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The regulation of sweet cherry fruit abscission by polar auxin transport

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Abstract

Inconsistency of cropping is an important problem for UK sweet cherry production. Premature fruit abscission in Prunus can reduce yields severely, however, the environmental cues and hormonal signals that trigger abscission have not been identified. Auxin (IAA) is known to delay abscission by reducing the sensitivity of cells in the abscission zone to ethylene, a promoter of abscission. Therefore, the capacity for polar auxin transport (PAT) through sweet cherry pedicels was examined in relation to fruit abscission. Cherry ‘spurs’ (short shoots) with similar leaf areas and different fruit numbers were phloem-girdled to restrict assimilate movement. Abscission from spurs with many fruit (eight or more) occurred within 14 days of girdling, whereas abscission from spurs with few (two) fruit was minimal. The pedicels’ capacity for PAT in spurs with different fruit numbers was determined 1, 3 and 9 days after girdling (DAG). Fruit were analysed for endogenous IAA concentration 3, 5, 7 and 9 DAG. PAT inhibitors 2,3,5-triiodobenzoic acid or 1-N-naphthylphtalamic acid were applied to pedicels of fruit not expected to abscise, i.e. on spurs with few fruit. The effect of these inhibitors on fruit abscission was determined 14 DAG. The proportion of the transported [3H]-IAA was lower from the outset in pedicels from spurs with many fruit. By 9 DAG, symptoms of fruit abscission were apparent and 40% less [3H] -IAA was transported through pedicels on spurs with many fruit. Fruit endogenous IAA concentrations were similar in the two groups of spurs. Application of PAT inhibitors shortly after girdling increased fruit abscission by 30%. The results suggest that although a decline in PAT is not the only cause of fruit abscission, the maintenance of PAT contributes to fruit retention.

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Abbreviations

AZ:

abscission zone

BA:

benzoic acid

DAFB:

days after full bloom

DAG:

days after girdling

GC–MS:

gas chromatography–mass spectrometry

HPLC:

high performance liquid chromatography

IAA:

indole-3-acetic acid

LA:FN:

leaf area to fruit number ratio

NPA:

1-N-naphthylphtalamic acid

PAT:

polar auxin transport

TIBA:

2,3,5-triiodobenzoic acid

TMS:

bis(trimethylsilyl)trifluoroacetamide

References

  1. M. Agusti S. Zaragoza D.J. Iglesias V. Almela E. Primo-Millo M. Talon (2002) ArticleTitleThe synthetic auxin 3,5,6-TPA stimulates carbohydrate accumulation and growth in citrus fruit Plant Growth Regul. 36 141–147 Occurrence Handle10.1023/A:1015077508675

    Article  Google Scholar 

  2. C.J. Atkinson M.A. Else A. Stankiewicz A.D. Webster (2002) ArticleTitleThe effects of phloem girdling on the abscission of Prunus avium L. fruits J. Hort. Sci. Biotechnol. 77 22–27

    Google Scholar 

  3. F. Bangerth (2000) ArticleTitleAbscission and thinning of young fruit and their regulation by plant hormones and bioregulators Plant Growth Regul. 31 43–59 Occurrence Handle10.1023/A:1006398513703

    Article  Google Scholar 

  4. F. Bangerth C. Li J. Gruber (2000) ArticleTitleMutual interaction of auxin and cytokinins in regulating correlative dominance Plant Growth Regul. 32 205–217 Occurrence Handle10.1023/A:1010742721004

    Article  Google Scholar 

  5. G.D. Blanpied (1972) ArticleTitleA study of ethylene in applered raspberry and cherry Plant Physiol. 49 627–630

    Google Scholar 

  6. D. Bradbury (1929) ArticleTitleA comparative study of the developing and aborting fruits of Prunus cerasus Am. J. Bot. 16 525–542

    Google Scholar 

  7. InstitutionalAuthorNameDefra (2003) Basic Horticultural Statistics for the United Kingdom 2002/2003 Department of EnvironmentFood and Rural Affairs (Defra) London

    Google Scholar 

  8. L. Drazeta A. Lang C. Cappellini A.J. Hall R.K. Volz P.E. Jameson (2004) ArticleTitleVessel differentiation in the pedicel of apple and the effects of auxin transport inhibition Physiol. Plantarum 120 162–170 Occurrence Handle10.1111/j.0031-9317.2004.0220.x Occurrence Handle15032888

    Article  PubMed  Google Scholar 

  9. M.A. Else C.J. Atkinson (2003) ArticleTitleHormone replacement therapy Grower 139 20–21

    Google Scholar 

  10. M.A. Else A.P. Stankiewicz C.M. Crisp C.J. Atkinson (2004) ArticleTitleThe role of polar auxin transport through pedicels of Prunus avium L. in relation to fruit development and retention J. Exp. Bot. 55 2099–2109 Occurrence Handle10.1093/jxb/erh208 Occurrence Handle15310825

    Article  PubMed  Google Scholar 

  11. J.A. Flore D.R. Layne (1996) Prunus E. Zamski A. Shaffer (Eds) Photoassimilate Distribution in Plants and Crops--Source-sink Relationships Marcel Dekker Inc. New York 825–849

    Google Scholar 

  12. Y.-Y. Ford E.C. Bonham R.W.F. Cameron P.S. Blake H.L. Judd R.S. Harrison-Murray (2002) ArticleTitleAdventitious rooting: examining the role of auxin in easy- and difficult-to-root plant Plant Growth Regul. 36 149–159 Occurrence Handle10.1023/A:1015013025513

    Article  Google Scholar 

  13. J. Friml K. Palme (2002) ArticleTitlePolar auxin transport - old questions and new concepts? Plant Mol. Biol. 49 273–284 Occurrence Handle10.1023/A:1015248926412 Occurrence Handle12036254

    Article  PubMed  Google Scholar 

  14. G. Guinn D.L. Brummett (1987) ArticleTitleConcentrations of abscisic acid and indoleacetic acid in cotton fruits and their abscission zones in relation to fruit retention Plant Physiol. 83 199–202

    Google Scholar 

  15. W.C. Hall (1952) ArticleTitleEvidence on the auxin-ethylene balance hypothesis of foliar abscission Bot. Gaz. 113 310–322 Occurrence Handle10.1086/335723

    Article  Google Scholar 

  16. Kamboj J.S., Browning G., Blake P.S., Quinlan J.D. and Baker D.A. 1999. GC-MS-SIM analysis of abscisic acid and indole-3-acetic acid in shoot bark of apple rootstocks. Plant Growth Regul. 28:21--27.

    Google Scholar 

  17. M.A. Koukourikou-Petridou (2003) ArticleTitleThe relation between the levels of extractable and diffusible IAA in almond fruits and their ‘June drop’ Plant Growth Regul. 39 107–112 Occurrence Handle10.1023/A:1022567714593

    Article  Google Scholar 

  18. T.L. Lomax G.K. Muday P.H. Rubery (1995) Auxin transport P.J. Davies (Eds) Plant Hormones Kluwer Academic Publishers The Netherlands 509–530

    Google Scholar 

  19. P.W. Morgan J.I. Durham (1972) ArticleTitleAbscission: potentiating action of auxin transport inhibitors Plant Physiol. 50 313–318

    Google Scholar 

  20. S.M. Naqvi K.C. Engvild (1974) ArticleTitleAction of abscisic acid on auxin transport and its relation to phototropism Physiol. Plant. 30 283–287

    Google Scholar 

  21. H. Okuda T. Hirabayshi (1998) ArticleTitleEffect of IAA gradient between the peduncle and branch on physiological drop of citrus fruit (Kiyomi tangor) J. Hort. Sci. Biotechnol. 73 618–620

    Google Scholar 

  22. J.W. Patrick (1979) ArticleTitleAuxin-promoted transport of metabolites in stems of Phaseolus vulgaris L J. Exp. Bot. 30 1–13

    Google Scholar 

  23. J.W. Patrick (1987) Are hormones involved in assimilate transport? G. Hoad J. Lenton M. Jackson R. Atkin (Eds) Hormone Action in Plant Development - A Critical Appraisal Butterworths London 175–188

    Google Scholar 

  24. J.J. Ross (1998) ArticleTitleEffects of auxin transport inhibitors on gibberellins in pea J. Plant Growth Regul. 17 141–146

    Google Scholar 

  25. J.R. Shinkle R. Kadakia A.M. Jones (1998) ArticleTitleDim-red-light-induced increase in polar auxin transport in cucumber seedlings. I. Development of altered capacity, velocity and response to inhibitors Plant Physiol. 116 1505–1513 Occurrence Handle10.1104/pp.116.4.1505 Occurrence Handle9536069

    Article  PubMed  Google Scholar 

  26. J.C. Suttle (1988) ArticleTitleEffect of ethylene treatment on polar IAA transportnet IAA uptake and specific binding of n-1-naphthylphthalamic acid in tissues and microsomes isolated from etiolated pea epicotyls Plant Physiol. 88 795–799

    Google Scholar 

  27. J.E. Taylor C.A. Whitelaw (2001) ArticleTitleSignals in abscission New Phytol. 151 323–340 Occurrence Handle10.1046/j.0028-646x.2001.00194.x

    Article  Google Scholar 

  28. M. Thompson (1996) Flowering, pollination and fruit set A.D. Webster N.E. Looney (Eds) Cherries: Crop Physiology, Production and Uses CAB Intl UK 223–241

    Google Scholar 

  29. H.B. Tukey (1933) ArticleTitleEmbryo abortion in early ripening varieties of Prunus avium Bot. Gaz. 44 433–468 Occurrence Handle10.1086/334322

    Article  Google Scholar 

  30. H.G. Van der Weij (1932) ArticleTitleDer mechanismus des wuchsstofftransportes Rec. Trav. Bot. Neerl. 29 380–496

    Google Scholar 

  31. R.C. Yuan U. Hartmond W.J. Kender (2002) ArticleTitleNaphthalene acetic acid and 2,3,5-triiodobenzoic acid affect the response of mature orange fruit to abscission chemicals HortScience 37 348–352

    Google Scholar 

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Correspondence to Tijana Blanusa.

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Blanusa, T., Else, M., Atkinson, C. et al. The regulation of sweet cherry fruit abscission by polar auxin transport. Plant Growth Regul 45, 189–198 (2005). https://doi.org/10.1007/s10725-005-3568-9

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