Structural Plastome Evolution in Holoparasitic Hydnoraceae with Special Focus on Inverted and Direct Repeats

Author:

Jost Matthias1ORCID,Naumann Julia1,Bolin Jay F.2,Martel Carlos34ORCID,Rocamundi Nicolás5,Cocucci Andrea A.5,Lupton Darach67,Neinhuis Christoph1,Wanke Stefan18ORCID

Affiliation:

1. Institut für Botanik, Technische Universität Dresden , Dresden, Germany

2. Department of Biology, Catawba College , Salisbury, NC, USA

3. Royal Botanic Gardens, Kew , Richmond, Surrey TW9 3DS, UK

4. Instituto de Ciencias Ómicas y Biotecnología Aplicada, Pontificia Universidad Católica del Perú , Lima, Peru

5. Laboratorio de Ecología Evolutiva y Biología Floral, IMBIV, CONICET and Universidad Nacional de Córdoba , Córdoba, Argentina

6. Oman Botanic Garden , Seeb, Sultanate of Oman

7. National Botanic Gardens , Glasnevin, Ireland

8. Departamento de Botánica, Instituto de Biología, Universidad Nacional Autónoma de México , Mexico City, Mexico

Abstract

Abstract Plastome condensation during adaptation to a heterotrophic lifestyle is generally well understood and lineage-independent models have been derived. However, understanding the evolutionary trajectories of comparatively old heterotrophic lineages that are on the cusp of a minimal plastome, is essential to complement and expand current knowledge. We study Hydnoraceae, one of the oldest and least investigated parasitic angiosperm lineages. Plastome comparative genomics, using seven out of eight known species of the genus Hydnora and three species of Prosopanche, reveal a high degree of structural similarity and shared gene content; contrasted by striking dissimilarities with respect to repeat content [inverted and direct repeats (DRs)]. We identified varying inverted repeat contents and positions, likely resulting from multiple, independent evolutionary events, and a DR gain in Prosopanche. Considering different evolutionary trajectories and based on a fully resolved and supported species-level phylogenetic hypothesis, we describe three possible, distinct models to explain the Hydnoraceae plastome states. For comparative purposes, we also report the first plastid genomes for the closely related autotrophic genera Lactoris (Lactoridaceae) and Thottea (Aristolochiaceae).

Publisher

Oxford University Press (OUP)

Subject

Genetics,Ecology, Evolution, Behavior and Systematics

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