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Mercati, F.

Publications and source records attributed to Mercati, F..

3 recordsLinked to original sources

Distinct seasonal acclimatisation trajectories characterize transplanted and natural meadow seagrass plants

Successful establishment is a critical determinant of seagrass restoration, yet the molecular mechanisms underlying seedling acclimatisation to natural environments remain poorly understood. Here, we combined seasonal physiological observations, transcriptome profiling, and gene co-expression network analysis to investigate the mechanisms underlying the early post-transplantation phase of Posidonia oceanica, a dominant foundation seagrass species, following transplantation. Transplanted seedlings were compared with plants from adjacent natural meadows over the first six months after transplantation using leaf and root samples collected in spring, summer, and autumn. Tissue identity was the primary driver of transcriptomic variation, but transplanted seedlings remained transcriptionally distinct from plants in natural meadows throughout the study, with roots showing greater divergence than leaves, suggesting tissue-specific trajectories of post-transplantation acclimatisation. The early post-transplantation phase was characterised by the activation of genes associated with RNA processing, transcriptional regulation, and abscisic acid signalling. During a summer marine heatwave (28 {degrees}C), both plant groups induced conserved heat-response pathways, including heat-shock proteins and protein-folding mechanisms. Furthermore, transplanted seedlings maintained higher expression of genes involved in photosystem II repair and photoprotection and exhibited reduced leaf growth and extensive leaf necrosis, consistent with a greater requirement for photosynthetic maintenace under prolonged thermal stress. Gene co-expression network analysis revealed that regulatory networks governing structural integrity, hormone signalling, and defence were more stable in natural meadow plants, while transplanted seedlings progressively reorganized their gene co-expression patterns to resemble those of natural meadow plants, particularly in leaves. Our findings reveal tissue-specific molecular trajectories of acclimatisation during early seedling establishment and identify candidate molecular indicators of field acclimatisation and thermal stress responses, providing new mechanistic insights relevant to seedling-based seagrass restoration under climate change.

plant biology↗

Gene Expression Landscapes Driving Early Life Stages of the Keystone Seagrass Posidonia oceanica

Seagrasses are marine angiosperms forming extensive underwater meadows that provide habitat, stabilize sediments, store carbon, and protect coastlines. Posidonia oceanica is the endemic foundation seagrass species of the Mediterranean, yet its meadows are rapidly declining. Despite its ecological importance, the molecular basis of P. oceanica development remains poorly understood. Here, we analyzed gene expression in roots, leaves, and seeds across four developmental stages, revealing strong tissue-specific patterns and temporally regulated expression dynamics. Leaves exhibited active regulation of photosynthesis-related processes, while roots were enriched in pathways linked to carbohydrate metabolism and cell wall biogenesis, supporting primary root growth and establishment. Seeds retained metabolic activity, with glycolytic enzymes indicating readiness for germination. Temporal analyses identified a major transcriptional shift, with distinct gene sets sequentially activated during early establishment and late maturation across tissues. Weighted Gene Co-expression Network Analysis identified modules strongly associated with specific tissues and developmental transitions, highlighting key hub genes involved in photosynthesis, metabolism, cell wall remodeling, and protein synthesis. Together, these results reveal complex, temporally coordinated regulatory networks underlying P. oceanica development O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=164 SRC="FIGDIR/small/711526v1_ufig1.gif" ALT="Figure 1"> View larger version (83K): org.highwire.dtl.DTLVardef@d5b81forg.highwire.dtl.DTLVardef@12b01ceorg.highwire.dtl.DTLVardef@838d6borg.highwire.dtl.DTLVardef@b99b40_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightGene expression analyses reveal tissue-specific and temporally regulated networks driving Posidonia oceanica development, identifying key pathways and hub genes coordinating early establishment and late maturation across roots, leaves, and seeds.

plant biology↗

Two independent origins of XY sex chromosomes in Asparagus

The relatively young and repeated evolutionary origins of dioecy (separate sexes) in flowering plants enable investigation of molecular dynamics occurring at the earliest stages of sex chromosome evolution. With two independently young origins of dioecy in the genus, Asparagus is a model taxon for studying genetic sex-determination and sex chromosome evolution. Dioecy first evolved in Asparagus [~]3-4 million years ago (Ma) in the ancestor of a now widespread Eurasian clade that includes garden asparagus (Asparagus officinalis), while the second origin occurred in a smaller, geographically restricted, Mediterranean Basin clade including Asparagus horridus. The XY sex chromosomes and sex-determination genes in garden asparagus have been well characterized, but the genetics underlying dioecy in the Mediterranean Basin clade are unknown. We generated new haplotype-resolved reference genomes for garden asparagus and A. horridus, to elucidate the sex chromosomes of A. horridus and explore how dioecy evolved between these two closely related lineages. Analysis of the A. horridus genome revealed an independently evolved XY system derived from different ancestral autosomes (chromosome 3) with different sex-determining genes than documented for garden asparagus (on chromosome 1). We estimate that proto-XY chromosomes evolved around 1-2 Ma in the Mediterranean Basin clade, following an [~]2.1-megabase inversion between the ancestral pair. Recombination suppression and LTR retrotransposon accumulation drove the establishment and expansion of the Y-linked sex-determination region (Y-SDR) that now reaches [~]9.6-megabases in A. horridus. The new garden asparagus genome revealed a Y-SDR that spans [~]1.9-megabases with ten hemizygous genes. Our results evoke hemizygosity as the most probable mechanism responsible for the origin of proto-XY recombination suppression in the Eurasian clade, and that neofunctionalization of one duplicated gene (SOFF) drove the origin of dioecy. These findings support previous inference based on phylogeographic analysis revealing two recent origins of dioecy in Asparagus. Moreover, this work implicates alternative molecular mechanisms for two separate shifts to dioecy in a model taxon important for investigating young sex chromosome evolution. SIGNIFICANCE STATEMENTFlowering plants with separate sexes are ideal systems for investigating genome dynamics underlying the earliest stages of sex chromosome evolution across the tree of life. We use Asparagus as a model to better understand early sex chromosome formation more generally, by investigating how different XY sex chromosomes evolved between two young, closely related clades. Genomic comparisons of garden asparagus and Asparagus horridus (wild related species) revealed distinct evolutionary origins of XY-chromosomes with different sex-determination mechanisms. Whereas the garden asparagus Y-chromosome originally evolved around 3-4 million years ago (Ma), following a small segmental duplication, the Y-chromosome in Asparagus horridus evolved more recently ([~]1-2 Ma) following a large structural inversion between a different chromosome pair. Interestingly, both evolutionary transitions from hermaphroditism to separate sexes occurred as ancestors of garden asparagus and Asparagus horridus independently dispersed northward out of southern Africa.

evolutionary biology↗