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Nicolia, A.

Publications and source records attributed to Nicolia, A..

2 recordsLinked to original sources

Editing strigolactone biosynthesis genes in tomato reveals novel phenotypic effects and highlights D27 as a key target for parasitic weed resistance

Parasitic weed infestations pose an increasing threat to agriculture worldwide, especially in the Mediterranean region. Phelipanche ramosa and P. aegyptiaca (broomrapes) cause severe damage to field-grown tomato (Solanum lycopersicum L.). Strigolactones (SLs), apocarotenoid phytohormones, play a critical role in plant physiology and development, and are also the primary signals that trigger the germination of parasitic weed seeds. We generated CRISPR/Cas9 tomato knock-out lines for the SlD27 gene, as well as three other key genes involved in SL biosynthesis (SlCCD7, SlCCD8, SlMAX1), all within the same genetic background. The edited lines exhibited a marked reduction in SL content in root exudates, along with impaired broomrape seed germination. A comprehensive analysis of morphological, reproductive, and fruit-related traits revealed gene-specific effects on plant phenotype, including vegetative traits, fruit set, fruit development, and volatilome. Specifically, the knock-out of two CCDs and the MAX1 had a specific impact not only on plant development but also on the production of volatile organic compounds during fruit ripening. In contrast, the Sld27 lines, produced for the first time in this study, displayed a phenotype similar to the control non-edited plants, suggesting that the D27 gene holds promise as a breeding target for enhancing resistance to parasitic weeds in tomato. HighlightThe characterization of tomato CRISPR/Cas9-edited lines for the four core genes involved in strigolactone biosynthesis revealed gene-specific effects on plant phenotype, with D27 emerging as a potential target for resistance to parasitic weeds.

genetics↗

The mitochondrial orf125 affects male fertility of Solanum tuberosum (+) S. commersonii somatic hybrids and participates in the onset of ''Tuberosum''-Type CMS and evolution of common potato

Cytoplasmic male sterility (CMS) is an agronomically significant trait and a powerful tool to study interactions between nuclear and cytoplasmic genomes. In this study, the chondriomes of two isonuclear male-fertile and sterile somatic hybrids (SH9A and SH9B, respectively) between the common potato (Solanum tuberosum Group Tuberosum, tbr) and the wild species S. commersonii (cmm), were sequenced and compared to those of parental species to identify mitochondrial genes involved in the expression of male sterility. A putative novel gene (orf125) was found only in tbr and in male-sterile hybrids. Two approaches, a physical or functional deletion of orf125 by mtDNA editing in SH9B and its allotopic expression in SH9A, clearly demonstrate that orf125 affects male fertility. To trace the origin of orf125 and hypothesize its role in the evolution of common potato, we searched it in tbr varieties, tuber-bearing potato relatives and other Solanaceae. The organization of the mitochondrial genome region implicated in CMS remained consistent across all common potato accessions in GenBank. An identical tbr copy of orf125 was also detected in all six accessions belonging to the S. berthaultii complex (ber) analyzed. Such findings corroborate the hypothesis that ber accessions with T/{beta} cytoplasm crossed as female with Andean potato (S. tuberosum Group Andigenum, adg), giving rise to the differentiation of the Chilean potato (S. tuberosum Group Chilotanum), and highlights the origin of mitochondrial factors contributing to genic-cytoplasmic male sterility in tbr x adg (or some wild species) hybrids.

plant biology↗