Changes in Fatty Acids Content in Organic Rosehip (Rosa spp.) Seeds during Ripening
Abstract
:1. Introduction
2. Results and Discussion
2.1. Total Fat Content
2.2. Unsaturated Fatty Acids
2.2.1. Polyunsaturated Fatty Acids
2.2.2. Monounsaturated Fatty Acids
2.3. Saturated Fatty Acids
3. Materials and Methods
3.1. Field Experiment
3.2. Preparation of Rosehip Seed Samples
3.3. Soil Agrochemical Analyses
3.4. Determination of Oil Content of Rosehip Seeds
3.5. Determination of Fatty Acids Content of Rosehip Seeds
3.6. Statistical Analysis
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Andersson, S.C.; Rumpunen, K.; Johansson, E.; Olsson, M.E. Carotenoid content and composition in rose hips (Rosa spp.) during ripening, determination of suitable maturity marker and implications for health promoting food products. Food Chem. 2011, 128, 689–696. [Google Scholar] [CrossRef]
- Dąbrowska, M.; Maciejczyk, E.; Kalemba, D. Rose Hip Seed Oil: Methods of Extraction and Chemical Composition. Eur. J. Lipid Sci. Tech. 2019, 121, 1800440. [Google Scholar] [CrossRef]
- Çelik, F.; Balta, F.; Ercişli, E.; Kazankaya, A.; Javidipour, I. Seed oil profiles of five rose hip species (Rosa spp.) from Hakkâri, Turkey. J. Food Agric. Environ. 2010, 8, 482–484. [Google Scholar]
- Salem, N., Jr.; Simopoulos, A.P.; Galli, C.; Lagarde, M.; Knapp, H.R. Fatty acids and lipids from cell biology to human disease. Lipids 1996, 31, S1–S326. [Google Scholar]
- Ilyasoğlu, H. Characterization of rosehip (Rosa canina L.) seed and seed oil. Intern. J. Food Prop. 2014, 17, 1591–1598. [Google Scholar] [CrossRef] [Green Version]
- Naveed, A.; Farooq, A.; Gilani, A.H. Rose Hip (Rosa canina L.) Oils; Preedy, Ed.; Elsevier: Amsterdam, The Netherlands, 2016; pp. 667–675. [Google Scholar]
- Concha, J.; Soto, C.; Chamy, R.; Zúñiga, M.E. Enzymatic pretreatment on rose-hip oil extraction: Hydrolysis and pressing conditions. J. Am. Oil Chem. Soc. 2004, 81, 549–552. [Google Scholar] [CrossRef]
- Franco, D.; Pinelo, M.; Sineiro, J.; Nunez, M.J. Processing of Rosa rubiginosa: Extraction of oil and antioxidant substances. Bioresour. Technol. 2007, 98, 3506–3512. [Google Scholar] [CrossRef] [PubMed]
- Alvarez, A.; Saez, J.M.; Costa, J.S.D.; Colin, V.L.; Fuentes, M.S.; Cuozzo, S.A.; Benimeli, C.S.; Polti, M.A.; Amoroso, M.J. Actinobacteria: Current research and perspectives for bioremediation of pesticides and heavy metals. Chemosphere 2017, 166, 41–62. [Google Scholar] [CrossRef] [PubMed]
- Ridolfi, A.S.; Alvarez, G.B.; Rodríguez Giraul, M.E. Organochlorinated Contaminants in General Population of Argentina and Other Latin American Countries. In Bioremediation in Latin America. Current Research and Perspectives; Alvarez, A., Polti, M., Eds.; Springer: Berlin/Heidelberg, Germany, 2014; pp. 17–40. [Google Scholar]
- Leifeld, J. How sustainable is organic farming? Agric. Ecosyst. Environ. 2012, 150, 121–122. [Google Scholar] [CrossRef]
- Samman, S.; Chow, J.; Foster, M.; Ahmad, Z.; Phuyal, J.; Petocz, P. Fatty acid composition of edible oils derived from certified organic and conventional agricultural methods. Food Chem. 2008, 109, 670. [Google Scholar] [CrossRef]
- Anastasopoulos, E.; Kalogeropoulos, N.; Kaliora, A.C.; Kountouri, A.M.; Andrikopoulos, N.K. The influence of ripening and crop year on quality indices, polyphenols, terpenic acids, squalene, fatty acid profile, and sterols in virgin olive oil (Koroneiki cv.) produced by organic versus non-organic cultivation method. Int. J. Food Sci. Technol. 2011, 46, 170. [Google Scholar] [CrossRef]
- Mustafa, H.S.B.; Hasan, E.; Hassan, M.; Sarwar, S.; Qayyum, A.; Mahmood, T. Influence of climatic conditions on chemical configuration of seeds in safflower, soybean, linseed and sesame. Nat. Sci. 2016, 14, 125–140. [Google Scholar]
- Szentmihalyi, K.; Vinkler, P.; Lakatos, B.; Illes, V.; Then, M. Rose hip (Rosa canina L.) oil obtained from waste hip seeds by diferent extraction methods. Bioresour. Technol. 2002, 82, 195–201. [Google Scholar] [CrossRef]
- Elmastaş, M. Pomological Changes in Some Rosehip Species during Ripening. JAFAG 2016, 33, 214–222. [Google Scholar]
- Nowak, R. Fatty acids composition in fruits of wild rose species. Acta Soc. Bot. Pol. 2005, 74, 229–235. [Google Scholar] [CrossRef] [Green Version]
- Chia, T.Y.P.; Pike, M.J.; Rawsthorne, S. Storage oil breakdown during embryo development of Brassica napus (L.). J. Exp. Bot. 2005, 56, 1285–1296. [Google Scholar] [CrossRef]
- Güneş, M.; Dolek, U.; Elmastaş, M. Phytochemical Changes in Heated Rosa Species Fruits and Seeds. Czech. J. Food Sci. 2017, 35, 346–351. [Google Scholar]
- Turan, S.; Solak, R.; Kiralan, M.; Ramadan, M.F. Bioactive lipids, antiradical activity and stability of rosehip seed oil under thermal and photo-induced oxidation. Grasas Aceites 2018, 69, e248. [Google Scholar] [CrossRef] [Green Version]
- Güney, M. Determination of fatty acid profile and antioxidant activity of Rosehip seeds from Turkey. Int. J. Agric. Environ. Food Sci. 2020, 4, 114–118. [Google Scholar] [CrossRef]
- Sharma, B.; Singh, B.; Dhyani, D.; Verma, P.K.; Karthigeyan, S. Fatty acid composition of wild growing rose species. J. Med. Plant. Res. 2012, 6, 1046–1049. [Google Scholar]
- El Qarnifa, S.; El Antari, A.; Hafidi, A. Effect of maturity and environmental conditions on chemical composition of olive oils of introduced cultivars in Morocco. J. Food Qual. 2019, 2019, 1854539. [Google Scholar] [CrossRef]
- Ngure, J.W.; Cheng, C.; Yang, S.; Lou, Q.; Li, J.; Qian, C.; Chen, J.; Chen, J. Cultivar and seasonal effects on seed oil content and fatty acid composition of cucumber as a potential industrial crop. J. Am. Soc. Hortic. Sci. 2015, 140, 362–372. [Google Scholar] [CrossRef] [Green Version]
- Mbako, J.; Clever, K.; Jerekias, G. Variation of Jatropha curcas seed oil content and fatty acid composition with fruit maturity stage. Heliyon 2020, 6, e03285. [Google Scholar]
- Koç, A. Chemical changes in seeds and fruits of natural growing rosehip (Rosa spp.) from Yozgat (Turkey). Acta Sci. Pol. Hortorum. Cultus. 2020, 19, 123–134. [Google Scholar] [CrossRef]
- Murathan, Z.T.; Zarifikhosroshahi, M.; Kafkas, N.E. Determination of fatty acids and volatile compounds in fruits of rosehip (Rosa L.) species by HS-SPME/GC-MS and Im-SPME/GC-MS techniques. Turk. J. Agric. For. 2016, 40, 269–279. [Google Scholar] [CrossRef]
- Barros, L.; Carvalho, A.M.; Ferreira, I.C.F.R. Exotic fruits as a source of important phytochemicals: Improving the traditional use of Rosa canina fruits in Portugal. Food Res. Intern. 2011, 44, 2233–2236. [Google Scholar] [CrossRef]
- Fromm, M.; Bayha, S.; Carle, R.; Kammerer, D.R. Comparison of fatty acid profiles and contents of seed oils recovered from dessert and cider apples and further Rosaceous plants. Eur. Food Res. Technol. 2012, 234, 1033–1041. [Google Scholar] [CrossRef]
- Kumari, R.; Mallavarapu, D.R.; Jain, V.K.; Kumar, S. Chemical Composition of the Fatty Oils of the Seeds of Cleome viscosa Accessions. Nat. Prod. Commun. 2012, 7, 1363–1364. [Google Scholar] [CrossRef] [Green Version]
- Ercisli, S. Chemical composition of fruits in some rose (Rosa spp.) species. Food Chem. 2007, 104, 1379–1384. [Google Scholar] [CrossRef]
- Dobreva, K.; Ovcharova, T.; Taneva, I. Lipid composition of rose hip fruits and seeds. Artte 2015, 3, 330–335. [Google Scholar]
- Pritchard, F.M.; Eagles, H.A.; Norton, R.M.; Salisbury, P.A.; Nicolas, M. Environmental effects on seed composition of Victorian canola. Aust. J. Exp. Agric. 2000, 40, 679–685. [Google Scholar] [CrossRef]
- Berti, M.; Fischer, S.; Wilckens, R.; Hevia, F. Flaxseed response to N, P, and K fertilization in south central Chile. Chilean J. Agric. Res. 2009, 69, 145–153. [Google Scholar] [CrossRef] [Green Version]
- Mustafa, H.S.B.; Nazima, B.; Zafar, I.; Ejaz, H.; Tariq, M. Effect of Fruit Position and Variable Temperature on Chemical Composition of Seeds in Brassica, Cotton, Sunflower and Maize Crops. Researcher 2015, 7, 51–67. [Google Scholar]
- Qadir, G.; Ahmad, S.; Fayyaz, U.H.; Cheema, M.A. Oil and fatty acid accumulation in sunflower as influenced by temperature variation. Pak. J. Bot. 2006, 38, 1137–1147. [Google Scholar]
- Lithuanian Organization for Standardization. LST ISO 10390:2005; Soil Quality. Determination of pH; Lithuanian Organization for Standardization: Vilnius, Lithuania, 2005. [Google Scholar]
- Oreshkin, N. Extraction of mobile forms of phosphorus and potassium by the Egner–Riehm–Domingo method. Agrokhimiia 1980, 8, 135–138. [Google Scholar]
- AOAC. Methods of the Association of Official Analytical Chemists, 15th ed.; Method No. 920.85, 780; AOAC: Arlington, VA, USA, 1990. [Google Scholar]
Rosehip Seed Samples | Ripening Stages | ||||
---|---|---|---|---|---|
I | II | III | IV | V | |
Linoleic acid (C18:2) | |||||
Rosa canina | 50.63 e,f | 50.24 d,e | 50.22 d | 51.12 f | 54.28 h |
Rosa rugosa | 48.69 b,c | 47.68 a,b | 48.68 b,c | 48.71 c | 48.26 b |
Rosa rugosa ‘Alba’ | 49.76 c,d | 50.58 e | 51.62 f,g | 50.24 d,e | 49.76 c,d |
Rosa rugosa ‘Rubra’ | 48.61 b | 48.46 b | 48.51 b | 48.64 b,c | 47.38 a |
Linolenic acid (C18:3) | |||||
Rosa canina | 24.31 b,c | 25.20 d | 24.33 c | 24.26 b | 19.31 a |
Rosa rugosa | 29.70 k | 30.64 l | 29.57 j,k | 29.37 y,j | 29.43 j |
Rosa rugosa ‘Alba’ | 28.88 h,i | 27.85 e,f | 27.34 e | 28.49 g,h | 29.26 y |
Rosa rugosa ‘Rubra’ | 29.09 i | 28.27 f,g | 29.13 i,y | 28.70 h | 30.64 l |
Eicosadienoic acid (C20:2) | |||||
Rosa canina | 0.110 a,b | 0.113 b | 0.110 a,b | 0.103 a,b | 0.100 a |
Rosa rugosa | 0.183 e | 0.180 e | 0.173 d,e | 0.163 c,d | 0.170 c,d |
Rosa rugosa ‘Alba’ | 0.180 e | 0.180 e | 0.173 d,e | 0.180 e | 0.180 e |
Rosa rugosa ‘Rubra’ | 0.183 e | 0.183 e | 0.173 d,e | 0.160 c | 0.163 c,d |
Eicosatrienoic acid (C20:3) | |||||
Rosa canina | 0.130 h,i | 0.123 g,h | 0.125 h | 0.140 i | 0.045 a |
Rosa rugosa | 0.131 h,i | 0.111 e,f | 0.101 c,d | 0.091 b,c | 0.091 b,c |
Rosa rugosa ‘Alba’ | 0.121 g,h | 0.123 g,h | 0.130 h,i | 0.113 f,g | 0.120 g,h |
Rosa rugosa ‘Rubra’ | 0.130 h,i | 0.113 f,g | 0.103 d,e | 0.090 b,c | 0.080 b |
Arachidonic acid (C20:4) | |||||
Rosa canina | 0.110 c | 0.081 b | 0.082 b | 0.060 a | 0.061 a |
Rosa rugosa | 0.071 a,b | 0.070 a,b | 0.071 a,b | 0.071 a,b | 0.060 a |
Rosa rugosa ‘Alba’ | 0.080 b | 0.081 b | 0.071 a,b | 0.071 a,b | 0.071 a,b |
Rosa rugosa ‘Rubra’ | 0.123 c | 0.133 d | 0.115 c | 0.115 c | 0.080 b |
Eicosapentaenoic acid (C20:5) | |||||
Rosa canina | 0.01 b | 0.000 a | 0.000 a | 0.000 a | 0.020 c |
Rosa rugosa | 0.000 a | 0.000 a | 0.000 a | 0.000 a | 0.000 a |
Rosa rugosa ‘Alba’ | 0.020 c | 0.000 a | 0.000 a | 0.001 b | 0.000 a |
Rosa rugosa ‘Rubra’ | 0.050 e | 0.050 e | 0.040 d | 0.060 f | 0.020 c |
Docosadienoic acid (C22:2) | |||||
Rosa canina | 0.010 a | 0.093 e | 0.082 c | 0.071 c | 0.060 b |
Rosa rugosa | 0.020 a | 0.090 d,e | 0.091 d,e | 0.081 c | 0.081 c |
Rosa rugosa ‘Alba’ | 0.111 f | 0.105 f | 0.021 a | 0.105 f | 0.091 d,e |
Rosa rugosa ‘Rubra’ | 0.192 i | 0.192 i | 0.171 h | 0.141 g | 0.111 f |
Docosahexaenoic acid (C22:6) | |||||
Rosa canina | 0.021 b,c | 0.051 h,i | 0.052 i | 0.041 e,f,g | 0.030 c,d,e |
Rosa rugosa | 0.030 c,d,e | 0.023 c,d | 0.031 c,d,e | 0.030 c,de | 0.000 a |
Rosa rugosa ‘Alba’ | 0.040 e,f,g | 0.010 a,b | 0.041 e,f,g | 0.031 c,d | 0.041 e,f,g |
Rosa rugosa ‘Rubra’ | 0.040 e,f,g | 0.051 h,i | 0.035 e,f,g | 0.045 g,h | 0.033 d,e,f |
Sum of PUFAs | |||||
Rosa canina | 75.31 b | 75.91 b,c | 75.02 b | 75.79 b,e | 73.88 a |
Rosa rugosa | 78.82 h | 78.81 h | 78.72 h | 78.51 h,g | 78.10 e,f |
Rosa rugosa ‘Alba’ | 79.18 l | 78.92 j | 79.38 l | 79.24 l | 79.52 k |
Rosa rugosa ‘Rubra’ | 78.40 g | 77.44 d | 78.26 f | 77.96 de | 78.51 h,g |
Rosehip Seed Samples | Ripening Stages | ||||
---|---|---|---|---|---|
I | II | III | IV | V | |
Palmitoleic acid (C16:1) | |||||
Rosa canina | 0.090 a | 0.090 a | 0.081 b | 0.060 c | 0.070 b,c |
Rosa rugosa | 0.233 f | 0.213 e,f | 0.180 d | 0.183 d | 0.233 f |
Rosa rugosa ‘Alba’ | 0.230 f | 0.230 f | 0.190 d,e | 0.203 d,e | 0.193 d,e |
Rosa rugosa ‘Rubra’ | 0.233 f | 0.230 f | 0.225 e,f | 0.213 e,f | 0.180 d |
Heptadecanoic acid (C17:1) | |||||
Rosa canina | 0.040 a | 0.040 a | 0.040 a | 0.040 a | 0.040 a |
Rosa rugosa | 0.053 a,b,c | 0.053 a,b,c | 0.063 c | 0.063 c | 0.063 c |
Rosa rugosa ‘Alba’ | 0.043 a,b | 0.053 a,b,c | 0.063 c | 0.063 c | 0.063 c |
Rosa rugosa ‘Rubra’ | 0.055 b,c | 0.055 b,c | 0.060 c | 0.058 c | 0.058 c |
Oleic acid (C18:1) | |||||
Rosa canina | 17.24 f | 17.08 g | 17.18 f | 17.18 f | 18.16 h |
Rosa rugosa | 13.52 a | 14.05 c | 14.68 c | 15.12 e | 15.29 e |
Rosa rugosa ‘Alba’ | 13.50 a | 13.68 b | 13.85 b | 14.16 c | 13.81 b |
Rosa rugosa ‘Rubra’ | 13.70 b | 14.78 c | 14.48 c | 15.16 e | 14.98 d |
Eicosenoic acid (C20:1) | |||||
Rosa canina | 0.452 b | 0.455 b | 0.450 b | 0.440 b | 0.315 a |
Rosa rugosa | 0.680 i | 0.712 y | 0.650 g | 0.630 f | 0.585 c |
Rosa rugosa ‘Alba’ | 0.660 h,i | 0.652 h | 0.592 c,d | 0.580 c | 0.605 d,e |
Rosa rugosa ‘Rubra’ | 0.705 y | 0.740 j | 0.675 i | 0.625 e | 0.580 c |
Erucic acid (C22:1) | |||||
Rosa canina | 0.230 f | 0.195 e | 0.170 c,d | 0.143 a | 0.160 b,c |
Rosa rugosa | 0.180 d | 0.135 a | 0.160 bc | 0.154 a,b | 0.120 a |
Rosa rugosa ‘Alba’ | 0.180 d | 0.205 f | 0.173 c,d | 0.183 d | 0.153 a,b |
Rosa rugosa ‘Rubra’ | 0.323 h | 0.340 h | 0.295 g | 0.295 g | 0.170 c,d |
Nervonic acid (C24:1) | |||||
Rosa canina | 0.255 f,g | 0.265 f,g | 0.250 f,g | 0.288 g | 0.030 a |
Rosa rugosa | 0.170 de | 0.153 d | 0.125 c | 0.125 c | 0.180 e |
Rosa rugosa ‘Alba’ | 0.060 b | 0.175 e | 0.175 e | 0.175 e | 0.240 f |
Rosa rugosa ‘Rubra’ | 0.115 c | 0.125 c | 0.115 c | 0.080 b | 0.125 c |
Sum of MUFAs | |||||
Rosa canina | 18.39 j | 18.13 i | 18.89 k | 18.15 i | 18.76 k |
Rosa rugosa | 14.83 b | 15.30 d | 15.85 e | 16.27 g | 16.47 h |
Rosa rugosa ‘Alba’ | 14.67 a | 14.96 b,c | 15.04 b,c | 15.35 d | 15.05 b,c |
Rosa rugosa ‘Rubra’ | 15.14 c | 16.27 g | 15.80 e | 16.43 h | 16.09 f |
Rosehip Seed Samples | Ripening Stages | ||||
---|---|---|---|---|---|
I | II | III | IV | V | |
Caproic acid (C:6) | |||||
Rosa canina | 0.040 d | 0.020 b | 0.030 c | 0.025 c | 0.000 a |
Rosa rugosa | 0.020 b,c | 0.005 a,b | 0.015 b,c | 0.000 a | 0.020 b |
Rosa rugosa ‘Alba’ | 0.020 b | 0.025 c | 0.000 a | 0.000 a | 0.020 b |
Rosa rugosa ‘Rubra’ | 0.070 e | 0.070 e | 0.065 e | 0.065 e | 0.040 d |
Lauric acid (C:12) | |||||
Rosa canina | 0.020 a,b | 0.020 a,b | 0.020 a,b | 0.015 a | 0.015 a |
Rosa rugosa | 0.020 a,b | 0.020 a,b | 0.015 a | 0.015 a | 0.020 a,b |
Rosa rugosa ‘Alba’ | 0.030 b | 0.013 a | 0.013 a | 0.010 a | 0.020 a,b |
Rosa rugosa ‘Rubra’ | 0.010 a | 0.010 a | 0.020 a,b | 0.020 a,b | 0.015 a |
Myristic acid (C:14) | |||||
Rosa canina | 0.040 a | 0.040 a | 0.040 a | 0.035 a | 0.035 a |
Rosa rugosa | 0.045 a | 0.045 a | 0.040 a | 0.040 a | 0.040 a |
Rosa rugosa ‘Alba’ | 0.048 a | 0.048 a | 0.040 a | 0.040 a | 0.040 a |
Rosa rugosa ‘Rubra’ | 0.040 a | 0.040 a | 0.040 a | 0.030 a | 0.045 a |
Pentadecanoic acid (C:15) | |||||
Rosa canina | 0.030 a | 0.030 a | 0.030 a | 0.030 a | 0.030 a |
Rosa rugosa | 0.050 d | 0.040 b,c | 0.030 a | 0.030 a | 0.033 a,b |
Rosa rugosa ‘Alba’ | 0.041 b,c,d | 0.041 b,c,d | 0.040 b,c | 0.041 b,c,d | 0.041 b,c,d |
Rosa rugosa ‘Rubra’ | 0.050 d | 0.045 c,d | 0.041 b,c,d | 0.035 a,b | 0.030 a |
Palmitic acid (C:16) | |||||
Rosa canina | 2.86 d | 2.78 a,b | 2.76 a,b | 2.73 a | 3.025 f |
Rosa rugosa | 3.62 j | 3.32 h | 2.98 f | 2.88 d,e | 2.84 c,d |
Rosa rugosa ‘Alba’ | 3.62 j | 3.40 i | 2.98 f | 2.88 d,e | 2.80 b,c |
Rosa rugosa ‘Rubra’ | 3.65 j | 3.46 y | 3.18 g | 2.92 e | 2.84 c,d |
Heptadecanoic acid (C:17) | |||||
Rosa canina | 0.060 a | 0.060 a | 0.060 a | 0.060 a | 0.070 a |
Rosa rugosa | 0.060 a | 0.050 a | 0.055 a | 0.050 a | 0.050 a |
Rosa rugosa ‘Alba’ | 0.060 a | 0.060 a | 0.053 a | 0.050 a | 0.050 a |
Rosa rugosa ‘Rubra’ | 0.060 a | 0.055 a | 0.055 a | 0.050 a | 0.060 a |
Stearic acid (C:18) | |||||
Rosa canina | 1.76 h,i | 1.73 h | 1.76 h,i | 1.790 i | 2.76 y |
Rosa rugosa | 1.06 c,d,e | 1.02 a,b,c | 1.04 b,c,d | 1.01 a,b | 1.07 d,e |
Rosa rugosa ‘Alba’ | 0.975 a | 1.08 d,e | 1.13 f,g | 1.08 e,f | 1.08 e,f |
Rosa rugosa ‘Rubra’ | 1.08 d,e | 1.06 b,c,d,e | 1.08 d,e | 1.14 g | 1.14 g |
Nonadecanoic acid (C:19) | |||||
Rosa canina | 0.050 a,b,c | 0.050 a,b,c | 0.045 a,b | 0.055 a,b,c | 0.050 a,b,c |
Rosa rugosa | 0.050 a,b,c | 0.055 a,b,c | 0.060 b,c | 0.055 a,b,c | 0.060 b,c |
Rosa rugosa ‘Alba’ | 0.060 b,c | 0.041 a,b | 0.050 a,b,c | 0.050 a,b,c | 0.061 b,c |
Rosa rugosa ‘Rubra’ | 0.045 a,b | 0.060 b,c | 0.060 b,c | 0.066 b,c | 0.040 a,b |
Arachidic acid (C:20) | |||||
Rosa canina | 0.815 i,y | 0.735 b,c,d,e | 0.800 g,h,i,y | 0.770 e,f,g | 1.010 j |
Rosa rugosa | 0.790 g,h,i | 0.785 g,h,i | 0.705 a,b,c | 0.690 a | 0.700 a,b |
Rosa rugosa ‘Alba’ | 0.810 h,i,y | 0.775 f,g,h | 0.745 d,e,f | 0.742 c,d,e | 0.730 b,c,d |
Rosa rugosa ‘Rubra’ | 0.830 y | 0.835 y | 0.790 g,h,i | 0.765 d,e,f,g | 0.735 b,c,d,e |
Heneicosylic acid (C:21) | |||||
Rosa canina | 0.030 a | 0.030 a | 0.030 a | 0.030 a | 0.030 a |
Rosa rugosa | 0.045 b,c | 0.040 a,b,c | 0.040 a,b,c | 0.040 a,b,c | 0.040 a,b,c |
Rosa rugosa ‘Alba’ | 0.040 a,b,c | 0.040 a,b,c | 0.040 a,b,c | 0.040 a,b,c | 0.040 a,b,c |
Rosa rugosa ‘Rubra’ | 0.050 c | 0.035 a,b | 0.035 a,b | 0.035 a,b | 0.040 a,b,c |
Behenic acid (C:22) | |||||
Rosa canina | 0.320 d | 0.315 b,c,d | 0.315 b,c,d | 0.310 b,c | 0.190 a |
Rosa rugosa | 0.375 g,h | 0.345 e,f | 0.315 b,c,d | 0.310 b,c | 0.315 b,c,d |
Rosa rugosa ‘Alba’ | 0.310 b,c | 0.345 e,f | 0.345 e,f | 0.330 d,e | 0.385 h |
Rosa rugosa ‘Rubra’ | 0.375 g,h | 0.360 f,g | 0.335 d,e | 0.310 b,c | 0.300 b |
Tricosanoic acid (C:23) | |||||
Rosa canina | 0.020 a | 0.020 a | 0.035 b,c | 0.040 b,c,d,e | 0.040 b,c,d,e |
Rosa rugosa | 0.030 a,b | 0.020 a | 0.018 a | 0.038 b,c,d | 0.038 b,c,d |
Rosa rugosa ‘Alba’ | 0.020 a | 0.061 g | 0.050 d,e,f,g | 0.051 e,f,g | 0.051 e,f,g |
Rosa rugosa ‘Rubra’ | 0.020 a | 0.020 a | 0.055 f,g | 0.045 c,d,e,f | 0.050 d,e,f,g |
Lignoceric acid (C:24) | |||||
Rosa canina | 0.245 g | 0.130 b,c,d | 0.135 c,d | 0.195 f | 0.130 b,c,d |
Rosa rugosa | 0.165 e | 0.165 e | 0.110 a,b | 0.105 a | 0.170 e |
Rosa rugosa ‘Alba’ | 0.130 b,c,d | 0.205 f | 0.120 a,b,c,d | 0.115 a,b,c | 0.120 a,b,c,d |
Rosa rugosa ‘Rubra’ | 0.210 f | 0.245 g | 0.195 f | 0.140 d | 1.005 h |
Sum of SFAs | |||||
Rosa canina | 6.30 g | 5.96 c,d | 6.09 d,e | 6.06 d | 7.36 i |
Rosa rugosa | 6.35 g | 5.89 c,d | 5.43 a,b | 5.22 a | 5.43 a,b |
Rosa rugosa ‘Alba’ | 6.15 f | 6.12 e | 5.58 b,c | 5.41 a,b | 5.43 a,b |
Rosa rugosa ‘Rubra’ | 6.48 h | 6.29 g | 5.94 c,d | 5.61 b,c | 5.40 a,b |
Years | Months | ||||||
---|---|---|---|---|---|---|---|
April | May | June | July | August | September | Average | |
Air temperature, °C | |||||||
2018 | 10.2 | 17.1 | 17.4 | 19.6 | 19.2 | 14.5 | 16.3 |
2019 | 9.1 | 13.4 | 21.2 | 17.2 | 18.2 | 12.5 | 15.3 |
SCN * | 7.0 | 12.8 | 15.7 | 18.0 | 17.1 | 12.0 | 13.8 |
Rainfall, mm | Sum | ||||||
2018 | 42.6 | 27.5 | 16.0 | 107.9 | 65.6 | 57.0 | 316.6 |
2019 | 0.7 | 28.6 | 27.5 | 50.3 | 100.5 | 46.5 | 254.1 |
SCN | 43 | 57 | 73 | 89 | 75 | 66 | 403 |
Sunshine, h | Sum | ||||||
2018 | 248 | 365 | 286 | 210 | 276 | 207 | 1592 |
2019 | 329 | 232 | 349 | 233 | 264 | 189 | 1596 |
SCN | 179 | 252 | 246 | 260 | 237 | 154 | 1328 |
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Kulaitienė, J.; Medveckienė, B.; Levickienė, D.; Vaitkevičienė, N.; Makarevičienė, V.; Jarienė, E. Changes in Fatty Acids Content in Organic Rosehip (Rosa spp.) Seeds during Ripening. Plants 2020, 9, 1793. https://doi.org/10.3390/plants9121793
Kulaitienė J, Medveckienė B, Levickienė D, Vaitkevičienė N, Makarevičienė V, Jarienė E. Changes in Fatty Acids Content in Organic Rosehip (Rosa spp.) Seeds during Ripening. Plants. 2020; 9(12):1793. https://doi.org/10.3390/plants9121793
Chicago/Turabian StyleKulaitienė, Jurgita, Brigita Medveckienė, Dovilė Levickienė, Nijolė Vaitkevičienė, Violeta Makarevičienė, and Elvyra Jarienė. 2020. "Changes in Fatty Acids Content in Organic Rosehip (Rosa spp.) Seeds during Ripening" Plants 9, no. 12: 1793. https://doi.org/10.3390/plants9121793
APA StyleKulaitienė, J., Medveckienė, B., Levickienė, D., Vaitkevičienė, N., Makarevičienė, V., & Jarienė, E. (2020). Changes in Fatty Acids Content in Organic Rosehip (Rosa spp.) Seeds during Ripening. Plants, 9(12), 1793. https://doi.org/10.3390/plants9121793