The complete organellar genomes of the entheogenic plant Psychotria viridis (Rubiaceae), a main component of the ayahuasca brew.
Alessandro M Varani, Saura R Silva, Simone Lopes, Jose Beethoven Figueiredo Barbosa, Danilo Oliveira, Maria Alice Corrêa, Ana Paula Moraes, Vitor F O Miranda, Francisco Prosdocimi
PeerJ January 1, 2022 DOI: 10.7717/peerj.14114 via PubMed
Summary
AI-generated from the abstractThe chloroplast genome of Psychotria viridis, a shrub used in the traditional ayahuasca brew, is 154,106 base pairs long and contains the full set of genes typical of flowering plants. Its mitochondrial genome has a complex structure with at least two alternative circular forms, one 615,370 and the other 570,344 base pairs, and shows evidence of heteroplasmy—the presence of multiple mitochondrial genome variants within an individual. Most mitochondrial genes are present, but several are pseudogenes or missing entirely. Comparative analysis of chloroplast genomes across the Rubiaceae family reveals generally conserved structures with minor variations at junction regions. These findings provide foundational genomic resources for this species and may support conservation efforts.
Study at a glance
| Characteristics | Genome assembly and annotation Peer reviewed |
|---|---|
| Population | Psychotria viridis (chacrona) |
| Topics | Ayahuasca |
| Keywords | Chacrona Chloroplast Comparative genomics Entheogen Mitochondrion |
| Citations | 7 |
| Key finding | The organellar genomes of Psychotria viridis were assembled and annotated, revealing a standard chloroplast genome and a complex mitochondrial genome with two alternative circular structures and evidence of heteroplasmy. |
Abstract
Psychotria viridis (Rubioideae: Rubiaceae), popularly known as chacrona, is commonly found as a shrub in the Amazon region and is well-known to produce psychoactive compounds, such as the N,N-dimethyltryptamine (DMT). Together with the liana Banisteropsis caapi, P. viridis is one of the main components of the Amerindian traditional, entheogenic beverage known as ayahuasca. In this work, we assembled and annotated the organellar genomes (ptDNA and mtDNA), presenting the first genomics resources for this species. The P. viridis ptDNA exhibits 154,106 bp, encoding all known ptDNA gene repertoire found in angiosperms. The Psychotria genus is a complex paraphyletic group, and according to phylogenomic analyses, P. viridis is nested in the Psychotrieae clade. Comparative ptDNA analyses indicate that most Rubiaceae plastomes present conserved ptDNA structures, often showing slight differences at the junction sites of the major four regions (LSC-IR-SSC). For the mitochondrion, assembly graph-based analysis supports a complex mtDNA organization, presenting at least two alternative and circular mitogenomes structures exhibiting two main repeats spanning 24 kb and 749 bp that may symmetrically isomerize the mitogenome into variable arrangements and isoforms. The circular mtDNA sequences (615,370 and 570,344 bp) encode almost all plant mitochondrial genes (except for the ccmC, rps7, rps10, rps14, rps19, rpl2 and rpl16 that appears as pseudogenes, and the absent genes sdh3, rps2, rsp4, rsp8, rps11, rpl6, and rpl10), showing slight variations related to exclusive regions, ptDNA integration, and relics of previous events of LTR-RT integration. The detection of two mitogenomes haplotypes is evidence of heteroplasmy as observed by the complex organization of the mitochondrial genome using graph-based analysis. Taken together, these results elicit the primary insights into the genome biology and evolutionary history of Psychotria viridis and may be used to aid strategies for conservation of this sacred, entheogenic species.