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A. Marchese

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Open access Jul 2026

Molecular diversity and population structure of Mediterranean fig (Ficus carica L.) germplasm: implications for conservation and climate-resilient breeding.

BACKGROUND The common fig offers significant potential for addressing agricultural challenges, particularly in climate-vulnerable regions of Mediterranean countries and beyond. Its ease of propagation makes it a low-input solution for smallholder farmers. Here, we present a genetic analysis of 351 fig accessions from Mediterranean and underrepresented regions, using 11 polymorphic Simple Sequence Repeats loci to assess genetic diversity and population structure. RESULTS A total of 281 unique genotypes was identified, revealing substantial synonymy within the germplasm. Population STRUCTURE analysis detected three main genetic groups; however, overall structure was weak, with extensive admixture and limited geographic clustering, reflecting long-term human-mediated exchange and clonal propagation. These patterns were consistently supported by Principal Component Analysis and Analysis of Molecular Variance, confirming low genetic partitioning and the predominance of variation within genotypes. Importantly, the inclusion of Italian and, for the first time, Romanian germplasm expands current knowledge beyond existing genomic datasets, providing new insights into previously underrepresented genetic resources. The identification of rare and private alleles further highlights the presence of unique and potentially adaptive variation. CONCLUSIONS Our findings demonstrate that fig germplasm harbors high and largely unstructured genetic diversity shaped by extensive gene flow and vegetative propagation. This study provides a complementary perspective to recent SNP-based analyses, highlighting the practical advantage of SSR markers for detecting clonal variation and for the cost-effective, scalable, and easily comparable management of germplasm collections. The identified diversity supports targeted conservation strategies (on-farm, in situ, and ex-situ) and represents a valuable resource for breeding climate-resilient cultivars in marginal environments. These findings contribute to global efforts aligned with Sustainable Development Goals, particularly SDG 2 (Zero Hunger) and SDG 13 (Climate Action).

E. Moisescu, F. Bonanno, Sevin Teoman Duran et al. · 0 citations
Review Open access Jul 2026

Omics Approaches to Unveil Biotic Stress Responses in Olive: Current Knowledge and Future.

Olive (Olea europaea) is a perennial crop of major economic, cultural, and ecological importance in the Mediterranean basin and worldwide, yet its productivity and sustainability are increasingly constrained by diverse pathogens, including fungi, bacteria, and viruses. The primary objective of this review is to critically evaluate how recent omics advances have improved our understanding of olive immune regulation under biotic stress, and to clarify why an integrative systems-level multi-omics perspective is essential for developing durable disease management strategies. By synthesizing genomic, transcriptomic, and emerging proteomic, microbiomics and metabolomic studies, we show that olive defense relies on tightly coordinated transcriptional reprogramming, hormone crosstalk, metabolic remodelling, and structural barriers, within a multilayered immune framework, supported by expanding genomic resources and resistance-associated loci in cultivated and wild germplasm. However, the review also identifies major limitations that currently hinder progress, including a predominant transcript-centric focus, limited proteomic, microbiomics and metabolomic depth, insufficient attention to post-translational and epigenomic regulation, underdeveloped pan-genomic frameworks, and scarce functional validation using genome-editing approaches. We conclude that integrating multi-layered omics with functional genomics and pan-genomics is crucial for translating molecular insights into resilient cultivars and sustainable disease management, and we outline key priority directions for future research and breeding applications.

A. S. Balan, A. Giovino, Tiziano Caruso et al. · 0 citations

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