Horticultural crops, particularly Solanaceae and Cucurbitaceae, represent a major component of global vegetable production and are increasingly exposed to climate variability and environmental constraints. Landraces and crop wild relatives constitute essential reservoirs of adaptive genetic diversity; however, their effective utilization in breeding programs remains limited by fragmented characterization, incomplete passport information, and reliance on labor-intensive morphological descriptors. These limitations hinder the systematic exploitation of conserved germplasm and restrict its integration into modern predictive breeding frameworks. Recent advances in high-throughput phenotyping, genomics, and multi-omics technologies have created new opportunities to bridge the gap between genotype and phenotype. Next-generation phenomics enables non-destructive, high-resolution quantification of plant physiological and structural traits across environments, while genomic approaches, including whole-genome resequencing, support comprehensive assessment of genetic diversity. Pangenome frameworks further extend this resolution by capturing core and variable genomic fractions, collectively defining the species variome and enabling improved identification of structural and allelic variants associated with adaptive traits. The integration of phenomic and genomic datasets through multi-omics approaches enhances the functional interpretation of trait-associated variation and strengthens the predictive capacity of breeding strategies. In this context, the genome as a functional passport constitutes a unified reference layer linking germplasm identity with genomic, phenotypic, and functional trait information, thereby enabling more systematic germplasm characterization, reduced redundancy, and improved identification of elite parental material. This mini-review highlights how the integration of phenomics, pangenomics, and multi-omics enables the transition from descriptive germplasm cataloguing toward more systematic, data-driven, and predictive breeding systems for the development of climate-resilient horticultural crops.
P. Mylona, L. Barchi, Luciana Gaccione et al.· Frontiers in Plant Science· 0 citations
Water deficit is a major constraint on pepper (Capsicum annuum) yield, yet the genetic architecture of reproductive-stage drought tolerance remains poorly resolved. We phenotyped a Balkan C. annuum diversity panel (n = 133) and an interspecific backcross inbred line (BIL) population (n = 76) under well-watered (WW) and water-stress (WS) conditions. WS was applied from anthesis of the second truss as a stepwise reduction in irrigation volume relative to WW (30% for 7 days, then 60% thereafter), maintained for 90 days across the reproductive period. We assessed yield components, soluble solids, and stress-tolerance (STI) and stress-susceptibility (SSI) indices. Genome-wide association study (GWAS) identified 104 SNP-trait associations (P < 1×10-5), and QTL mapping detected 38 significant QTLs (1,000 permutations, α = 0.01), with the QTL intervals defined at LOD ≥ 8. Integrating GWAS and QTL mapping under WS revealed overlapping loci on chromosomes 5 and 6, harboring two consensus intergenic SNPs associated with yield components and soluble solids. Haplotype analysis linked chromosome 5 alleles to higher fruit number and soluble solids. At chromosome 6, the G allele at SNP 6_28348737 was enriched in tolerant lines for fruit number. These regions harbor candidate genes for reproductive development and stress response, including GREEN RIPE-LIKE1 (GRL1), CYP77A19, Endoglucanase-like, and FLOWERING PROMOTING FACTOR 1 (FPF1), possibly through cis-regulatory variation. Together, these results advance understanding of the genetic basis of pepper yield under drought and identify candidate breeding markers.
Avanish Rai, Emil Vatov, Alicja Wieteska Georgieva et al.· Journal of Experimental Bota...· 0 citations
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