883331 PMC: 11179851. DOI: 10.1093/hr/uhae107.


Lineage-Specific CYP80 Expansion and Benzylisoquinoline Alkaloid Diversity in Early-Diverging Eudicots.

An Z, Gao R, Chen S, Tian Y, Li Q, Tian L Adv Sci (Weinh). 2024; 11(19):e2309990.

PMID: 38477432 PMC: 11109638. DOI: 10.1002/advs.202309990.

References
1.
Landis J, Soltis D, Li Z, Marx H, Barker M, Tank D . Impact of whole-genome duplication events on diversification rates in angiosperms. Am J Bot. 2018; 105(3):348-363. DOI: 10.1002/ajb2.1060. View

2.
Stanke M, Diekhans M, Baertsch R, Haussler D . Using native and syntenically mapped cDNA alignments to improve de novo gene finding. Bioinformatics. 2008; 24(5):637-44. DOI: 10.1093/bioinformatics/btn013. View

3.
Kim O, Um Y, Jin M, Kim J, Hegebarth D, Busta L . A Novel Multifunctional C-23 Oxidase, CYP714E19, is Involved in Asiaticoside Biosynthesis. Plant Cell Physiol. 2018; 59(6):1200-1213. DOI: 10.1093/pcp/pcy055. View

4.
Qin L, Hu Y, Wang J, Wang X, Zhao R, Shan H . Insights into angiosperm evolution, floral development and chemical biosynthesis from the Aristolochia fimbriata genome. Nat Plants. 2021; 7(9):1239-1253. PMC: 8445822. DOI: 10.1038/s41477-021-00990-2. View

5.
Fan W, Huang Y, Zheng H, Li S, Li Z, Yuan L . Ginsenosides for the treatment of metabolic syndrome and cardiovascular diseases: Pharmacology and mechanisms. Biomed Pharmacother. 2020; 132:110915. DOI: 10.1016/j.biopha.2020.110915. View