Identification of barley cultivars using SDS-PAGE electrophoresis Janne Roininen, Eero Nissilä, Matti Puolimatka ja SeppoPulli Roininen, J., Nissilä, E., Puolimatka, M. & Pulli, S. 1992. Identification of barley cultivars using SDS-PAGE electrophoresis. Agric. Sei. Finl. 1: 73-82. (Agric. Res. Centre of Finland, Inst. PI. Breed., SF-31600 Jokioinen,Finland). Sodium dodecyl sulphate-polyacrylamide gel electrophoresis (SDS-PAGE) was applied to cultivar identification. Three different extractions methods were used to extract and fractionate the seed storage protein subunits from crushed single seeds of barley (Hordeum vulgäre L.). Fifty-four genotypes including breeding lines and released cultivars were analysed and grouped according to the variation found in their protein banding patterns. In the first extraction, eight genotypes showed unique hordein subunit composition whilst remainder fell into 11 groups of 2to 8. The other two extractions were carried out to characterize those genotypes producing identical banding patterns when using the first method. Relative mobility (REM) values for hordein bands were determined. Genetic background was found to strongly effect the determination of hordein composition of barley genotypes. Those genotypes with largely common ancestry showed often similar hordein composition and were difficult to identify whereas genotypes possessing unique hordein banding patterns had clearly exceptional pedigree. The effect of the row-type on hordein banding pattern was not clear as both two-row and many-row barleys were found to produce identical patterns. Intra-cultivar hordein polymorfism was found in three cultivars. Key words: cultivar identification, barley, hordein, electrophoresis Abbreviations used in this article: SDS-PAGE - sodium dodecyl sulphate polyacrylamide gel electrophoresis, 2-ME - 2-mercaptoethanol, DMF - dimethyl- formamide, BIS - NN'-methylenebisacrylamide, TEMED - NNN'N'-tetramethylethyl- enediamine,TCA - trichloroacetic acid. Introduction The correct identification of barley cultivars is important to plant breeders for protection of their proprietary rights on cultivars and to crop users for the determination of grain suitability for different end-uses, especially malting. Several approaches have been introduced to enable characterization of genotypes from single or half seeds as a complement to the identification method of visual examination of heritable morphological diffe- rencies of whole plants or grains. These tech- niques, including electrophoresis, isoelectric focusing and chromatography, have been used to obtain qualitative information about the variation in hordein, the alcohol-soluble seed storage protein, dependent upon the genotype and independent on the growth environment. Hordein can be separated into its component polypeptides on the basis of differencies in molecular weight 73 Agne. Sei. Finl. 1 (1992) https://www.c-info.fi/en/info/?token=AokWUbwuj2G4WMjB.Afn6ZIwAgKlp5Z2jIWnp3g.eENxxXxjtwLvtCKL20aze9prO54rOkHl_nBG7WT8Sx9Qp__Qu1a_m_3LQinEgpCMfp90SZaUZuoEJDfi5fkhndddUeA-1YplPNNamdbBejh5RzmkCjraYz6U-gK17eBzMRDYffLn9mOO1WHcm6aZePNZgrrdM8hYS8p5X7kjINWpnKxni2wrCGAZTk6U9LTUtD-5zZ96UK02b4kVBrDAQ44-vSK3dM6Ifubrftr_lhdksxgY5xVO_1IxrjXLCuvZituK6c-5IC_rzX1co_Lf9HevNQdzB_mtUiUGbNibB4o3XOUmeLSotEDODb5WN6eJwvUuRFryRz7q (MiFLiN and Shewry 1977), isoelectric points (Favret et al. 1970, Shewry et al. 1978 a) and hydrophobicities in chromatographical analysis (Marchylo and Kruger 1984, 1985). Hordein has been classified into four groups A, B, C, D on the basis of differencies in molecular weights and amino acid compositions (Shewry and Miflin 1985). The A hordeins, less than 20 000 in molecular weight, are not regarded as true storage proteins (Miflin and Shewry 1977, Shewry et al. 1978 a, KöiE and Doll 1979) and do not vary sufficiently for cultivar identification (Shewry et al. 1978 a, Salcedo et al. 1980, 1982, Aragoncillo et al. 1981). In contrast the B and C groups, the major hordeins rangeing in molecular weights from 32 000 to 45 000 and from 45 000 to 80 000 respectively, show a wide variation in protein composition and are encoded by two separate but linked multigenic loci Hor2 and Horl located on the short arm of chromosome 5 (Jensen et al. 1980, Shewry and Miflin 1982, Heisel et al. 1986, Entwistle 1988). D hordeins, minor components with higher molecular weight, are encoded by locus Hor3 locating on the long arm of the same chromosome and exhibiting a limited but recognisable poly- morphism (Shewry et al. 1982, 1983). In this paper hordein compositions of 54 different barley genotypes were studied using sodium dodecyl sulphate-polyacrylamide gel electrophoresis (SDS-PAGE). The usefulness of this technique for identification of Finnish barley cultivars is discussed. Material and methods Experimental material Barley material consisted of all commercial cultivars currently grown in Finland, a specific collection of breeding lines from the Plant Breeding Institute of Agricultural Research Centre, in Jokioinen, Finland, and some foreign cultivars. Twenty-seven two- and many-row genotypes were included in experimental material. Grain samples were obtained from original certified seed material supplied by breeders. Barley cultivar Atem was used for the calibration of gels. Atem seed sample was kindly supplied by B.V. Landbouwbureau Wiersum, Groningen, Netherlands. Experimental methods Hordein extraction Three differentmethods were used to isolate hordein subunits from crushed single seeds (averaged 50 mg in weight) ofbarley. In method 1 (modified Smith et al. 1986) the samples from all genotypes were mixed with extraction buffer containing 750 ul of solution 1 (see table 1) and 250 (al of 2-ME added straight into a 1.5 ml microfuge tube, extracted for 2 hours at room temperature, mixed several times using a vortex mixer, heated in a boiling water bath for 10 min and then allowed to cool. The extracts were centrifuged Table 1. Compositions of three different extraction sol- utions. Solution 1. 62.5 mM Tris-HCI pH 6,8 2.0 % (w/v) SDS 0.01 % (w/v) Pyronin G 10.0 % (v/v) Glycerol 7.91 % (v/v) 2-ME a> 15.0% (v/v) DMF al Solution 2. 55 % (v/v) 2-propanol 2 % (v/v) 2-ME Solution 3. 65.8 mM TrisHCl pH 7,0 2.1 % (w/v) SDS 9.2 % (v/v) glycerol 0.001 % (w/v) bromophenol blue *' 2-ME and DMF were added prior to use. at 14 000 rpm for 5 min. The supernatants were used immediately for electrophoresis. Method 2 (modified from Shewry et al. 1978 a, b, Marchylo and Laberge 1980) was chosen to reveal differencies between genotypes resembling 74 Agne. Sei. Finl. 1 (1992) each others in their hordein composition in the first extraction. Hordeins were extracted overnight with 750 ul of 55 % (v/v) 2-propanol containing 2 % (v/v) 2-ME at 60 "C. The following morning extracts were centrifuged at 14 000 rpm for 5 min and 100 ul of supernatant was taken to be immediately evap- orated in a vacuum dryer at 42 °C. After evap- oration hordeins were resuspended in 100 jul of solution 1 used in the first extraction method. Samples were prepared immediately before electrophoresis. Method 3 was performed as described by Ahokas (1988) and was chosen to reveal differencies between genotypes which still gave similar banding patterns in the second method. Hordeins were extracted by heating samples in 712.5 ul of solution 3 (see Table 1)for 2 min in boiling water. The tubes were left overnight at room temperature and 37 ul of 2-ME was added on the following morning. Samples were centrifuged at 12 000 rpm for 10 min and analysed electrophoretically during the same day. Electrophoresis SDS-PAGE was carried out using a modificationof the discontinuous gel method of Laemmli (1970). The stacking gels contained 3.4 % (w/v) acrylamide, 0.038 % (w/v) BIS, 0.11 % (w/v) SDS, 0.12 M Tris- HCI, pH 6.8, 0.043 % (w/v) ammonium persulphate and 0.086 % (v/v) TEMED. The separating gels contained 13 % (w/v) acrylamide, 0.081 % (w/v) BIS, 0.10 % (w/v) SDS, 0.38 M Tris-HCI, pH 8.8, 0.025 % (w/v) ammonium persulphate and 0.051 % (v/v) TEMED. The running buffer contained 0.19 M glycine, 0.1 % (w/v) SDS and 0.025 M Tris, pH 8.3. Eighteen samples (25 ul) - nine genotypes with two replicates - were loaded onto each slab gel and subjected to overnight electrophoresis at 10.5 mA constant current per 200 x 160 x 1.5 mm slab gel on a Bio-Rad Protean II dual slab electrophoresis cell. The gels were run at 15 °C until the marker dye had reached the bottom of the separating gel. Following electrophoresis, gels were fixed in 15 % TCA for 30 min, rinsed in distilled water and stained overnight at room temperature in the staining solution containing 5.5 % (w/v) TCA, 6.5 % glacial acetic acid, 18 % (v/v) methanol, 0.006 (w/v) Coomassie Blue G250 and 0.019 % (w/v) Coomassie Blue R250. The gels were destained in 10 % TCA for 4 hours, photographed and dried with Bio-Rad Slab Dryer. The variation in hordein bands was quantified by using the relative mobility value (REM-value) recommended by UPOV (Inter- national Union of Protection of New Varieties of Plants). REM-values were determined in relation to the migration distance of a specific B-hordein band (given REM-value 100) of the calibration cultivar Atem. Results Hordein extraction Clear and reproducible hordein banding patterns in B, C and D hordein groups were obtained with all three extraction methods used in the study. The A hordeins did not give consistent patterns - which was expected as the extraction methods are more suitable for B, C and D hordeins. Therefore A hordeins were not included in the characterization ofgenotypes. Variation was not found between the replicate samples (7-11 reps in method 1, 4 reps in method 2 and 4 reps in method 3) of any genotype except three cultivars Potra, Triumph and Etu, which showed polymorphism in their hordein patterns. Genotypes analysed with all three extraction methods seemed to produce almost identical hordein patterns in each extractions, showing mainly the same major bands with variation in their migration distances. Extraction methods 1, 2 and 3 produced respectively 44, 43 and 38 protein bands, in which variation was found (Figs. 1, 2 and 3). The efficiency of extraction methods 1 and 2 to separate hordein into its component subunits was found to be nearly the same. Method 1 did not give variation in C hordeins as effectively as the other two procedures. However, method 1 seemed to be the most suitable for the extraction of D hordeins, as six different D- bands (three of which were used in identification) 75 Agne. Sei. Finl. 1 (1992) could be observed with this procedure. The extraction method 3 produced the largest hordein fraction separation, but no clear difference compared to other methods was found as many of the bands were not clear enough to be used in identification. Method 1 gave the most distinctive bands, possibly due to the shorter migration distances of the bands than in the other methods. Cultivar identification The variation in characters used in cultivar identification must entirely be based on genetic differencies. In this study only the presence or absence ofprotein bands was accepted as sufficient evidence to separate genotypes, whereas the variation in the staining intensities of the bands was not regarded as a reliable determinant for cultivar identification. With the first extraction method hordein fractions were separated from all 54 genotypes. Eight genotypes had unique hordein compositions. Two of these were many-row and six two-row barleys. The remaining 46 genotypes fell into 11 groups (numbered 1 to 11) the largest containing eight genotypes (Table 2, Fig. 1). Groups 1,2, 3, 4 and 6 contained both two-row and many-row barleys. Group 5 consisted of only many-row barleys whereas genotypes in groups 7, 8,9, 10 and 11 were all of two-row type. The relation between Fig. 1. Hordein banding patterns of 11 cultivar groups and 8 single genotypes obtained by the extraction method 1. Arrows indicate the special discriminating bands marked with blots in Table 3. Fig. 2. Hordein patterns ofmethod 2. Groups are indicated as in Table 2. Fig. 3. Hordein petterns of method 3. Groups are indicated as in Table 2. 76 Agric. Sei. Finl. 1 (1992) hordein patterns of cultivar groups and the REM- values of 44 varying bands in extraction 1 is presented in Figure 1 and Table 3. Bands used in separating genotypes of closely resembling cultivar groups are indicated with blots in Table 3 and with arrows in Figure 1. No drastic improvement was obtained in identi- fication with methods 2 and 3 (Figs. 2 and 3). Only a few genotypes could be eliminated from the groups obtained by the first extraction (Table 2). However, the extractions 2 and 3 could separate out four two-row barleys (Jo 1587, Jo 1681, Jo 1490 and Jo 1792) from groups 1 and 3 and one two-row barley (Jo 1677) from group 6. Interesting also, two many-row barleys (Jo 1669 and Jo 1755) could be dissected out from group 4. Compared to the common identification of cultivars by morphological characters of grain (base of lemma, spiculation of lemma nerves, rachilla hair lenght) in many cases electrophoresis could produce more accurate identification. For example, released cultivars identical in grain morphology [Pomo, Pokko, Kilta], [Kalle, Agneta], [Kustaa, Kymppi] could be identified on the basis of hordein patterns. On the other hand, some cultivar pairs [Arra, Niina], [Pomo, Etu], [Potra, Pohto], [lda, Mette] remained undistinguishable. In many cultivar groups established by the method 1 the influence of common genetic background of genotypes can be noticed. For example, in group 3 (Table 2) all genotypes are derived from an old breeding line Jo 0490 (Fig. 4). Similarily, cultivars Otra, Mari and Varde join the pedigrees of the genotypes in groups 2, 4 and 6, respectively. Hordein polymorphism within cultivars Three cultivars, Potra, Triumph and Etu, showed intra-cultivar variation in their hordein com- position. All extractions of Potra were pre- pared from seeds of the same elite seed material. All seven seeds analysed with method 1 showed identical banding patterns. In contrast, two different banding patterns (named a and b) were observed with both methods 2 and 3 (Fig. 5). Six seeds were analysed with method 2 giving patterns a and b in a ratio of 4:2, while with method 3 the two analysed samples gave the relation of 1:1. It was noticed that the b-type patterns were identical in the both extractions 2 and 3 (Fig. 5). Thus the Table 2. The cultivar groups obtained by the first extraction method. Genotypes marked with superscripts 2 and 3 were di- vided by the second and the third extraction methods, respectively, into subgroups shown by superscript letters. Two-row bar- leys are indicated with bold font. Group Group Group Group Group Group Group Group Group Group Group I 23456789 10 II Pomo Pohto Pokko Kustaa Kilta Arra Prisma Kymppi Jo 1610 Ida Atem Etu Potra Jo 1658 Jo 1724 Jo 1546 Niina Jo 1607 Jo 1800 Jo 1612 Mette Jo 1790 Jo 1439 loviisä Jo 1730 Jo 1605* Jo 1599 Jo 1770 Jo 1626* Jo 1660 Jo 1676 Jo 1742 Jo 1669* Jo 1632* Jo 1677* Jo 1678 Jo 1739 Jo 1782 Jo 1755* Jo 1734 Nord 23 Jo 1490* Jo 1587* Eero 2" Jo 1792* Jo 1681* Genotypes having unique hordein pattern in extraction 1 are numbered 12 to 19; Agneta (12), Kalle (13), Triumph (14), Jo 1545 (15), Jo 1575 (16), Jo 1589 (17), Jo 1621 (18) and Jo 1801 (19). 77 Agne. Sei. Finl. 1 (1992) Table 3. REM-values of cultivar groups obtained by the first extraction method. The groups having hordein patterns re- sembling each other are presented in the same column. REM- Atem Group number value 11 12 /17 4 /10 13 14 /18 /19 16 7 8 / 3 /1/9 6 15 5 /2 35.5 * * 36.3 * * * * * * * • 36.8 * * • * * * * * * 52.1 * * * • * 55.1 * • * * * * * * * 55.6 • • 56.0 * 59.8 ***** * * * * • 6a? * • * • 61.5 • • 63.2 * * 65.4** *** * * * * 66.7 • * 67.1 * * * 67.9 ** *** * **** 69.7 • * 70.9 *** *** * ***** ** 72.2 • * * * 73.5 • * 75.6 * * • 77.8 * * • * * * 78.6 * * * • * 79.9 * * * * * ******** 80.3 * * * * * 81.2 * 81.6 * * * * * * 82.9 **** * * ** 84.2 * * * * * 85.0***** ******** 86.8 * * * 87.2 ****** ** 88.9 * * * * 89.7 * ** ***** 90.2 * * * * * 91.9 * * * 93.2 * **** * * ** 93.6 * * * * 94.0 * 962 * 97.8 * 100.0 • ***** 100.9 * * * 101.7 **** * * ** 103.0 * * * * = hordein band •= special hordein band discriminating groups within the same column. yg Agric. Sei. Fin!. 1(1992) biotype ratio of Potra is about 4:1. Cultivar Triumph showed two different banding patterns in extraction 1 in relation of 12:1, whereas in Etu three different patterns were observed in relation of 23:1:1 (different banding patterns of Triumph and Etu are not shown in this paper). Discussion The aim of using biochemical techniques in cultivar identification is to provide accurate infor- mation about characters where genetic varia- bility is larger than in morphological traits currently used in the characterization of cultivars. In this study we compared three different extractions for use in identification of barley cultivars by one-dimensional SDS-PAGE. In order to regard electrophoretically obtained hordein pattern variation as a reliable identification method, differencies between genotypes must be reproducible, clear and genetically determined. Therefore the absence or the presence of a protein band can be seen as a sufficient indicator of genetic variation, whereas the intensity of the protein bands can vary according to the protein content being quantitative in nature. However, sometimes the determination of the existence - presence or absence - of a protein band with weak staining intensity is problematic, and a sufficient amount of replications is necessary to confirm this variation as also the heterogeneity within a cultivar. In this experiment many faint and unrepeatable bands were seen in B, C and D hordein groups in addition to the clearly observable protein fractions used in identification. In general, the exact biochemical effects of extractions on hordeins are mainly uncontrolled and the construction of a special extraction solution to express putative hordein fraction variation is impossible. The efficiency of different extractions can thus only be determined by studying their effect on tested cultivars - in other words, the efficiency and suitability of extractions is measurable only in relation to the experimental material. In this study the material mainly consisted of Finnish barley genotypes possessing relatively Fig. 4. The genetic background of cultivars in hordein pattern group 3 (tested cultivars are shown with bold font). Fig. 5. Biotypes of cv. Potra. Numbers indicate the extractions and letters show the biotypes. 79 Agric. Sei. Finl. 1 (1992) narrow genetic variation in their background. The variation among D hordeins was found to be larger than reported in earlier studies (Shewry et al. 1982) and this variation was also suitable for identification of tested genotypes. The further development of electrophoretical identification of Finnish barley cultivars should exploit not only the variation found in B and C hordein but also that in D hordein. In this study the extraction methods showed little differencies in their ability to separate hordein fractions in terms of the number of different bands. In contrast, there was a clear difference in the sharpness of bands, method 1 giving the best results. This was possibly due to the lower binding of SDS to proteins as a consequence of the high consentration of 2-ME. As a result the migration distances of protein fractions were shorter than in the extractions 2 and 3 in the same running conditions. The best separation of D hordeins was achieved with method 1, although straight com- parison of the extractions is limited as some of the cultivars, for example Agneta and Jo 1545, which showed a specific D hordein compositions, were not analysed with extractions 2 and 3. Method 3 produced the highest frequency ofdifferent hordein subunits. This was supposed to be a consequence of the addition of 2-ME (which boils at lower temperature than alcohol) only after the cooling the boiled samples (Mälkönen 1984). In this study the distinctiveness of cultivars could be improved by using electrophoretical identi- fication compared to the traditional visual exam- ination of seed morphology. The hordein pattern did not provide the ultimate 'finger print', but electrophoresis can be used as a cheap and quick complement to obtain more correct identi- fication. According to our results there is only limited possibilities to exploit the existing hordein variation by modifying the extraction procedure. The genetic background of experimental material determines the efficiency and suitability of extraction. In our study the cultivars having gene material from different pools performed in many cases unique hordein patterns (for example Triumph, Agneta, Kalle, Jo 1545 and Jo 1589) or formed groups according to genetic similarity. The influence of common genetic background is due to the inheritance of hordein pattern: studies on biotypes have shown that bands not present in the parents cannot be found in progeny and that parents are also more diverse in their hordein composition than offspring due to the linkage of hordein loci (Borisov et al. 1989, Pomortsev et al. 1989). Although the function of hordein genes in relation to morphological traits was not examined in this paper the electrophoretical procedure used in this study show evidence about linkage between ear type and hordein composition. Polymorphism in hordein banding patterns within the same cultivar indicates that the purification on the basis of morphological char- acters does not always ensure cultivar homo- geneity in hordein pattern. In purifying breeding programmes the hordein pattern should be used as one selection criteria to obtain pure lines. The polymorphism of cv. Triumph noticed in this study has also been reported earlier (O'Farrell 1987); the three biotypes ofcv. Etu seem more likely to be seed contamination. It would be interesting to test the similarity of the biotypes ofcv. Potra compared to its parental hordein patterns. As a conclution of this study the results indicate that modification of hordein extractions for SDS- PAGE give only limited possibilities to exploit the genetic variation strongly affected by the genetic background of genotypes. The 'multi-step electro- phoresis' seems to have potential for more precise cultivar identification. To attain absolute cultivar fingerprinting analysis at the DNA level is needed. 80 Agne. Sei. Finl. 1 (1992) References Ahokas, H. 1988. gene segregation distorted in the barley cross Riso 1508 x Crypt CI 1090: Patterns of endosperm proteins by an electrophoretic method. Here- ditas 108: 129-131. Aragoncillo, C, Sanchez-Monge, R. & Salcedo, G. 1981. Two groups of low molecular weight hydrophobic proteins from barley endosperm. J. Exp. Bot. 32: 1279- 1286. Borisov, Y. M., Shevtsova, L. N., Zobova, N. V. & Surin, N. A. 1989. Characterization of component composition of hordeins of spring barley varietes in East Siperian region. Sov. Agric. Sci. 12: 1-5. Entwistle, J. 1988. Primary structure of a C-hordein gene from barley (Hor-1 locus, storage proteins). Carlsberg Res. Commun. Vol. 53: 247-258. Favret, E. A., Manghers, L., Solari, R., Avila, A. & Mo- nesiglio, J. C. 1970. Gene control ofprotein production in cereal seeds. In: Improving Plant Protein by Nuclear Techniques. Int. Atomic Energy Agency, Vienna, p. 87- 97. Heisel, S. E., Peterson, D. M. & Jones, B. L. 1986. Identi- fication ofUnited States barley cultivars by sodium do- decyl sulfate polyacrylamide gel electrophoresis of hor- deins. Cereal Chem. 63(6): 500-505. Jensen, J., Jörgensen, J. H., Giese, H. & Doll, H. 1980. Linkage of hordein loci Hor-1 and Hor-2 with the powdery mildew resistance loci Mlk and Mia on barley chromosome 5. Theor. Appl. Genet. 58: 27-37. Koie, B. & Doll, H. 1979. In: Seed Protein Improvement in Cereals and Grain Legumes. Vol. 1. International Ato- mic Energy Agency, Vienna, p. 205. Laemmli, U. K. 1970. Cleavage ofstructural protein during the assembly of the head of the bacteriophage T4. Na- ture 227: 680. Marchylo, B. A. & Laberge, D. E. 1980. Barley cultivar identification by electrophoretic analysis ofhordein pro- teins. 1. Extraction and separation of hordein proteins and enviromental effects on the hordein electropho- regram. Can. J. Sci. 60: 1343-1350. & Kruger, J. E. 1984. Identification of Canadian barley cultivars by reversed-phase high-performance liquid chromatography. Cereal Chem. 61: 295. & Kruger, J.E. 1985. Assessment ofRP-HPLC columns to separate hordein proteins and identify cultivars ofbar- ley and barley malt. J. Am. Soc. Brew. Chem. 43: 29. Miflin, B. 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J. 1978 a. Varietal identification ofsingle seeds ofbarley by analy- sis of hordein polypeptides. J. Sci. Fd Agric. 29: 587- 596. —,Ellis, J.R. S., Pratt, H. M. & Miflin, B. J. A. 1978b. A comparison ofmethods for the extraction and separa- tion of hordein fractions from 29 barley varieties. J. Sci. Fd. Agric. 29:433-441. , Field, J. M., Pärmar, S. & Miflin, B. J. 1982. 'D' hor- dein, a new group ofprolamin storage proteins in barley. Barley Genet. Newsl. Vol. 12: 28-29. & Miflin, B. J. 1982. Genes for the storage proteins of barley. Qual. Plant Mater. Veg. 31: 251- 267. , Finch, R., Pärmar, S., Franklin, J. & Miflin, B. J. 1983. Chromosomal location of Hor-3, a new locus governing storage proteins in barley. Heredity 50: 179. , Miflin, B. J. 1985. Seed storage proteins of economi- cally important cereals. In: Pomeranz Y. (ed.). Advances in Cereal Science and Technology. Vol. 7. Am. Assoc. Cereal Chem. St. Paul, MN. p. 1-84. Smith, D. 8., Lister, P. R. & Hanson, P. R. 1986. Discri- mination of barley varietes by electrophoresis of endo- sperm proteins extractable into a mixture ofsodium do- decyl sulphate, 2-mercaptoethanol and dimethylform- amide. J. Cereal Sci. 4: 107-116. Manuscript received December 1991 Janne Roininen Eero Nissilä Matti Puolimatka Seppo Pulli Agricultural Research Centre ofFinland Institute of Plant Breeding SF-31600 Jokioinen, Finland 81 Agric. Sci. Finl. 1 (1992) SELOSTUS Ohran lajiketunnistus SDS-PAGE-elektroforeesilla Janne Roininen, Eero Nissilä, Matti Puolimatka ja Seppo Pulli Maatalouden tutkimuskeskus Tutkimuksessa selvitettiin SDS-PAGE-elektroforeesime- netelmän soveltuvuutta ohran lajiketunnistukseen. Tutki- muksessa käytettiin kolmea erilaista ohran jyvän varastopro- teiinien eli hordeiinien uuttomenetelmää. Yhteensä 54 eri- laista ohran genotyyppiä, joihin kuului kotimaisia ja ulko- maisia lajikkeita sekä kotimaisia jalostuslinjoja, analysoitiin ja ryhmiteltiin niiden elektroforegrammien mukaan. Tutkit- tujen genotyyppien varastoproteiinivyöhykkeiden suhteelli- set liikkuvuudet (REM-arvot) määritettiin suhteessa kontrol- lina käytettyyn Atem-lajikkeeseen. Ensimmäisellä uuttomenetelmällä kahdeksan genotyyp- piä pystyttiin erottamaan täysin erilleen muista. Loput koe- jäsenet jakautuivat 11 ryhmään, jotka sisälsivät kahdesta kahdeksaan koejäsentä. Uutoilla 2 ja 3 pyrittiin erottamaan toisistaan uutossa 1 samaan ryhmään kuuluneet genotyypit, ja näin tarkentamaan lajiketunnistusta. Verrattuna jyvän morfologiaan perustuvaan lajiketunnis- tukseen, käytetyillä elektroforeettisi 11a menetelmillä pystyt- tiin useimmissa tapauksissa tarkentamaan identifiointia. Yh- teisen geneettisen taustan havaittiin voimakkaasti vaikutta- van eri ohragenotyyppien jyvän varastoproteiinikoostumuk- sen vaihteluun. Geneettisesti lähellä toisiaan olevien geno- tyyppien elektroforegrammit havaittiin usein samankal- taisiksi; huomattavan erilaisen geneettisen alkuperän omaa- vat genotyypit erottuivat sen sijaan helposti toisistaan. Kak- si- ja monitahoisia ohria ei kaikissa tapauksissa pystytty erottamaan, sillä molemmat tyypit tuottivat eräissä tapauk- sissa yhtenäisen elektroforegrammin. Varastovalkuais- ainekoostumuksen lajikkeen sisäistä vaihtelua havaittiin kolmessa koejäsenessä. 82 Agric. Sei. Finl. 1 (1992)