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
Abstract Fruit weight is a key determinant of yield in high-value vegetable crops such as tomato. Despite extensive research, the molecular mechanisms underlying this complex trait remain largely elusive, with only a few genes cloned to date based on quantitative trait loci (QTL). Here, we analyzed 2 populations and reanalyzed 3 previously published populations and identified 945 QTL associated with agro-morphological traits, including both previously reported and unidentified loci. We focused on SlGRF10 (GROWTH-REGULATING FACTOR 10) underlying a fruit weight QTL, fw1.2. Loss of SlGRF10 reduced fruit weight by decreasing cell size, without affecting cell number. Analysis of natural variation in SlGRF10 in over 1,000 tomato accessions revealed that increased single-nucleotide polymorphism diversity in SlGRF10 is associated with lower fruit weight. This suggests that putative impaired activity contributes to reduced fruit weight, while breeding-induced reduction of genetic variation may have promoted increased fruit weight. Transcriptome profiling of SlGRF10 knockout lines 7 and 20 days postanthesis identified several differentially expressed genes involved in cell cycle progression. Our findings not only confirm the role of SlGRF10 in regulating tomato fruit weight but also highlight a set of candidate genes associated with key morpho-physiological traits. With fw11.3, named as CELL SIZE REGULATOR, being the only QTL related to cell size determination in tomato fruits so far, SlGRF10 offers a valuable target for precision breeding and enhances our understanding of fruit weight in tomato and related fruit-bearing species.
Julia von Steimker, M. Macho, Regina Wendenburg et al.· Plant Physiology· 0 citations