Literature DB >> 22409726

Spermidine application to young developing peach fruits leads to a slowing down of ripening by impairing ripening-related ethylene and auxin metabolism and signaling.

Patrizia Torrigiani1, Daniela Bressanin, Karina Beatriz Ruiz, Alice Tadiello, Livio Trainotti, Claudio Bonghi, Vanina Ziosi, Guglielmo Costa.   

Abstract

Peach (Prunus persica var. laevis Gray) was chosen to unravel the molecular basis underlying the ability of spermidine (Sd) to influence fruit development and ripening. Field applications of 1 mM Sd on peach fruit at an early developmental stage, 41 days after full bloom (dAFB), i.e. at late stage S1, led to a slowing down of fruit ripening. At commercial harvest (125 dAFB, S4II) Sd-treated fruits showed a reduced ethylene production and flesh softening. The endogenous concentration of free and insoluble conjugated polyamines (PAs) increased (0.3-2.6-fold) 1 day after treatment (short-term response) butsoon it declined to control levels; starting from S3/S4, when soluble conjugated forms increased (up to five-fold relative to controls at ripening), PA levels became more abundant in treated fruits, (long-term response). Real-time reverse transcription-polymerase chain reaction analyses revealed that peaks in transcript levels of fruit developmental marker genes were shifted ahead in accord with a developmental slowing down. At ripening (S4I-S4II) the upregulation of the ethylene biosynthetic genes ACO1 and ACS1 was dramatically counteracted by Sd and this led to a strong downregulation of genes responsible for fruit softening, such as PG and PMEI. Auxin-related gene expression was also altered both in the short term (TRPB) and in the long term (GH3, TIR1 and PIN1), indicating that auxin plays different roles during development and ripening processes. Messenger RNA amounts of other hormone-related ripening-regulated genes, such as NCED and GA2-OX, were strongly downregulated at maturity. Results suggest that Sd interferes with fruit development/ripening by interacting with multiple hormonal pathways.
Copyright © Physiologia Plantarum 2012.

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Year:  2012        PMID: 22409726     DOI: 10.1111/j.1399-3054.2012.01612.x

Source DB:  PubMed          Journal:  Physiol Plant        ISSN: 0031-9317            Impact factor:   4.500


  9 in total

1.  Putrescine protects hulless barley from damage due to UV-B stress via H2S- and H2O2-mediated signaling pathways.

Authors:  Qien Li; Zhaofeng Wang; Yanning Zhao; Xiaochen Zhang; Shuaijun Zhang; Letao Bo; Yao Wang; Yingfeng Ding; Lizhe An
Journal:  Plant Cell Rep       Date:  2016-02-24       Impact factor: 4.570

2.  Polyamines Regulate Strawberry Fruit Ripening by Abscisic Acid, Auxin, and Ethylene.

Authors:  Jiaxuan Guo; Shufang Wang; Xiaoyang Yu; Rui Dong; Yuzhong Li; Xurong Mei; Yuanyue Shen
Journal:  Plant Physiol       Date:  2018-03-09       Impact factor: 8.340

3.  Over-expression of mouse ornithine decarboxylase gene under the control of fruit-specific promoter enhances fruit quality in tomato.

Authors:  Roopali Pandey; Aarti Gupta; Anuj Chowdhary; Ram Krishna Pal; Manchikatla Venkat Rajam
Journal:  Plant Mol Biol       Date:  2014-12-24       Impact factor: 4.076

4.  Mapping QTLs and association of differentially expressed gene transcripts for multiple agronomic traits under different nitrogen levels in sorghum.

Authors:  Malleswari Gelli; Sharon E Mitchell; Kan Liu; Thomas E Clemente; Donald P Weeks; Chi Zhang; David R Holding; Ismail M Dweikat
Journal:  BMC Plant Biol       Date:  2016-01-13       Impact factor: 4.215

Review 5.  Modifications in Organic Acid Profiles During Fruit Development and Ripening: Correlation or Causation?

Authors:  Willian Batista-Silva; Vitor L Nascimento; David B Medeiros; Adriano Nunes-Nesi; Dimas M Ribeiro; Agustín Zsögön; Wagner L Araújo
Journal:  Front Plant Sci       Date:  2018-11-20       Impact factor: 5.753

6.  FaPAO5 regulates Spm/Spd levels as a signaling during strawberry fruit ripening.

Authors:  Aowai Mo; Tian Xu; Qian Bai; Yaunyue Shen; Fan Gao; Jiaxuan Guo
Journal:  Plant Direct       Date:  2020-04-29

7.  Fruit Architecture in Polyamine-Rich Tomato Germplasm Is Determined via a Medley of Cell Cycle, Cell Expansion, and Fruit Shape Genes.

Authors:  Raheel Anwar; Shazia Fatima; Autar K Mattoo; Avtar K Handa
Journal:  Plants (Basel)       Date:  2019-09-29

8.  Polyamines and Their Biosynthesis/Catabolism Genes Are Differentially Modulated in Response to Heat Versus Cold Stress in Tomato Leaves (Solanum lycopersicum L.).

Authors:  Rakesh K Upadhyay; Tahira Fatima; Avtar K Handa; Autar K Mattoo
Journal:  Cells       Date:  2020-07-22       Impact factor: 6.600

Review 9.  Update on the Roles of Polyamines in Fleshy Fruit Ripening, Senescence, and Quality.

Authors:  Fan Gao; Xurong Mei; Yuzhong Li; Jiaxuan Guo; Yuanyue Shen
Journal:  Front Plant Sci       Date:  2021-02-10       Impact factor: 5.753

  9 in total

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