Application of oxygen-sensing technology to measure seed quality of Ginkgo biloba

Tailin Zhong , Guangwu Zhao

Journal of Forestry Research ›› 2016, Vol. 28 ›› Issue (4) : 725 -731.

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Journal of Forestry Research ›› 2016, Vol. 28 ›› Issue (4) : 725 -731. DOI: 10.1007/s11676-016-0351-x
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Application of oxygen-sensing technology to measure seed quality of Ginkgo biloba

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Abstract

Germination tests are currently the most widely used method to evaluate seed quality of Ginkgo biloba L., but they are time-consuming and labor intensive. Oxygen-sensing technology, based on the principle of fluorescence quenching to detect oxygen and assess seed quality was used to rapidly evaluate seed quality of two varieties (Shandong Tancheng 202 and Zhejiang Dafoshou) of G. biloba from five mother plants. Fifteen samples of three vigor levels were produced by accelerated aging treatments. This process was applied in duplicate. A portable oxygen-sensing detector was employed to measure oxygen content during seed germination in a closed system at 25 °C each day until day 14. Four oxygen metabolism indices were calculated: oxygen consumption index, oxygen consumption rate, critical oxygen concentration, and theoretical germination time (T GT). Additionally, we tested laboratory germination and field emergence. The results of a one-way analysis of variance and correlation analysis showed that T GT was the candidate index to evaluate seed quality of G. biloba. Therefore, the T GT value was used to validate the reliability of oxygen-sensing evaluation for Zhejiang Dafoshou seeds kept under four storage conditions. The trend in the change in oxygen metabolism agreed completely agreement with that of seed germination under all storage conditions. The oxygen-sensing test reliably and rapidly assessed seed quality of G. biloba. The germination rate of Zhejiang Dafoshou was accurately predicted by T GT.

Keywords

Ginkgo biloba / Oxygen-sensing technology / Seed quality / Theoretical germination time (T GT)

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Tailin Zhong, Guangwu Zhao. Application of oxygen-sensing technology to measure seed quality of Ginkgo biloba. Journal of Forestry Research, 2016, 28(4): 725-731 DOI:10.1007/s11676-016-0351-x

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References

[1]

Alouani M, Bani-Aameur F. Argan (Argania spinosa (L.) Skeels) seed germination under nursery conditions: effect of cold storage, gibberellic acid and mother-tree genotype. Ann For Sci, 2004, 61: 191-194.

[2]

Bailey-Serres J, Chang R. Sensing and signalling in response to oxygen deprivation in plants and other organisms. Ann Bot, 2005, 96: 507-518.

[3]

Bettey M, Finch-Savage WE. Respiratory enzyme activities during germination in Brassica seed lots of differing vigour. Seed Sci Res, 1996, 6: 165-174.

[4]

Beyer H, Schmalenberg AK, Jansen G, Jürgens HU, Uptmoor R, Broer I, Huckauf J, Dietrich R, Michel V, Zenk A, Ordon F. Evaluation of variability, heritability and environmental stability of seed quality and yield parameters of L. angustifolius. Seed Sci Res, 2015, 174: 40-47.

[5]

Bradford KJ, Côme C, Corbineau F. Quantifying the oxygen sensitivity of seed germination using a population-based threshold model. Seed Sci Res, 2007, 17: 33-43.

[6]

Bradford KJ, Bello P, Fu JC, Barros M. Single-seed respiration: a new method to assess seed quality. Seed Sci Technol, 2013, 41: 420-438.

[7]

Cao FL. Ginkgo of China, 2003, Beijing: China Forestry Press 15 60 (in Chinese)

[8]

Eshete A, Teketay D, Lemenih M, Bongers F. Effects of resin tapping and tree size on the purity, germination and storage behavior of Boswellia papyrifera (Del.) Hochst. seeds from Metema District, northwestern Ethiopia. For Ecol Manag, 2012, 269: 31-36.

[9]

International Seed Testing Association (ISTA). International rules for seed testing, 2014, Bassersdorf: International Seed Testing Association Press 5-1 5-54

[10]

Matthews S, Noli E, Demir I, Khajeh-Hosseini M, Wagner MH. Evaluation of seed quality: from physiology to international standardization. Seed Sci Res, 2012, 22: S69-S73.

[11]

McDonald MB. Assessment of seed quality. HortScience, 1980, 15: 784-788.

[12]

Pandey PK, Goyal RD, Prakash V, Katiyar RP, Singh CB. Association between laboratory vigour tests and field emergence in cucurbits. Seed Res, 1990, 18: 40-43.

[13]

Perl M, Kretschmer M. Biochemical activities and compounds in seeds: possible tools for seed quality evaluation. Ann Bot, 1988, 62: 61-68.

[14]

Tekrony DM. Precision is an essential component in seed vigour testing. Seed Sci Technol, 2003, 31: 435-447.

[15]

Tommasi F, Paciolla C, de Pinto MC, De Gara L. Effects of storage temperature on viability, germination and antioxidant metabolism in Ginkgo biloba L. seeds. Plant Sci, 2006, 44: 359-368.

[16]

Wang YR, Yu L, Nan ZB. Vigor tests used to rank seed lot quality and predict field emergence in four forage species. Crop Sci, 2004, 44: 535-541.

[17]

Wu L, Hallgren SW, Ferris DM, Conway KE. Effects of moist chilling and solid matrix priming on germination of loblolly pine (Pinus taeda L.) seeds. New For, 2001, 21: 1-16.

[18]

Zhao GW, Jiang XW. Roles of gibberellin and auxin in promoting seed germination and seedling vigor in Pinus massoniana. For Sci, 2014, 60: 367-373.

[19]

Zhao GW, Zhong TL. Improving the assessment method of seed vigor in Cunninghamia lanceolata and Pinus massoniana based on oxygen sensing technology. J For Res, 2012, 23: 95-101.

[20]

Zhao GW, Zhong TL. Influence of exogenous IAA and GA on seed germination, vigor and their endogenous levels in Cunninghamia lanceolata. Scand J For Res, 2013, 28: 511-517.

[21]

Zhao GW, Cao DD, Chen HY, Ruan GH, Yang MJ. A study on the rapid assessment of conventional rice seed vigour based on oxygen-sensing technology. Seed Sci Technol, 2013, 41: 257-269.

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