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Cravero, C.

Publications and source records attributed to Cravero, C..

3 recordsLinked to original sources

A cryptic hybrid zone reveals the genomic basis of flower colour variation in a plant with a large and complex genome

Flower colour is known to be a classic magic trait, undergoing divergent selection pressures exerted by distinct pollinators and involved in reproductive isolation. However, variation at this trait may also results from other eco-evolutionary factors whose interpretation requires throughout context-specific analyses. Here, we investigated the eco-evolutionary causes of pink- and yellow-flowered morphs in Pedicularis comosa where their parapatric ranges form a contact zone in the East of the Pyrenees Mountains. First, we generated a near-chromosome-scale reference genome assembly for this species. We then used a Genotyping By Sequencing approach to infer patterns of genetic diversity and differentiation between populations and morphs at a total of 158 individuals from 11 localities. We found that neutral genetic structure is primarily consistent with geography rather than with colour. However, admixture analyses and clines suggest the existence of a cryptic hybrid zone between morphs. Outlier detection methods and examination of locus-by-locus cline features, then allowed to pinpoint candidate loci to explain colour variation. To gain insight into the functional aspects of these loci, we finally analysed floral transcriptomes and quantified pigments using Liquid Chromatography coupled with Mass Spectrometry (LC-MS) and confirmed the involvement of key genes in the anthocyanin metabolic pathway (e.g. DFR, FLS) and associated pigments (e.g. cyanidin and delphinidin). Our results show that implementing a highly integrative multi-omic approach can allow unraveling the genetic basis and the eco-evolutionary significance of adaptive traits with even very limited previous knowledge, on species with large and complex genomes.

evolutionary biology↗

Nissolia brasiliensis as a non-nodulating model legume

The nitrogen-fixing root nodule symbiosis (RNS) is specifically formed by four orders of angiosperms. The largest of these four orders include the legume family, the Fabaceae. Among legumes, historical model species have emerged, such as the RNS-forming Medicago truncatula and Lotus japonicus, or, more recently, Aeschynomene aevenia. By contrast, legume species that have lost RNS have been largely ignored. Here, we describe the first chromosome-level assembly for a non-RNS-forming legume, the tropical papilionoid Nissolia brasiliensis. We compared its genome to closely related legumes and identified genes associated with RNS. Finally, we developed a stable transformation protocol that can be deployed in the future to re-evolve RNS in legumes, a first step toward the goal of engineering RNS in non-legume crops.

plant biology↗

Plant mutations: slaying beautiful hypotheses by surprising evidence

Somatic mutations potentially play a role in plant evolution, but common expectations pertaining to plant somatic mutations remain insufficiently tested. Unlike in most animals, the plant germline is assumed to be set aside late in development, leading to the expectation that plants accumulate somatic mutations along growth. Therefore, several predictions were made on the fate of somatic mutations: mutations have generally low frequency in plant tissues; mutations at high frequency have a higher chance of intergenerational transmission; branching topology of the tree dictates mutation distribution; and, exposure to UV radiation increases mutagenesis. To provide new insights into mutation accumulation and transmission in plants, we produced two high-quality reference genomes and a unique dataset of 60 high-coverage whole-genome sequences of two tropical tree species, Dicorynia guianensis (Fabaceae) and Sextonia rubra (Lauraceae). We identified 15,066 de novo somatic mutations in D. guianensis and 3,208 in S. rubra, surprisingly almost all found at low frequency. We demonstrate that: 1) low-frequency mutations can be transmitted to the next generation; 2) mutation phylogenies deviate from the branching topology of the tree; and 3) mutation rates and mutation spectra are not demonstrably affected by differences in UV exposure. Altogether, our results suggest far more complex links between plant growth, ageing, UV exposure, and mutation rates than commonly thought. Significance StatementThe origin and fate of new mutations have received less attention in plants than in animals. Similarly to animals, plant mutations are expected to accumulate with growth and time, and under exposure to UV light. However, contrary to animals, plant reproductive organs form late in an individuals development, allowing the transmission to the progeny of mutations accumulated along growth. Here, we resequenced DNA from different branches differentially exposed to sunlight of two tropical tree species. We showed that new mutations are generally rare in plant tissues and do not mimic branching patterns but can nevertheless be transmitted to the progeny. Our findings provide a new perspective on heritable plant mutation and its pivotal role as the engine of evolution.

genomics↗