Literature DB >> 30118567

Insertion of a transposon-like sequence in the 5'-flanking region of the YUCCA gene causes the stony hard phenotype.

Miho Tatsuki1, Kazuo Soeno2, Yukihisa Shimada3, Yutaka Sawamura1, Yuko Suesada1, Hideaki Yaegaki1, Akiko Sato3, Yusuke Kakei3, Ayako Nakamura3, Songling Bai1, Takaya Moriguchi1, Naoko Nakajima1.   

Abstract

Melting-flesh peaches produce large amounts of ethylene, resulting in rapid fruit softening at the late-ripening stage. In contrast, stony hard peaches do not soften and produce little ethylene. The indole-3-acetic acid (IAA) level in stony hard peaches is low at the late-ripening stage, resulting in low ethylene production and inhibition of fruit softening. To elucidate the mechanism of low IAA concentration in stony hard peaches, endogenous levels of IAA and IAA intermediates or metabolites were analysed by ultra-performance liquid chromatography-tandem mass spectrometry. Although the IAA level was low, the indole-3-pyruvic acid (IPyA) level was high in stony hard peaches at the ripening stage. These results indicate that YUCCA activity is reduced in ripening stony hard peaches. The expression of one of the YUCCA isogenes in peach, PpYUC11, was suppressed in ripening stony hard peaches. Furthermore, an insertion of a transposon-like sequence was found upstream of the PpYUC11 gene in the 5'-flanking region. Analyses of the segregation ratio of the stony hard phenotype and genotype in F1 progenies indicated that the transposon-inserted allele of PpYUC11, hd-t, correlated with the stony hard phenotype. On the basis of the above findings, we propose that the IPyA pathway (YUCCA pathway) is the main auxin biosynthetic pathway in ripening peaches of 'Akatsuki' and 'Manami' cultivars. Because IAA is not supplied from storage forms, IAAde novo synthesis via the IPyA pathway (YUCCA pathway) in mesocarp tissues is responsible for auxin generation to support fruit softening, and its disruption can lead to the stony hard phenotype.
© 2018 The Authors The Plant Journal © 2018 John Wiley & Sons Ltd.

Entities:  

Keywords:  IPyA pathway (YUCCA pathway); Prunus persica (L). Batsch; YUCCA; auxin; stony hard peach; transposon

Mesh:

Substances:

Year:  2018        PMID: 30118567     DOI: 10.1111/tpj.14070

Source DB:  PubMed          Journal:  Plant J        ISSN: 0960-7412            Impact factor:   6.417


  8 in total

1.  Application of an antibody chip for screening differentially expressed proteins during peach ripening and identification of a metabolon in the SAM cycle to generate a peach ethylene biosynthesis model.

Authors:  Wenfang Zeng; Liang Niu; Zhaohui Wang; Xiaobei Wang; Yan Wang; Lei Pan; Zhenhua Lu; Guochao Cui; Weining Weng; Mingqiao Wang; Xun Meng; Zhiqiang Wang
Journal:  Hortic Res       Date:  2020-03-15       Impact factor: 6.793

2.  Diverse Functions of IAA-Leucine Resistant PpILR1 Provide a Genic Basis for Auxin-Ethylene Crosstalk During Peach Fruit Ripening.

Authors:  Xiaobei Wang; Junren Meng; Li Deng; Yan Wang; Hui Liu; Jia-Long Yao; Nicolaas Jacobus Nieuwenhuizen; Zhiqiang Wang; Wenfang Zeng
Journal:  Front Plant Sci       Date:  2021-05-12       Impact factor: 5.753

Review 3.  Prunus genetics and applications after de novo genome sequencing: achievements and prospects.

Authors:  Maria José Aranzana; Véronique Decroocq; Elisabeth Dirlewanger; Iban Eduardo; Zhong Shan Gao; Ksenija Gasic; Amy Iezzoni; Sook Jung; Cameron Peace; Humberto Prieto; Ryutaro Tao; Ignazio Verde; Albert G Abbott; Pere Arús
Journal:  Hortic Res       Date:  2019-04-05       Impact factor: 6.793

4.  Postharvest Properties of Ultra-Late Maturing Peach Cultivars and Their Attributions to Melting Flesh (M) Locus: Re-evaluation of M Locus in Association With Flesh Texture.

Authors:  Ryohei Nakano; Takashi Kawai; Yosuke Fukamatsu; Kagari Akita; Sakine Watanabe; Takahiro Asano; Daisuke Takata; Mamoru Sato; Fumio Fukuda; Koichiro Ushijima
Journal:  Front Plant Sci       Date:  2020-11-26       Impact factor: 5.753

5.  The NAC transcription factor ClNAC68 positively regulates sugar content and seed development in watermelon by repressing ClINV and ClGH3.6.

Authors:  Jinfang Wang; Yanping Wang; Jie Zhang; Yi Ren; Maoying Li; Shaowei Tian; Yongtao Yu; Yi Zuo; Guoyi Gong; Haiying Zhang; Shaogui Guo; Yong Xu
Journal:  Hortic Res       Date:  2021-10-01       Impact factor: 6.793

6.  Genome-wide identification and transcriptome profiling reveal that E3 ubiquitin ligase genes relevant to ethylene, auxin and abscisic acid are differentially expressed in the fruits of melting flesh and stony hard peach varieties.

Authors:  Bin Tan; Xiaodong Lian; Jun Cheng; Wenfang Zeng; Xianbo Zheng; Wei Wang; Xia Ye; Jidong Li; Zhiqian Li; Langlang Zhang; Jiancan Feng
Journal:  BMC Genomics       Date:  2019-11-21       Impact factor: 3.969

7.  Application of an antibody chip for screening differentially expressed proteins during peach ripening and identification of a metabolon in the SAM cycle to generate a peach ethylene biosynthesis model.

Authors:  Wenfang Zeng; Liang Niu; Zhaohui Wang; Xiaobei Wang; Yan Wang; Lei Pan; Zhenhua Lu; Guochao Cui; Weining Weng; Mingqiao Wang; Xun Meng; Zhiqiang Wang
Journal:  Hortic Res       Date:  2020-03-15       Impact factor: 6.793

8.  Transposons played a major role in the diversification between the closely related almond and peach genomes: results from the almond genome sequence.

Authors:  Tyler Alioto; Konstantinos G Alexiou; Amélie Bardil; Fabio Barteri; Raúl Castanera; Fernando Cruz; Amit Dhingra; Henri Duval; Ángel Fernández I Martí; Leonor Frias; Beatriz Galán; José L García; Werner Howad; Jèssica Gómez-Garrido; Marta Gut; Irene Julca; Jordi Morata; Pere Puigdomènech; Paolo Ribeca; María J Rubio Cabetas; Anna Vlasova; Michelle Wirthensohn; Jordi Garcia-Mas; Toni Gabaldón; Josep M Casacuberta; Pere Arús
Journal:  Plant J       Date:  2019-10-22       Impact factor: 6.417

  8 in total

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