The leaf idioblastome of the medicinal plant Catharanthus roseus is associated with stress resistance and alkaloid metabolism

Author:

Guedes Joana G123ORCID,Ribeiro Rogério124ORCID,Carqueijeiro Inês1ORCID,Guimarães Ana Luísa4ORCID,Bispo Cláudia5ORCID,Archer John12ORCID,Azevedo Herlander124ORCID,Fonseca Nuno A12ORCID,Sottomayor Mariana124ORCID

Affiliation:

1. CIBIO, Centro de Investigação em Biodiversidade e Recursos Genéticos, InBIO Laboratório Associado, Campus de Vairão, Universidade do Porto , 4485-661 Vairão , Portugal

2. BIOPOLIS Program in Genomics, Biodiversity and Land Planning, CIBIO , Campus de Vairão, 4485-661 Vairão , Portugal

3. Programa Doutoral em Biologia Molecular e Celular (MCbiology), Instituto de Ciências Biomédicas Abel Salazar (ICBAS), Universidade do Porto , 4050-313 Porto , Portugal

4. Departamento de Biologia, Faculdade de Ciências da Universidade do Porto , 4169-007 Porto , Portugal

5. Instituto Gulbenkian de Ciência , Rua da Quinta Grande 6, 2780-156 Oeiras , Portugal

Abstract

Abstract Catharanthus roseus leaves produce a range of monoterpenoid indole alkaloids (MIAs) that include low levels of the anticancer drugs vinblastine and vincristine. The MIA pathway displays a complex architecture spanning different subcellular and cell type localizations, and is under complex regulation. As a result, the development of strategies to increase the levels of the anticancer MIAs has remained elusive. The pathway involves mesophyll specialized idioblasts where the late unsolved biosynthetic steps are thought to occur. Here, protoplasts of C. roseus leaf idioblasts were isolated by fluorescence-activated cell sorting, and their differential alkaloid and transcriptomic profiles were characterized. This involved the assembly of an improved C. roseus transcriptome from short- and long-read data, IDIO+. It was observed that C. roseus mesophyll idioblasts possess a distinctive transcriptomic profile associated with protection against biotic and abiotic stresses, and indicative that this cell type is a carbon sink, in contrast to surrounding mesophyll cells. Moreover, it is shown that idioblasts are a hotspot of alkaloid accumulation, suggesting that their transcriptome may hold the key to the in-depth understanding of the MIA pathway and the success of strategies leading to higher levels of the anticancer drugs.

Funder

European Regional Development Fund

European Union’s Horizon 2020 Research and Innovation Programme

Fundação para a Ciência e a Tecnologia

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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