A cryptic variation in a member of the Ovate Family Proteins is underlying the melon fruit shape QTL fsqs8.1

Key message The gene underlying the melon fruit shape QTL fsqs8.1 is a member of the Ovate Family Proteins. Variation in fruit morphology is caused by changes in gene expression likely due to a cryptic structural variation in this locus. Melon cultivars have a wide range of fruit morphologies. Quant...

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Veröffentlicht in:Theoretical and applied genetics 2022-03, Vol.135 (3), p.785-801
Hauptverfasser: Martínez-Martínez, Cecilia, Gonzalo, Maria José, Sipowicz, Pablo, Campos, Manuel, Martínez-Fernández, Irene, Leida, Carmen, Zouine, Mohammed, Alexiou, Konstantinos G., Garcia-Mas, Jordi, Gómez, María Dolores, Tornero, Pablo, Pérez-Amador, Miguel Ángel, Esteras, Cristina, Picó, Belén, Romero, Carlos, Monforte, Antonio J.
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container_end_page 801
container_issue 3
container_start_page 785
container_title Theoretical and applied genetics
container_volume 135
creator Martínez-Martínez, Cecilia
Gonzalo, Maria José
Sipowicz, Pablo
Campos, Manuel
Martínez-Fernández, Irene
Leida, Carmen
Zouine, Mohammed
Alexiou, Konstantinos G.
Garcia-Mas, Jordi
Gómez, María Dolores
Tornero, Pablo
Pérez-Amador, Miguel Ángel
Esteras, Cristina
Picó, Belén
Romero, Carlos
Monforte, Antonio J.
description Key message The gene underlying the melon fruit shape QTL fsqs8.1 is a member of the Ovate Family Proteins. Variation in fruit morphology is caused by changes in gene expression likely due to a cryptic structural variation in this locus. Melon cultivars have a wide range of fruit morphologies. Quantitative trait loci (QTL) have been identified underlying such diversity. This research focuses on the fruit shape QTL fsqs8.1 , previously detected in a cross between the accession PI 124112 (CALC, producing elongated fruit) and the cultivar ‘Piel de Sapo’ (PS, producing oval fruit). The CALC fsqs8.1 allele induced round fruit shape, being responsible for the transgressive segregation for this trait observed in that population. In fact, the introgression line CALC8-1, carrying the fsqs8.1 locus from CALC into the PS genetic background, produced perfect round fruit. Following a map-based cloning approach, we found that the gene underlying fsqs8.1 is a member of the Ovate Family Proteins (OFP), CmOFP13, likely a homologue of AtOFP1 and SlOFP20 from Arabidopsis thaliana and tomato, respectively. The induction of the round shape was due to the higher expression of the CALC allele at the early ovary development stage. The fsqs8.1 locus showed an important structural variation, being CmOFP13 surrounded by two deletions in the CALC genome. The deletions are present at very low frequency in melon germplasm. Deletions and single nucleotide polymorphisms in the fsqs8.1 locus could not be not associated with variation in fruit shape among different melon accessions, what indicates that other genetic factors should be involved to induce the CALC fsqs8.1 allele effects. Therefore, fsqs8.1 is an example of a cryptic variation that alters gene expression, likely due to structural variation, resulting in phenotypic changes in melon fruit morphology.
doi_str_mv 10.1007/s00122-021-03998-6
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Variation in fruit morphology is caused by changes in gene expression likely due to a cryptic structural variation in this locus. Melon cultivars have a wide range of fruit morphologies. Quantitative trait loci (QTL) have been identified underlying such diversity. This research focuses on the fruit shape QTL fsqs8.1 , previously detected in a cross between the accession PI 124112 (CALC, producing elongated fruit) and the cultivar ‘Piel de Sapo’ (PS, producing oval fruit). The CALC fsqs8.1 allele induced round fruit shape, being responsible for the transgressive segregation for this trait observed in that population. In fact, the introgression line CALC8-1, carrying the fsqs8.1 locus from CALC into the PS genetic background, produced perfect round fruit. Following a map-based cloning approach, we found that the gene underlying fsqs8.1 is a member of the Ovate Family Proteins (OFP), CmOFP13, likely a homologue of AtOFP1 and SlOFP20 from Arabidopsis thaliana and tomato, respectively. The induction of the round shape was due to the higher expression of the CALC allele at the early ovary development stage. The fsqs8.1 locus showed an important structural variation, being CmOFP13 surrounded by two deletions in the CALC genome. The deletions are present at very low frequency in melon germplasm. Deletions and single nucleotide polymorphisms in the fsqs8.1 locus could not be not associated with variation in fruit shape among different melon accessions, what indicates that other genetic factors should be involved to induce the CALC fsqs8.1 allele effects. 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The induction of the round shape was due to the higher expression of the CALC allele at the early ovary development stage. The fsqs8.1 locus showed an important structural variation, being CmOFP13 surrounded by two deletions in the CALC genome. The deletions are present at very low frequency in melon germplasm. Deletions and single nucleotide polymorphisms in the fsqs8.1 locus could not be not associated with variation in fruit shape among different melon accessions, what indicates that other genetic factors should be involved to induce the CALC fsqs8.1 allele effects. 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Gonzalo, Maria José ; Sipowicz, Pablo ; Campos, Manuel ; Martínez-Fernández, Irene ; Leida, Carmen ; Zouine, Mohammed ; Alexiou, Konstantinos G. ; Garcia-Mas, Jordi ; Gómez, María Dolores ; Tornero, Pablo ; Pérez-Amador, Miguel Ángel ; Esteras, Cristina ; Picó, Belén ; Romero, Carlos ; Monforte, Antonio J.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c575t-a35fd2ac95cb5893e36034a64813acc56ec92514a748023b37e12c06a134b7203</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2022</creationdate><topic>Agricultural research</topic><topic>Agriculture</topic><topic>Alleles</topic><topic>Biochemistry</topic><topic>Biomedical and Life Sciences</topic><topic>Biotechnology</topic><topic>Chromosome Mapping</topic><topic>Cucurbitaceae - genetics</topic><topic>Cultivars</topic><topic>Developmental stages</topic><topic>Fruit</topic><topic>Fruits</topic><topic>Gene expression</topic><topic>Genetic aspects</topic><topic>Genetic factors</topic><topic>Genetic variation</topic><topic>Genomes</topic><topic>Germplasm</topic><topic>Life Sciences</topic><topic>Lycopersicon esculentum - genetics</topic><topic>Melons</topic><topic>Methods</topic><topic>Morphological variation</topic><topic>Morphology</topic><topic>Original</topic><topic>Original Article</topic><topic>Phenotypic variations</topic><topic>Physiological aspects</topic><topic>Plant Biochemistry</topic><topic>Plant Breeding/Biotechnology</topic><topic>Plant Genetics and Genomics</topic><topic>Plant proteins</topic><topic>Proteins</topic><topic>Quantitative Trait Loci</topic><topic>Single-nucleotide polymorphism</topic><topic>Solanum lycopersicum / genetics</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Martínez-Martínez, Cecilia</creatorcontrib><creatorcontrib>Gonzalo, Maria José</creatorcontrib><creatorcontrib>Sipowicz, Pablo</creatorcontrib><creatorcontrib>Campos, Manuel</creatorcontrib><creatorcontrib>Martínez-Fernández, Irene</creatorcontrib><creatorcontrib>Leida, Carmen</creatorcontrib><creatorcontrib>Zouine, Mohammed</creatorcontrib><creatorcontrib>Alexiou, Konstantinos G.</creatorcontrib><creatorcontrib>Garcia-Mas, Jordi</creatorcontrib><creatorcontrib>Gómez, María Dolores</creatorcontrib><creatorcontrib>Tornero, Pablo</creatorcontrib><creatorcontrib>Pérez-Amador, Miguel Ángel</creatorcontrib><creatorcontrib>Esteras, Cristina</creatorcontrib><creatorcontrib>Picó, Belén</creatorcontrib><creatorcontrib>Romero, Carlos</creatorcontrib><creatorcontrib>Monforte, Antonio J.</creatorcontrib><collection>Springer Nature OA Free Journals</collection><collection>Medline</collection><collection>MEDLINE</collection><collection>MEDLINE (Ovid)</collection><collection>MEDLINE</collection><collection>MEDLINE</collection><collection>PubMed</collection><collection>CrossRef</collection><collection>ProQuest Central (Corporate)</collection><collection>Entomology Abstracts (Full archive)</collection><collection>Neurosciences Abstracts</collection><collection>Health &amp; 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Variation in fruit morphology is caused by changes in gene expression likely due to a cryptic structural variation in this locus. Melon cultivars have a wide range of fruit morphologies. Quantitative trait loci (QTL) have been identified underlying such diversity. This research focuses on the fruit shape QTL fsqs8.1 , previously detected in a cross between the accession PI 124112 (CALC, producing elongated fruit) and the cultivar ‘Piel de Sapo’ (PS, producing oval fruit). The CALC fsqs8.1 allele induced round fruit shape, being responsible for the transgressive segregation for this trait observed in that population. In fact, the introgression line CALC8-1, carrying the fsqs8.1 locus from CALC into the PS genetic background, produced perfect round fruit. Following a map-based cloning approach, we found that the gene underlying fsqs8.1 is a member of the Ovate Family Proteins (OFP), CmOFP13, likely a homologue of AtOFP1 and SlOFP20 from Arabidopsis thaliana and tomato, respectively. The induction of the round shape was due to the higher expression of the CALC allele at the early ovary development stage. The fsqs8.1 locus showed an important structural variation, being CmOFP13 surrounded by two deletions in the CALC genome. The deletions are present at very low frequency in melon germplasm. Deletions and single nucleotide polymorphisms in the fsqs8.1 locus could not be not associated with variation in fruit shape among different melon accessions, what indicates that other genetic factors should be involved to induce the CALC fsqs8.1 allele effects. Therefore, fsqs8.1 is an example of a cryptic variation that alters gene expression, likely due to structural variation, resulting in phenotypic changes in melon fruit morphology.</abstract><cop>Berlin/Heidelberg</cop><pub>Springer Berlin Heidelberg</pub><pmid>34821982</pmid><doi>10.1007/s00122-021-03998-6</doi><tpages>17</tpages><orcidid>https://orcid.org/0000-0003-3461-3094</orcidid><oa>free_for_read</oa></addata></record>
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source MEDLINE; SpringerNature Journals
subjects Agricultural research
Agriculture
Alleles
Biochemistry
Biomedical and Life Sciences
Biotechnology
Chromosome Mapping
Cucurbitaceae - genetics
Cultivars
Developmental stages
Fruit
Fruits
Gene expression
Genetic aspects
Genetic factors
Genetic variation
Genomes
Germplasm
Life Sciences
Lycopersicon esculentum - genetics
Melons
Methods
Morphological variation
Morphology
Original
Original Article
Phenotypic variations
Physiological aspects
Plant Biochemistry
Plant Breeding/Biotechnology
Plant Genetics and Genomics
Plant proteins
Proteins
Quantitative Trait Loci
Single-nucleotide polymorphism
Solanum lycopersicum / genetics
title A cryptic variation in a member of the Ovate Family Proteins is underlying the melon fruit shape QTL fsqs8.1
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