First RNA-seq approach to study fruit set and parthenocarpy in zucchini (Cucurbita pepo L.)

被引:23
|
作者
Pomares-Viciana, Teresa [1 ]
Del Rio-Celestino, Mercedes [1 ]
Roman, Belen [2 ]
Die, Jose [3 ]
Pico, Belen [4 ]
Gomez, Pedro [1 ]
机构
[1] IFAPA Res Ctr La Mojonera, Genom & Biotechnol Dept, Camino San Nicolas 1, La Mojonera 04745, Almeria, Spain
[2] IFAPA Res Ctr Alameda del Obispo, Genom & Biotechnol Dept, Avd Menendez Pidal S-N, Cordoba 14004, Spain
[3] Univ Cordoba, Genet Dept, Ave Medina Azahara 5, E-14071 Cordoba, Spain
[4] Univ Politecn Valencia, Inst Conservat & Breeding Agr Biodivers COMAV UPV, Camino Vera S-N, E-46022 Valencia, Spain
关键词
Cucurbita pepo; Zucchini; Parthenocarpy; Fruit set; Differential gene expression; RNA-seq; EXPRESSION ANALYSIS; CELL-DIVISION; AUXIN; TRANSCRIPTION; GROWTH; GIBBERELLIN; REVEALS; GENES; TOOL; POLLINATION;
D O I
10.1186/s12870-019-1632-2
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background: Zucchini fruit set can be limited due to unfavourable environmental conditions in off-seasons crops that caused ineffective pollination/fertilization. Parthenocarpy, the natural or artificial fruit development without fertilization, has been recognized as an important trait to avoid this problem, and is related to auxin signalling. Nevertheless, differences found in transcriptome analysis during early fruit development of zucchini suggest that other complementary pathways could regulate fruit formation in parthenocarpic cultivars of this species. The development of next-generation sequencing technologies (NGS) as RNA-sequencing (RNA-seq) opens a new horizon for mapping and quantifying transcriptome to understand the molecular basis of pathways that could regulate parthenocarpy in this species. The aim of the current study was to analyze fruit transcriptome of two cultivars of zucchini, a non-parthenocarpic cultivar and a parthenocarpic cultivar, in an attempt to identify key genes involved in parthenocarpy. Results: RNA-seq analysis of six libraries (unpollinated, pollinated and auxin treated fruit in a non-parthenocarpic and parthenocarpic cultivar) was performed mapping to a new version of C. pepo transcriptome, with a mean of 92% success rate of mapping. In the non-parthenocarpic cultivar, 6479 and 2186 genes were differentially expressed (DEGs) in pollinated fruit and auxin treated fruit, respectively. In the parthenocarpic cultivar, 10,497 in pollinated fruit and 5718 in auxin treated fruit. A comparison between transcriptome of the unpollinated fruit for each cultivar has been performed determining that 6120 genes were differentially expressed. Annotation analysis of these DEGs revealed that cell cycle, regulation of transcription, carbohydrate metabolism and coordination between auxin, ethylene and gibberellin were enriched biological processes during pollinated and parthenocarpic fruit set. Conclusion: This analysis revealed the important role of hormones during fruit set, establishing the activating role of auxins and gibberellins against the inhibitory role of ethylene and different candidate genes that could be useful as markers for parthenocarpic selection in the current breeding programs of zucchini.
引用
收藏
页数:20
相关论文
共 50 条
  • [1] First RNA-seq approach to study fruit set and parthenocarpy in zucchini (Cucurbita pepo L.)
    Teresa Pomares-Viciana
    Mercedes Del Río-Celestino
    Belén Román
    Jose Die
    Belén Pico
    Pedro Gómez
    BMC Plant Biology, 19
  • [2] Comparison of Different Strategies for Fruit Set in Greenhouse Zucchini (Cucurbita pepo L.)
    Gazquez, J. C.
    Meca, D. E.
    Lopez, J. C.
    Baeza, E. J.
    Perez-Parra, J. J.
    XXVIII INTERNATIONAL HORTICULTURAL CONGRESS ON SCIENCE AND HORTICULTURE FOR PEOPLE (IHC2010): INTERNATIONAL SYMPOSIUM ON GREENHOUSE 2010 AND SOILLESS CULTIVATION, 2012, 927 : 187 - 194
  • [3] Involvement of ethylene biosynthesis and signalling in fruit set and early fruit development in zucchini squash (Cucurbita pepo L.)
    Martinez, Cecilia
    Manzano, Susana
    Megias, Zoraida
    Garrido, Dolores
    Pico, Belen
    Jamilena, Manuel
    BMC PLANT BIOLOGY, 2013, 13
  • [4] Inheritance of parthenocarpy in summer squash (Cucurbita pepo L.)
    de Menezes, Cicero B.
    Maluf, Wilson R.
    de Azevedo, Sebastiao M.
    Faria, Marcos V.
    Nascimento, Ildon R.
    Nogueira, Douglas W.
    Gomes, Luiz A. A.
    Bearzoti, Eduardo
    GENETICS AND MOLECULAR RESEARCH, 2005, 4 (01) : 39 - 46
  • [5] Purification and characterization of peroxidase from zucchini (Cucurbita pepo L.)
    Wang, Xiaoli
    Wang, Guoying
    Wang, Zhaosheng
    Wang, Yingying
    Huang, Rong
    JOURNAL OF FOOD PROCESSING AND PRESERVATION, 2019, 43 (07)
  • [6] Changes in carbohydrate content in zucchini fruit (Cucurbita pepo L.) under low temperature stress
    Palma, Francisco
    Carvajal, Fatima
    Lluch, Carmen
    Jamilena, Manuel
    Garrido, Dolores
    PLANT SCIENCE, 2014, 217 : 78 - 86
  • [7] Impact of Nickel Toxicity on Growth, Fruit Quality and Antioxidant Response in Zucchini Squash (Cucurbita pepo L.)
    Labidi, Oumayma
    Kouki, Rim
    Hidouri, Saida
    Bouzahouane, Hana
    Cacador, Isabel
    Perez-Clemente, Rosa M.
    Sleimi, Noomene
    PLANTS-BASEL, 2024, 13 (17):
  • [8] Classification of inheritance of trichomes in different organs in zucchini (Cucurbita pepo L.)
    Lin, Dongjuan
    Luo, Yusong
    Li, Wenling
    Hou, Yuetong
    Ding, Wenqi
    Wang, Chaojie
    Zhang, Feng
    Qu, Shuping
    Wang, Yunli
    CROP SCIENCE, 2023, 63 (02) : 712 - 723
  • [9] Reward attractions of zucchini flowers (Cucurbita pepo L.) to bumblebees (Bombus terrestris L.)
    Roldán-Serrano, AS
    Guerra-Sanz, JM
    EUROPEAN JOURNAL OF HORTICULTURAL SCIENCE, 2005, 70 (01) : 23 - 28
  • [10] Role of abscisic acid in regulating fruit set and ripening in squash (Cucurbita pepo L.)
    Chen, P.
    Pei, Y. L.
    Liang, B.
    Zhang, Y. S.
    Zhai, X. W.
    He, S. H.
    Kai, W. B.
    Sun, Y. F.
    Leng, P.
    NEW ZEALAND JOURNAL OF CROP AND HORTICULTURAL SCIENCE, 2016, 44 (04) : 274 - 290