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Australian Journal of Botany Australian Journal of Botany Society
Southern hemisphere botanical ecosystems
RESEARCH ARTICLE

The phenology and seed production of Cucumis melo as an invasive weed in northern Iran

Sima Sohrabi A C , Javid Gherekhloo B , Behnam Kamkar B , Ali Ghanbari A and Mohammad Hassan Rashed Mohassel A
+ Author Affiliations
- Author Affiliations

A Faculty of Agriculture, Ferdowsi University of Mashhad, PO Box 91775–1163, Iran.

B Gorgan University of Agricultural Sciences and Natural Resources, PO Box 49189–43464, Iran.

C Corresponding author. Email: simsoh@gmail.com

Australian Journal of Botany 64(3) 227-234 https://doi.org/10.1071/BT15256
Submitted: 8 November 2015  Accepted: 20 March 2016   Published: 6 May 2016

Abstract

Accurately representing plant development is essential for applying phenology knowledgement to investigate the effects of climate on weed management. Development in wild melon (Cucumis melo L.) is driven by temperature; thus, it could be simulated by thermal-time (TT) accumulation using limited accumulation when a lower optimum temperature (Topt) is exceeded. Experiments were conducted to investigate wild melon phenology (development rate) and seed production in soybean (Glycine max L.) at seven different sowing dates (April to August) in a completely randomised design (CRD) at Research Farm of Gorgan University of Agricultural Sciences and Natural Resources, Iran, during 2012. Results indicated that a slight shift in developmental rates occurs among plantings dates, except for those plants sown in August. The estimated TT for April–August planting dates were ~411 Celcius degree days, 448 Celcius degree days, 733 Celcius degree days, 672 Celcius degree days, 604 Celcius degree days, 558 Celcius degree days and 251 Celcius degree days respectively. Depending on planting date, weed emergence occurred at 5–20 days after planting. During the 79, 75, 92, 81, 71, 67 and 61 days of wild-melon growth, the mean number of fruits per plant and seeds per fruit were significantly different at each sowing date. Wild melon could produce a lot of fruits and seeds (up to 5000) within a growth cycle (average in 75 days) and also weed management is needed during the May and June because of the highest seed production of wild melons that emerged during May. The results attained here suggest that temperature alone could not reflect the effect of environment on C. melo development at each given growth stage. Thus, other environmental factors, such as daylength, maybe needed to better estimate weed development. Future research may use multiplicative models to clarify this claim. These results highlighted the value of testing a model over a wide range of environments.

Additional keywords: Cucumis melo subsp. agrestis var. agrestis, growth cycle, thermal time, weed management, wild melon.


References

Archer DW, Forcella F, Eklund JJ, Gunsolus J (2001) ‘Weed cast. Version 2.0.’ Available at http://www.morris.ars.usda.gov [Verified 5 March 2014]

Begum M, Juraimi AS, Amartalingum R, Syed Rastan SOB, Azmi M (2008) Growth and development of Fimbristylis miliacea (L.)Vahl. Biotropia 15, 1–11.

Bekker PM, Forcella F, Grundy AC, Jones NE, Marshall EJP, Murdoch AJ (2003) ‘Seedbanks: determination, dynamics and management.’ pp. 93–187. Aspects of Applied Biology 69. (The Association of Applied Biologists, Wellesbourne, UK)

Booth BD, Murphy SD, Swanton CJ (2003) ‘Weed ecology in natural and agricultural systems.’ (CAB International: Cambridge, MA)

Bryson CT, Carter R (2004) Biology of pathways for invasive weeds. Weed Technology 18, 1216–1220.
Biology of pathways for invasive weeds.Crossref | GoogleScholarGoogle Scholar |

Bullied WJ, Marginet AM, Van Acker RC (2003) Conventional- and conservation-tillage systems influence emergence periodicity of annual weed species in canola. Weed Science 51, 886–897.
Conventional- and conservation-tillage systems influence emergence periodicity of annual weed species in canola.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3sXpsFamsL8%3D&md5=2b4f3b0f5cb2a145c31d47baea3d6d6eCAS |

Bustamante E, Búrquez A (2008) Effects of plant size and weather on the flowering phenology of the organ pipe cactus (Stenocereus thurberi). Annals of Botany 102, 1019–1030.
Effects of plant size and weather on the flowering phenology of the organ pipe cactus (Stenocereus thurberi).Crossref | GoogleScholarGoogle Scholar | 18854374PubMed |

Cao W, Moss DN (1989) Temperature and daylength interaction on phyllochron in wheat and barley. Crop Science 29, 1046–1048.
Temperature and daylength interaction on phyllochron in wheat and barley.Crossref | GoogleScholarGoogle Scholar |

Cave RL, Hammer GL, McLean G, Birch CJ, Erwin JE, Johnston ME (2013) Modelling temperature, photoperiod and vernalization responses of Brunonia australis (Goodeniaceae) and Calandrinia sp. (Portulacaceae) to predict flowering time. Annals of Botany 111, 629–639.
Modelling temperature, photoperiod and vernalization responses of Brunonia australis (Goodeniaceae) and Calandrinia sp. (Portulacaceae) to predict flowering time.Crossref | GoogleScholarGoogle Scholar | 23404991PubMed |

Cherwell Scientific Limited (2014) ‘ModelMaker user manual.’ (Cherwell Scientific: the Magdalen Centre, Oxford, UK) Available at http://aits.encs.concordia.ca/helpdesk/resource/manuals_tutorials/MMK4-UserMan.pdf [Verified 22 March 2016]

Dincer I, Midilli A, Hepbasli A, Karakoc TH (2010) ‘Global warming: engineering solutions. Green energy and technology.’ (Springer: Boston, MA)

Dje Y, Kouonon LC, Zoro-Bi IA, Gnamien GY, Baudoin JP (2006) Etude des caracte ’ristiques botaniques, agronomiques et de la biologie ñorale du melon africain (Cucumis melo L. subsp. agrestis Naudin, Cucurbitaceae). Biotechnologie, Agronomie, Société et Environnement 10, 109–119.

Felix J, Ivany J, Kegode GO, Doohan D (2009) Timing potato cultivation using the weedcast model. Weed Science 57, 87–93.
Timing potato cultivation using the weedcast model.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1MXptF2mtg%3D%3D&md5=11ecb09c15de4c6b41f0c7a24418272bCAS |

Forcella F (1993) Seedling emergence model for velvetleaf. Agronomy Journal 85, 929–933.
Seedling emergence model for velvetleaf.Crossref | GoogleScholarGoogle Scholar |

Forcella F, Benech-Arnold RL, Sanchez RE, Ghersa CM (2000) Modeling seedling emergence. Field Crops Research 67, 123–139.
Modeling seedling emergence.Crossref | GoogleScholarGoogle Scholar |

Godoy O, Richardson DM, Valladares F, Castro-Diez P (2009) Flowering phenology of invasive alien plant species compared with native species in three Mediterranean-type ecosystems. Annals of Botany 103, 485–494.
Flowering phenology of invasive alien plant species compared with native species in three Mediterranean-type ecosystems.Crossref | GoogleScholarGoogle Scholar | 19033284PubMed |

Grichar WJ (2007a) Horse purslane (Trianthema portulacastrum), smellmelon (Cucumis melo), and palmer amaranth (Amaranthus palmeri) control in peanut with postemergence herbicides. Weed Technology 21, 688–691.
Horse purslane (Trianthema portulacastrum), smellmelon (Cucumis melo), and palmer amaranth (Amaranthus palmeri) control in peanut with postemergence herbicides.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXhtleqs73O&md5=6c26df7d598775e4672fe86988e61dd5CAS |

Grichar WJ (2007b) Control of smellmelon (Cucumis melo) in soybean with herbicides. Weed Technology 21, 777–779.
Control of smellmelon (Cucumis melo) in soybean with herbicides.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXhtleqs7rL&md5=98aa8953eb5aeef7b57dc64e711904b6CAS |

Gurvich DE, Enrico L, Funes G, Zak MR (2004) Seed mass, seed production, germination and seedling traits in two phenological types of Bidens pilosa (Asteraceae). Australian Journal of Botany 52, 647–652.
Seed mass, seed production, germination and seedling traits in two phenological types of Bidens pilosa (Asteraceae).Crossref | GoogleScholarGoogle Scholar |

ISTA (2009) ‘International rules for seed testing.’ (International Seed Testing Association (ISTA): Bassersdorf, Switzerland)

Kamkar B, Jami Al-Alahmadi M, Mahdavi-Damghani A, Villalbos FJ (2012) Quantification of the cardinal temperatures and thermal time requirement of opium poppy (Papaver somniferum L.) seeds to germinate using non-linear regression models. Industrial Crops and Products 35, 192–198.
Quantification of the cardinal temperatures and thermal time requirement of opium poppy (Papaver somniferum L.) seeds to germinate using non-linear regression models.Crossref | GoogleScholarGoogle Scholar |

Kaul V, Koul AK (2008) Floral phenology in relation to pollination and reproductive output in Commelina caroliniana (Commelinaceae). Australian Journal of Botany 56, 59–66.
Floral phenology in relation to pollination and reproductive output in Commelina caroliniana (Commelinaceae).Crossref | GoogleScholarGoogle Scholar |

Kouonon LC, Jacquemart AL, Zoro Bi AI, Bertin P, Baudoin JP, Dje Y (2009) Reproductive biology of the andromonoecious Cucumis melo subsp. Agrestis (Cucurbitaceae). Annals of Botany 104, 1129–1139.
Reproductive biology of the andromonoecious Cucumis melo subsp. Agrestis (Cucurbitaceae).Crossref | GoogleScholarGoogle Scholar | 19671577PubMed |

Masle J, Doussinault G, Sun B (1989a) Response of wheat genotypes to temperature and photoperiod in natural conditions. Crop Science 29, 712–721.
Response of wheat genotypes to temperature and photoperiod in natural conditions.Crossref | GoogleScholarGoogle Scholar |

Masle J, Doussinault G, Farquhar GD, Sun B (1989b) Foliar stage in wheat correlates better to photothermal time than to thermal time. Plant, Cell & Environment 12, 235–247.
Foliar stage in wheat correlates better to photothermal time than to thermal time.Crossref | GoogleScholarGoogle Scholar |

McMaster GS (2005) Phytomers, phyllochrons, phenology and temperate cereal development. Journal of Agricultural Science-Cambridge 143, 137–150.
Phytomers, phyllochrons, phenology and temperate cereal development.Crossref | GoogleScholarGoogle Scholar |

McMaster GS, White JW, Hunt LA, Jamieson SS, Ortiz-Monasterio JI (2008) Simulating the influence of vernalization, photoperiod and optimum temperature on wheat developmental rates. Annals of Botany 102, 561–569.
Simulating the influence of vernalization, photoperiod and optimum temperature on wheat developmental rates.Crossref | GoogleScholarGoogle Scholar | 18628262PubMed |

Prostko EP, Chandler JM (1998) Devil’s-claw (Proboscidea louisianica) and smellmelon (Cucumis melo var. dudaim) control in cotton (Gossypium hirsutum) with pyrithiobac. Weed Technology 12, 19–22.

Richardson DM, Pysek P, Rejmanek M, Barbour MG, Panetta FD, West CJ (2000) Naturalization and invasion of alien plants: concept and definitions. Diversity & Distributions 6, 93–107.
Naturalization and invasion of alien plants: concept and definitions.Crossref | GoogleScholarGoogle Scholar |

Roman ES, Murphy SD, Swanton CJ (2000) Simulation of Chenopodium album seedling emergence. Weed Science 48, 217–224.
Simulation of Chenopodium album seedling emergence.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3cXjsFeqs7s%3D&md5=36aa8a409ac6e690b4562a39399db46cCAS |

SAS Institute (2009) ‘Statistical analysis software. Version 9.1.3.’ (SAS Institute: Cary, NC)

Schwartz MD (2003) Introduction. Phenology: an integrative environmental science. In ‘Tasks for vegetation science. Vol. 39’. (Eds A Kratochwil, H Lieth) pp. 3–7. (Kluwer Academic Publishers: Dordrecht, The Netherlands)

Shaik RS, Gopurenko D, Burrows GE, Urwin NAR, Lepschi BJ, Hildebrand SM, Weston LA (2012) Identification of the invasive weeds, camel melon, prickly paddy melon and colocynth in Australia: a morphological and molecular approach. In ‘18th Australasian weeds conference 2012, Melbourne, Vic. Australia’. pp. 73–77.

Shea K, Sheppard A, Woodburn T (2006) Seasonal life-history models for the integrated management of the invasive weed nodding thistle Carduus nutans in Australia. Journal of Applied Ecology 43, 517–526.
Seasonal life-history models for the integrated management of the invasive weed nodding thistle Carduus nutans in Australia.Crossref | GoogleScholarGoogle Scholar |

Shrestha A, Swanton CJ (2007) Parameterization of the phenological development of select annual weeds under non cropped field conditions. Weed Science 55, 446–454.
Parameterization of the phenological development of select annual weeds under non cropped field conditions.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXhtVSqtbnE&md5=7be75cdb492b547a0546c04f43c2a824CAS |

Sohrabikertabad S, Ghanbari A, Rashed Mohasel MH, Nassiri Mahalati M, Gherekhloo J (2013) Effect of desiccation and salinity stress on seed germination and initial plant growth of Cucumis melo. Planta Daninha 31, 833–841.
Effect of desiccation and salinity stress on seed germination and initial plant growth of Cucumis melo.Crossref | GoogleScholarGoogle Scholar |

Streck NA, Weiss A, Xue Q, Baenziger PS (2003) Improving predictions of developmental stages in winter wheat: a modified Wang and Engel model. Agricultural and Forest Meteorology 115, 139–150.
Improving predictions of developmental stages in winter wheat: a modified Wang and Engel model.Crossref | GoogleScholarGoogle Scholar |

Tingle CH, Chandler JM (2003) Influence of environmental factors on smellmelon (Cucumis melo var. dudaim Naud.) germination, emergence, and vegetative growth. Weed Science 51, 56–59.
Influence of environmental factors on smellmelon (Cucumis melo var. dudaim Naud.) germination, emergence, and vegetative growth.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3sXntVyltw%3D%3D&md5=886809b7bc8e79261a3cc3660d63ef1cCAS |

Toorop PE, Cuerva RC, Begg GS, Locardi B, Squire GR, Iannetta PPM (2012) Co-adaptation of seed dormancy and ñowering time in the arable weed Capsella bursa-pastoris (shepherd’s purse). Annals of Botany 109, 481–489.
Co-adaptation of seed dormancy and ñowering time in the arable weed Capsella bursa-pastoris (shepherd’s purse).Crossref | GoogleScholarGoogle Scholar | 22147546PubMed |

Vermeij G (1996) An agenda for invasion biology. Biological Conservation 78, 3–9.
An agenda for invasion biology.Crossref | GoogleScholarGoogle Scholar |

Wang ZB, Chen YF, Chen YH (2009) Functional grouping and establishment ofdistribution patterns ofinvasive plants in China using self-organizing maps and indicator species analysis. Archives of Biological Sciences Belgrade 61, 71–78.
Functional grouping and establishment ofdistribution patterns ofinvasive plants in China using self-organizing maps and indicator species analysis.Crossref | GoogleScholarGoogle Scholar |

Webster TM, Cardina J, Norquay HM (1998) Tillage and seed depth effects on velvetleaf (Abutilon theophrasti) emergence. Weed Science 46, 76–82.