The complexity of volatile terpene biosynthesis in roses: Particular insights into β-citronellol production

Author:

Li Hongjie1ORCID,Li Yueqing1,Yan Huijun2,Bao Tingting1,Shan Xiaotong1,Caissard Jean-Claude3,Zhang Liangsheng4ORCID,Fang Huiyi4,Bai Xue2,Zhang Jia1,Wang Zhaoxuan1,Wang Min1,Guan Qian1,Cai Ming5,Ning Guogui6ORCID,Jia Xiujuan1,Boachon Benoît3ORCID,Baudino Sylvie3ORCID,Gao Xiang1ORCID

Affiliation:

1. Key Laboratory of Molecular Epigenetics of MOE, Northeast Normal University , Changchun 130024 , China

2. Flower Research Institute, Yunnan Academy of Agricultural Sciences , Kunming 650205 , China

3. CNRS UMR 5079, Laboratoire de Biotechnologies Végétales appliquées aux Plantes Aromatiques et Médicinales, Université Jean Monnet Saint-Etienne , Saint-Etienne 42023 , France

4. Genomics and Genetic Engineering Laboratory of Ornamental Plants, College of Agriculture and Biotechnology, Zhejiang University , Hangzhou 310058 , China

5. School of Landscape Architecture, Beijing Forestry University , Beijing 100083 , China

6. Key laboratory of Horticultural Plant Biology, Ministry of Education, College of Horticulture and Forestry Sciences, Huazhong Agricultural University   Wuhan 430070 , China

Abstract

Abstract The fascinating scent of rose (Rosa genus) flowers has captivated human senses for centuries, making them one of the most popular and widely used floral fragrances. Despite much progress over the last decade, many biochemical pathways responsible for rose scents remain unclear. We analyzed the floral scent compositions from various rose varieties and selected the modern cultivar Rosa hybrida “Double Delight” as a model system to unravel the formation of rose dominant volatile terpenes, which contribute substantially to the rose fragrance. Key genes involved in rose terpene biosynthesis were functionally characterized. Cytosolic geranyl diphosphate (GPP) generated by geranyl/farnesyl diphosphate synthase (G/FPPS1) catalysis played a pivotal role in rose scent production, and terpene synthases in roses play an important role in the formation of most volatile terpenes, but not for geraniol, citral, or β-citronellol. Subsequently, a series of enzymes, including geraniol dehydrogenase, geranial reductase, 12-oxophytodienoate reductase, and citronellal reductase, were characterized as involved in the transformation of geraniol to β-citronellol in roses through three successive steps. Interestingly, the β-citronellol biosynthesis pathway appears to be conserved in other horticultural plants like Lagerstroemia caudata and Paeonia lactiflora. Our findings provide valuable insights into the biosynthesis of rose volatile terpenoid compounds and offer essential gene resources for future breeding and molecular modification efforts.

Funder

National Natural Science Foundation of China

Department of Science and Technology of Jilin Province

Fundamental Research Fund for the Central Universities

Natural Science Foundation of Yunnan Province

China Postdoctoral Science Foundation

Publisher

Oxford University Press (OUP)

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