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Recent Patents on Food, Nutrition & Agriculture

Editor-in-Chief

ISSN (Print): 2212-7984
ISSN (Online): 1876-1429

Research Article

Patents for the Physiological Quality in Seeds of Peach Rootstock Classified by Weight and Stored for Different Periods

Author(s): Aline G. Souza*, Oscar J. Smiderle, Renata D. Menegatti, Marcos Aurélio C. de Lima, Tainá R. das Neves and Valmor J. Bianchi

Volume 10, Issue 2, 2019

Page: [124 - 130] Pages: 7

DOI: 10.2174/2212798410666181120122624

Abstract

Background: Among stone fruit, the peach (Prunus persica (L) Batsch) is one of the most widely grown species in Brazil, in both area cultivated and in production.

Objective: The aim of this study was to evaluate the physiological quality of heavy and light seeds of four cultivars of Prunus persica for two storage periods, from tests of electrical conductivity, germination, and an analysis of initial plantlets growth.

Methods: The Electrical Conductivity test (EC) was conducted in a Completely Randomised Design (CRD), in a 4 x 2 x 5 factorial scheme with five replications. The germination test was carried out in CRD, in a 4 x 2 factorial scheme with eight replications. The physiological quality of the seeds was determined at zero and twelve month’s storage. For the growth analysis, the experimental design was in CRD, in a 4 x 2 factorial scheme with four replications.

Results: Under the conditions of the present study, it was found that the tests of germination and electrical conductivity were complementary in evaluating physiological quality in seeds of Prunus persica rootstock, suggesting that independent of the weight of the seeds, in ‘Capdeboscq’, ‘Aldrighi’, ‘Okinawa’ and ‘Okinawa Roxo’, there is a loss of quality and viability when the seeds are stored for a period of 12 months.

Conclusion: Under the experimental conditions of the present study, it was concluded that storage for a period of 12 months in Recent patents is not rather recommendable for maintaining quality and viability in seeds of Prunus persica of the Capdeboscq, Aldrighi, Okinawa and Okinawa Roxo cultivars.

Keywords: Prunus persica, seed conservation, viability, vigour, electrical conductivity, germination.

Graphical Abstract

[1]
Brazilian Institute of Geography and Statistics. Available at:. http://www.ibge.gov.br/estadosat/temas.php?sigla=rs&tema=lavourapermanente 2016. (Accessed on: Nov 23, 2018).
[2]
Rosa GG, Zanandrea I, Mayer NA, Bianchi VJ. Propagation of Prunus spp. rootstocks by cutting: effects of genotype, branch developmental stage, and cutting type. Rev Ceres 2017; 64(1): 90-7.
[3]
Fischer DLO, Picolotto L, Rocha MS, Souza AG, Bianchi VJ. Influence of stratification period on wet cold on the emergence and production of peach rootstocks in the field. Rev Congrega 2016; 1(1): 1-10.
[4]
Souza AG, Smiderle OJ, Spinelli VM, Souza RO, Bianchi VB. Correlation of biometrical characteristics of fruit and seed with twinning and vigor of Prunus persica rootstocks. J Seed Sci 2016; 38(4): 322-8.
[5]
Souza AG, Smiderle OJ, Spinelli VM, Souza RO, Bianchi VB. Optimization of germination and initial quality of plantlets of Prunus persica tree rootstocks. J Seed Sci 2017a; 39(2): 166-73.
[6]
Souza OMS, Smiderle OJ, Souza AG, et al. Influence of seed size on germination and vigor of seedlings of camu-camu populations. Scientia Agropecuaria 2017b; 8(2): 119.
[7]
Wang D, Gao Z, et al. Expression of aba metabolism related genes suggests similarities and differences between seed dormancy and bud dormancy of peach (Prunus persica). Front Plant Sci 2016; 6(4): 1248.
[8]
Thakur B. Effect of growth regulator, scarification and thiourea on seed germination in peach (Prunus persica l. batsch) rootstock 'Flordaguard'). Int J Curr Res Acad Rev 2015; 3(5): 252-61.
[9]
Thakur B, Singh H. Studies on seed germination in peach (Prunus persica L. Batsch) rootstock ‘Flordaguard’.. Bionscan 2015; 10(2): 651-4.
[10]
Szymajda M, Żurawicz E. Seed genotypes for harvesting seeds in the production of generative rootstocks for peach cultivars. Hortic Sci 2014; 41(4): 160-6.
[11]
Imani A, Rasouli M, Tavakoli R, Zarifi E, Fatahi R, Barba-Espin G, et al. Optimization of seed germination in Prunus species combining hydrogen peroxide or gibberellic acid pre-treatment with stratification. Seed Sci Technol 2011; 39(2): 204-7.
[12]
Rahemi A, Taghavi T, Fatahi R, Ebadi A, Hassani D, Chaparro J, et al. Seed germination and plantlets establishment of some wild almond species. Afr J Biotechnol 2011; 10(40): 7780-6.
[13]
Nery FC, Prudente DO, Alvarenga AA, Paiva R, Nery MC. Storage of Calophyllum brasiliense Cambess seeds. Braz J Biol 2017; 76(4): 1-6.
[14]
Carvalho NM, Nakagawa J. Seeds: Science, technology and production.5th ed. FUNEP: Jaboticabal . 2012.
[15]
Demir I, Cebeci C, Guloksuz T. Electrical conductivity measurement to predict germination of commercially available radish seed lots. Seed Sci Technol 2012; 40(2): 229-37.
[16]
Khajeh-Hosseini M, Nasehzadeh M, Matthews S. Rate of physiological germination relates to the percentage of normal plantlets in standard germination tests of naturally aged seed lots of oil seed rape. Seed Sci Technol 2010; 38(3): 602-11.
[17]
Catão HCRM, Gomes LAAA, Guimarães RM, Fonseca PHF, Caixeta F, Marodin JC. Physiological and isozyme alterations in lettuce seeds under different conditions and storage periods. J Seed Sci 2016; 38(4): 305-13.
[18]
San B, Yildirim AN, Yildirim F. An in vitro germination technique for some stone fruit species: The embryo isolated from cotyledons successfully germinated without cold pre-treatment of seeds. HortScience 2014; 49(3): 294-6.
[19]
Oliveira LD, Smiderle OJ, Paulino PPS, Souza AG. Water absorption and method improvement concerning electrical conductivity testing of Acacia mangium (Fabaceae) seeds. Rev Biol Trop 2016; 64(4): 651-60.
[20]
Smiderle OJ, Souza AG, Souza AA. Morphological aspects of seeds, emergence and growth of plantlets of surinam cherry trees sown at different depths. J Plant Sci 2016; 4(5): 119-25.
[21]
Demir I, Ozden E, Kara F, Hassanzadeh M, Mavi K. Effects of ambient storage temperature and seed moisture content on seed longevity of lettuce (Lactuca sativa). Am J Exp Agric 2016; 12(3): 1-5.
[22]
Mavi K, Mavi F, Demir I, Matthews S. Electrical conductivity of seed soak water predicts plantlets emergence and seed storage potential in commercial seed lots of radish. Seed Sci Technol 2014; 42(1): 76-86.
[23]
Milošević M, Vujaković ME, Karagić D. Vigour tests as indicators of seed viability. Genetika 2010; 4(2): 103-18.
[24]
Souza AG, Smiderle OJ, Muraro RE, Bianchi VJ. Patents for the morphophysiological quality of seedlings and grafted peach trees: effects of nutrient solution and substrates. Recent Pat Food Nutr Agric 2018; 9(2): 111-8.
[25]
Pereira SR, Giraldelli GR, Laura VA, Souza ALT. Fruit and seed size and their influence on the germination of Hymenaea stigonocarpa var. stigonocarpa Mart. ex Hayne (Leguminosae- Caesalpinoideae). Rev Bras Sementes 2011; 33(1): 141-8.
[26]
Dresch DM, Scalon QSP, Masetto SP, Vieira MC. Germination and vigor of Campomanesia adamantium seeds according to fruit and seed size. Pesqui Agropecu Trop 2013; 43(3): 262-71.
[27]
Picolotto L, Bianchi VJ, Gazolla Neto A, Fachinello JC. Different potting mix on formation of within-package plantlets of peach. Sci Agrar 2007; 8(2): 119-25.
[28]
Smiderle OJ, Souza AG, Souza AA. Morphological aspects of seeds, emergence and growth of seedlings of surinam cherry trees sown at different depths. J Plant Sci 2016; 4(5): 119-25.
[29]
Brasil. Ministry of agriculture, livestock and supply. Rules for seed analysis. Ministry of agriculture, livestock and supply Secretariat of agricultural defense. Brasília . 2009.
[30]
Souza AG, Chalfun NNJ, Faquin V, Souza AA. Production of peach grafts under hydroponic conditions. Ciência e Agrotecnol 2011a; 35(20): 322-6.
[31]
Souza AG, Chalfun NNJ, Faquin V, Souza AA. Production of pear trees grafted under hydroponic conditions. Sci Agrar 2011b; 12(1): 266-8.
[32]
R. Development core team. R: A language and environment for statistical computing, reference index version 2.8.0. R Foundation for statistical computing Vienna . 2008.
[33]
Becwar MR, Stanwood CE, Roos EF. Dehydratation effects on imbibition leakage from desiccation-sensitive seeds. Plant Physiol 1982; 69(3): 1132-5.
[34]
Colombo RC, Favetta V, Yamamoto LY, et al. Biometric description of fruits and seeds, germination and imbibition pattern of desert rose [Adenium obesum (Forssk.), Roem. & Schult]. J Seed Sci 2015; 37(4): 206-13.
[35]
Gimenes MA, Barbieri RL. Manual of curators of Germplasm - Vegetable- Conservation in BAGs. 2nd ed. Embrapa Genetic Resources and Biotechnology: Pelotas. 2010.
[36]
Santos C. Descriptive statistic- self learning manual. 1st ed. Silabo: Lisboa 2010.
[37]
Souza AG, Smiderle OJ, Bianchi VJ. Biometric characterization and morphophysiological quality of peach rootstock seeds using images of their plantlets vigor. Recent Pat Food Nutr Agric 2018; 9(1): 65-73.

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