Incidence and type of cracking in sweet cherry (Prunus avium L.) are affected by genotype and season
P. F. Measham A C , S. A. Bound B , A. J. Gracie A and S. J. Wilson AA Tasmanian Institute of Agricultural Research, School of Agricultural Science, University of Tasmania, Private Bag 54, Hobart, Tas. 7001, Australia.
B Tasmanian Institute of Agricultural Research, 13 St Johns Avenue, New Town, Tas. 7008, Australia.
C Corresponding author. Email: Penelope.Measham@utas.edu.au
Crop and Pasture Science 60(10) 1002-1008 https://doi.org/10.1071/CP08410
Submitted: 17 November 2008 Accepted: 7 July 2009 Published: 18 September 2009
Abstract
Rain induced fruit cracking in sweet cherries takes 3 distinct forms: stem end cuticular fractures, calyx end cuticular fractures, and large cracks usually deep into the pulp on the cheek of the fruit. A 4-year study of sweet cherry varieties from a commercial orchard in Tasmania, Australia, was conducted to investigate the incidence of crack type and its relative likelihood, as influenced by both genotype and season. Although all 3 crack types developed in the 3-week period before commercial harvest, the extent of cracking was strongly controlled by season. While initial development of cracks coincided with rainfall, no relationship between amount of rain and incidence of cracking was found for crack type. A significant relationship was found between the tangential stress experienced by fruit skin from fruit at harvest maturity and the incidence of cracking recorded in the orchard. No other fruit property (pulp osmotic potential, fruit diameter, weight) explained the differences in incidence of cracking in the field between seasons or varieties. The results suggest that management of cracking needs to consider both varietal and seasonal factors. The development of turgor in maturing fruit also needs further investigation.
Acknowledgments
The authors acknowledge statistical advice given by Dr R. Corkrey, Senior Research Fellow in Biometrics, Tasmanian Institute of Agricultural Science, as well as funding support through HAL and an Australian Postgraduate Award scholarship. Appreciation must also be given to Hansen Orchards, in particular thanks to Howard Hansen and Nigel Bartels.
Bargel H,
Spatz H-C,
Speck T, Neinhuis C
(2004) Two-dimensional tension tests in plant biomechanics—Sweet cherry fruit skin as a model system. Plant Biology 6, 432–439.
| Crossref | GoogleScholarGoogle Scholar |
CAS |
PubMed |
Beyer M,
Peschel S, Knoche M
(2002) Studies on water transport through the sweet cherry fruit surface: IV. Regions of preferential uptake. HortScience 37(4), 637–641.
Christensen JV
(1972) Cracking in cherries. III. Determination of cracking susceptibility. Acta Agriculturae Scandinavica 22, 128–136.
| Crossref |
Cline JA,
Sekse L,
Meland M, Webster AD
(1995) Rain-induced fruit cracking of sweet cherries. 1. Influence of cultivar and rootstock on fruit water-absorption, cracking and quality. Acta Agriculturae Scandinavica Section B – Soil and Plant Science 45(3), 213–223.
| Crossref | GoogleScholarGoogle Scholar |
Considine JA, Kriedmann PE
(1972) Fruit splitting in grapes: Determination of the critical turgor pressure. Australian Journal of Agricultural Research 23, 17–24.
| Crossref | GoogleScholarGoogle Scholar |
Hovland KL, Sekse L
(2003) The development of cuticular fractures in fruits of sweet cherries (Prunus avium L.) can vary with cultivar and rootstock. Journal of American Pomological Society 57(2), 58–62.
Knoche M,
Beyer M,
Peschel S,
Oparlokov B, Bukovac MJ
(2004) Changes in strain and deposition of cuticle in developing sweet cherry fruit. Physiologia Plantarum 120(4), 667–677.
| Crossref | GoogleScholarGoogle Scholar |
CAS |
PubMed |
Knoche M,
Peschel S,
Hinz M, Bukovac MJ
(2001) Studies on water transport through the sweet cherry fruit surface: II. Conductance of the cuticle in relation to fruit development. Planta 213, 927–936.
| Crossref | GoogleScholarGoogle Scholar |
CAS |
PubMed |
Lane WD,
Meheriuk M, McKenzie D-L
(2000) Fruit cracking of a susceptible, an intermediate, and a resistant sweet cherry fruit cultivar. HortScience 35(2), 239–242.
Michel BE, Kaufman MR
(1973) The osmotic potential of polyethylene glycol 6000. Plant Physiology 51, 914–916.
| Crossref | GoogleScholarGoogle Scholar |
CAS |
PubMed |
Moing A,
Renaud C,
Christmann H,
Fouilhaux L,
Tauzin Y,
Zanetto A,
Gaudillere M,
Laigret F, Claverie J
(2004) Is there a relation between changes in osmolarity of cherry fruit flesh or skin and fruit cracking susceptibility? Journal of the American Society for Horticultural Science 129(5), 635–641.
Peschel S, Knoche M
(2005) Characterization of microcracks in the cuticle of developing sweet cherry fruit. Journal of the American Society for Horticultural Science 130(4), 487–495.
Sawada E
(1934) A physiological consideration of the mechanism of the cracking of sweet cherries. Transactions of the Sapporo Natural History Society 13, 365–376.
Sekse L
(1995a) Fruit cracking in sweet cherries (Prunus avium L.). Some physiological aspects—a mini review. Scientia Horticulturae 63, 135–141.
| Crossref | GoogleScholarGoogle Scholar |
Sekse L
(1995b) Cuticular fracturing in fruits of sweet cherry (Prunus avium L.) resulting from changing soil-water contents. Journal of Horticultural Science 70(4), 631–635.
Yamaguchi M,
Sato I, Ishaguro M
(2002) Influences of epidermal cell sizes and flesh firmness on cracking susceptibility in sweet cherry (Prunus avium L.) cultivars and selections. Journal of Japanese Society for Horticultural Science 71(6), 738–746.
| Crossref |