Maataloustieteellinen A ikakauskirja Vol. 59: I—9, 1987 Environmental and genetic variation in protein content of peas under northern growing conditions and breeding implications REIJO KARJALAINEN and »SALME KORTET Departments of Plant Pathology and Plant Breeding, University of Helsinki SF-00710 Helsinki, Finland *Department of Plant Breeding, Agricultural Research Centre, SF-31600 Jokioinen, Finland Abstract. Association of protein content in peas with climatic factors was studied on data based on official cultivar trials at six locations in southern Finland in 1978—1985. Correlation and step-wise multiple linear regression methods were used to define the main climatic vari- ables affecting protein content. Correlation studies showed that protein content was significantly and positively associated with temperature sum and mean June temperature and significantly negatively correlated with July precipitation. Regression analysis indicated that climatic factors accounted for 25 %—7O % of the total variation in protein content. Temperature sum and precipitation in July were the most important independent variables explaining protein variation. The role of environmental factors for protein variation and its implications for the improvement of protein content by plant breeding is discussed. Index words: peas, protein variation, climatic factors, plant breeding Introduction Legumes provide about 10 % of the world’s supply of protein (Gridley and Evans 1979, Matthewsand Arthur 1985). Today there is an increasing interest in utilizing legume pro- tein in animal feeding mainly because legumes have the ability to fix nitrogen biologically and simultaneously produce abundant protein. In addition, failures in breeding cereals for bet- ter protein crops have focused more attention on grain legumes, which naturally contain high amounts of protein with high biological value in terms of amino acid composition. In the past ten years particular attention has been given on peas as an important future protein crop in Europe because remarkable advances in improving yield stability have been achieved. Breeding success has been based on utilizing mutant genes which affect the development of tendrils, leaflets and stipules (Kujala 1953, Davies 1977) so that breeders have been able 1 1 JOURNAL OFAGRICULTURAL SCIENCE IN FINLAND https://www.c-info.fi/en/info/?token=y9LDpiXzXBkK1xHk.o6PPZM2IRdKXi9CgqUPvRg.eBWTvf-Y9k_zBq_OiGIQCEAGgqsButov0pANPqhx-koFkBfsjMWRAtM1UBpLx8evOyhtJ8SGNtSmyREnYGwqiS8nGQwwQqQ0osrJ8LBwoK5kIaCDLy3Lv428u_AHZZeVgZZHnVp9x_fI34ImR65OSmUpArnEz8lSzh-1Pfutle9ieZks5E7tzaZrJdK2YAWx to produce leafless and semileafless peas. These types of peas have better lodging resist- ance than conventional peas, which means considerable savings in harvesting costs. The protein content of peas is a heritable trait (Pesola 1955) as well as its protein quality (Holt and Sosulski 1979), and they are obvi- ous targets for improvement by breeding. However, available data (Snoad 1980, Matt- hews and Arthur 1985) suggest that protein breeding in peas is likely to be difficult. This assumption is based on observations (Ali- KHANand Youngs 1973, Wolf 1975) that pro- tein content is also strongly affected by envi- ronmental factors. The present paper is a continuation of a previous report (Karjalainen and Hovinen 1981) and is based on more extensive data. The main purpose of this study is to explain the variation in protein content of peas on the basis of climatic variables and to discuss pro- blems related to protein improvement by plant breeding under northern growing conditions. Materials and methods The present data based on official cultivar trials at the following six locations in 1978— 1985: Agricultural Research Centre, Depart- ments of Plant Husbandry and Plant Breeding (Jokioinen), Agricultural Research Stations of Satakunta (Kokemäki), Kymenlaakso (Anja- la), Häme (Pälkäne), and Lounais-Suomi (Mietoinen) (Table 1). Environmental con- ditions varied widely between different years and locations. Nitrogen levels varied from 16 to 80 kg/ha. Climatic variables were based on data col- lected at the Agricultural Research Stations, and statistical calculations, correlation anal- yses, and step-wise multiple linear regression analyses were computed by standard proce- dures. Results Correlation studies Correlation data based on all varieties in- dicate that protein content is clearly positively associated with plant height, growing time, flowering duration, lodging, seed yield, and protein yield (Table 2). Seed weight shows no clear association with protein content. Asso- ciation of protein content with some climatic factors reveals that temperature sum and mean June temperature are significantly positively correlated with protein content, while the correlation with July precipitation was significantly negative. Other climatic fac- tors did not have much influence on protein content. Correlation analysis of single varieties con- firms the data based on all varieties since again protein content is positively associated with plant height, growing time, lodging, and seed and protein yield. Association of seed weight with protein content is inconsistent as some cultivars, such as Kiri and Simo, showed sig- nificant positive correlations, while for others the association was weak. However, in the case of Kiri and Simo the high correlations might simply be due to chance caused by the small number of trials. In general, it appears that seed weight is only weakly correlated with protein content. Association of climatic fac- tors with protein content appears to be similar as for all varieties. Mean June temperature is for all varieties positively correlated with pro- tein content, while mean temperatures in July and August had only a small influence on it. Temperature sum and protein content were clearly positively correlated for all cultivars ex- cept for Simo, which, however may again be due to chance because of limited material. In general, rainfall appears to have negative in- fluence on protein content, and particularly precipitation in July is often significantly negatively associated with protein content (Table 2). Regression studies In order to explain in more detail the climatic effects on protein content, step-wise regression methods with the probability ofF = 0.05 were employed. At the first stage, in- 2 Table 1. Number of observations on different cultivars at various trial locations. Data based on trial results published by the Agricultural Research Centre, Department of Plant Breeding (Kjo), Department of Plant Husbandry (Kvo), and the following Research Stations, Satakunta (Sat), Kymenlaakso (Kym), Häme (Häm), and Lounais-Suomi (Lou) in 1978—1985. Number of Trial location Number of Trial location observations observations Proco Tot. 43 Rondo Tot. 40 1978 Lou, Sat, Kym, Häm 1978 Lou, Sat, Kym, Häm 1979 Kvo, Kjo, Lou, Sat, Kym, Häm 1979 Kvo, Kjo, Lou, Sat, Kym, Häm 1980 Kvo, Lou, Sat, Kym, Häm 1980 Kvo, Lou, Sat, Kym, Häm 1981 Kjo, Lou, Sat, Kym, Häm 1981 Kjo, Lou, Sat, Kym, Häm 1982 Kvo, Kjo, Lou, Sat, Kym, Häm 1982 Kvo, Kjo, Lou, Sat, Kyra, Kym, Häm 1983 Kvo, Kjo, Lou, Sat, Kym, Häm 1983 Kvo, Kjo, Lou, Sat, Kym, Häm 1984 Kjo, Lou, Sat, Kym, Häm 1984 Kvo, Lou, Sat, Häm 1985 Kvo, Kjo, Lou, Sat, Kym, Häm 1985 Kvo, Kjo, Lou, Sat Filby Tot. 34 Hemmo Tot. 40 1978 Lou, Kym 1978 Lou, Sat, Kym, Häm 1979 Kvo, Lou 1979 Kvo, Kjo, Lou 1980 Kvo, Lou 1980 Kvo, Lou, Sat, Kym, Häm 1981 Kjo, Lou, Sat, Kym, Häm 1981 Kjo, Lou, Sat, Kym, Häm 1982 Kvo, Kjo, Lou, Sat, Kym, Häm 1982 Kvo, Kjo, Lou, Sat, Kym, Häm 1983 Kvo, Kjo, Lou, Sat, Kym, Häm 1983 Kvo, Kjo, Lou, Sat, Kym, Häm 1984 Kjo, Lou, Sat, Kym, Häm 1984 Kjo, Lou, Sat, Kym, Häm 1985 Kvo, Kjo, Lou, Sat, Kym, Häm 1985 Kvo, Kjo, Lou, Sat, Kym, Häm Hertta Tot. 24 Kiri Tot. 19 1978 Lou 1978 Lou, Sat, Kym, Häm 1979 Kvo, Kjo, Lou 1979 Kvo, Kjo, Lou, Sat, Kym, Häm 1980 Lou 1980 Kvo, Lou, Kym, Häm 1981 Kjo, Lou, Sat, Kym, Häm 1981 Kjo, Häm 1982 Kvo, Kjo, Lou, Sat, Kym, Häm 1982 Kjo 1983 Kvo, Kjo, Lou, Sat, Kym, Häm 1983 Kjo 1984 Kjo 1984 Kjo 1985 Kjo Simo Tot. 18 1978 Lou, Sat, Kym, Häm 1979 Kvo, Kjo, Lou, Sat, Kym, Häm 1980 Kvo, Lou, Sat, Kym, Häm 1981 Kjo 1982 Kvo, Kjo dependent variables incorporated in the re- gression models were mean temperatures in June, July, and August, as well as precipita- tions in June, July, and August. At the second stage, temperature sum was incorporated into the model. The results based on all varieties (Table 3) show that regression equation (F = 22.36***) including variables July precipita- tion and June and July mean temperatures ac- counted for 25.6 % of the total variation in protein content. Precipitation in July alone explained for 10.4 % of the variation. Data based on single varieties reveal that cultivars Hemmo and Rondo show similar patterns, and July precipitation and tempera- ture accounted for 28.5 % and 27.6 %, re- spectively, of the total variation in protein content. July precipitation accounted for 16.3 % and 17.5 % of the protein variation in Hemmo and Rondo, respectively. Com- putations based on early cultivar Proco in- dicated that Julyprecipitation had the largest effect on protein content, 24.4 %, as the regression model, including July precipitation 3 Table 2. Correlation analysis between protein content and agronomic & climatic factors from the data based on official cultivar trials at six locations in Southern Finland in 1978 —85. Cultivars seed lodging flowering growing temp. height 1000 grain protein mean temperature, °C precipitation, mm Oration time weight yield June Ju)y Aug ~ June July August tot. data 0.3177** 0.3645** 0.5236** 0.5686** 0.6580** 0.5290*» 0.0812 0.5321** 0.2377** —0.0989 —0.0459 —0.1113 —0.3231** 0.0732 (7 cultivars) (n= 199) Hertta 0.2610 0.2052 0.5175* 0.5967* 0.7119* 0.2887 0.2469 0.4206 0.2758 —0.2952 0.1472 —0.4010 —O.lBBO 0.0186 (n = 23) Kiri 0.4928 0.0829 0.6139 0.4702 0.8280 0.4217 0.6845* 0.6575* 0.4957 —0.1409 —0.0087 —0.1683 —0.5034 —0.0892 (n = 16) Hemmo 0.2726 0.3388 0.4732* 0.4698* 0.6502** 0.4228* 0.2439 0.4785* 0.2013 —0.1153 0.0025 —0.1329 —0.4039* 0 1713 (n = 37) Simo 0.7662** 0.1428 0.3270 0.4968 —0.1280 0.5764 0.6278* 0.8141** 0.2735 0.1957 —0.2358 0.1320 —0.6107* —0.1420 (n= 15) Rondo 0.4061* 0.4578 * 0.4010 0.3732 0.5014 0.4549* 0.2717 0.5572** 0.1411 —0.0538 0.0596 —0.1303 —0.4180* —0.0375 (n = 36) Proco 0.5003** 0.4687* 0.2973 0.4001* 0.2443 0.3963* 0.2149 0.6853** 0.2005 0.0370 —0,0938- 0.0281 —0.4941** —0.0964 (n = 39) Filby 0.2646 0.1991 0.3760 0.4109* 0.3431 0.4031 0.1624 0.4092* 0.3024 —0.2608 —0.1144 —0.0257 —0 3225 0 1065 (n = 33) 4 Table 3. Regression analysis on climatic factors affecting protein content in peas from the data based on official cultivar trials at six locations in Southern Finland in 1978—85. Cultivars n Regression equation (probability of F in =0.050) F value df R 2 tot. data 199 y=34.636—0.038-July—0.968 Heinäk + 0.477 Kesäk (7 culti- vars) 22.361*»* (3,195) 0.256 (10.4) Kiri 16 y=37.681—0.048- July+0.953 Kesäk—l.436-Heinäk 7.214** (3,12) 0.643 (25.3) Hemmo 37 y =49.347—0.048-July—1.339-Heinäk 6.791** (2,34) 0.285 (16.3) Rondo 36 y=38.524—0.036- July—o.9oB-Heinäk 6.283** (2,33) 0.276 (17.5) Proco 39 y = 16.427—0.034-July+0.528 Kesäk 8.922*** (2,36) 0.331 (24.4) Simo 15 y=26.815—0.025 July 7.730* (1,13) 0.373 23 all variables 2.254n.5. (6,16) 0.458 33 y=44.265—0.032-July—0.983-Heinäk + 0.317-Kesäk 3.027» (6,26) 0.411 —0.600 Elok +0.007 August—o.oo6 June Hertta Filby Independent variables: Kesäk, Heinäk, Elok =mean temperatures, °C, in June, July and August June, July, August =precipitations, mm, in June, July and August and temperature, accounted for 33.1 % of the total variation in protein content. Regression model computed through Simo revealed that July precipitation alone ac- counted for 37.3 % of the total variation in protein content, and no other variables were entered into the model. Cultivar Kiri showed quite a different pattern compared with Simo since the regression model included July pre- cipitation and June and July mean tempera- tures, which accounted for 64.3 °7o of thepro- tein variation. Of these variables, July pre- cipitation accounted for 25.3 %. However, it must be pointed out that computations on Kiri and Simo based on a rather limited number of trials. For most cultivars the regression model explained protein variation statistical- ly significantly, except for Hertta, an old and long-stemmed cultivar and Filby, a leafless type. Computations through Hertta indicated that neither a single factor nor all together explained significantly the variation in protein content. In the case ofFilby, single factors did not explain the variation, but when all vari- ables were entered into the model, the equa- tion explained for 41.1 °7o of the variation in protein content. At the second stage of computations tem- perature sum was added into the model. In general, temperature sum had a significant ef- fect on protein content (Table 4), and in most cases this variable removed the mean tem- peratures from the equation. According to the data based on all varieties, the regression mod- el including temperature sum, June and July precipitation accounted for 62.9 °7o of the variation in protein content. Of these variables temperature sum alone accounted for 43.3 % of the protein variation. In general, when the temperature sum was added into the regres- sion model, the number of trials diminished considerably, and hence the results of single varieties suffer from the lack of representa- tiveness. In most cases, in addition to tem- perature sum, June and July precipitation were important variables explaining for most of the variation in protein content thus con- firming the previous model. In general the R 2 values varied from 39 % to 69.8 %. Discussion Factors affecting protein content in peas The data reported in this study emphasize the important role of weather conditions for 5 Table 4. Regression analysis on climatic factors affecting protein content in peas from the data based on official cultivar trials at six locations in Southern Finland in 1978—85. Cultivars n Regression equation (probability of F in =0.050) F value df R 2 tot. data 103 y= 8.304+ 0.019-t5—0.034-June—o.o23-July (7 culti- 56.057*** (3,99) 0.629 (43.3) vars) Kiri 7 y =—13.312 +0.038 ts 10.899* (1,5) 0.686 10.398*** (3,16) 0.661 10.250** (1,16) 0.390 10.545*** (2,18) 0.540 Hemmo 20 y= 10.576+0.017-ts —0.035-June—0.024-July Rondo 18 y=24.054—0.049-June Proco 21 y=25.421—0.034-July—o.o37 June Simo 6 Hertta 12 y=29.073—0.068- June 23.084*** (1,10) 0.698 1.968n.5. (7,11) 0.556Filby 19 Independent variables: Kesäk, Heinäk, Elok =mean temperatures, °C, in June, July and August June, July, August =precipitations, mm, in June, July and August ts temperature sum protein variation in peas under northern con- ditions. It was found that July precipitation in particular decreased protein content, while high June temperature increased it. These re- sults are in accordance with a previous study by Karjalainen and Hovinen (1981), which, however, was made of one cultivar only. It seems apparent that temperatures during and after flowering as well as at the beginning of seed development are crucial for final protein accumulation into the pea seed under Finnish conditions. It is known (review by Briarty 1978) that part of the supply of nitrogen into the developing fruit is dependent on assimila- tion before flowering, but the majority of the nitrogen supply depends on assimilation after flowering. The positive effect of temperature on pro- tein content was further emphasized when temperature sum was incorporated into the model. For example, in the data where all varieties were included, temperature sum alone explained for 43.3 % of the total varia- tion in protein content. However, this study also clearly indicated that rainfall has negative effect on protein content. It seems evident that precipitation in July is the most limiting fac- tor for protein accumulation in peas under Finnish conditions. Rainfall is known to influence pea devel- opment in many ways (e.g. Multamäki 1961), and excessive rains in July are particu- larly critical for the vegetative development as humidity prolongs flowering timeand thereby impedes the onset of seed development. Thus it is obvious that rainfall in July is not merely harmful for reliable seed yields but also decreases the protein content in pea seed. The present regression computations over all varieties indicated that climatic factors ac- counted for 25.6 % in the first model and 62.9 % in the second model of the total varia- tion in protein content. Consequently, these computations clearly show that climatic fac- tors have decisive effects on protein content under northern conditions. These results sup- port other studies (Ali-Khan and Youngs 1973, Wolf 1975, Muller and Gottschalk 1978, Snoad 1980, Matthews and Arthur 1985), which also emphasize the role of en- vironmental factors affecting protein content more than heritable factors. However, protein content in peas is affected by many other fac- tors, too. Soil fertility, particularly nitrogen level, microclimatic conditions and latitude (Ali-Khan and Youngs 1973, Gottschalk 1976, McLean et al. 1974, Trevino and Mur- ray 1975) as well as sowing time (Ali-Khan 1977) have been reported to affect protein content. 6 Implications for protein improvement in peas by plant breeding Successful breeding for protein improve- ment requires sufficient genetic variation in protein content and rapid and reliable meth- ods of protein determination to be used for screening large numbers of progenies. Fur- ther, it is important that there are not many negative correlations between protein content and other agronomic characters, and they should be breakable by breeding. Heritability calculations provide estimates of the proportions of genetic and environ- mental variation in the total variation. Thus heritability is a predictor of the success a plant breeder can expect to attain from selection (Frey 1977). Table 5 summarizes the main re- sults of heritability studies carried out of the protein content of peas. In general, heritability values vary largely from 17 °7o to 70 %, depending on parent material, experimental design, and particularly calculation methods. However, the majority of available data shows moderately high heritability values, thus sug- gesting that selection for protein content in peas should be quite successful. However, doubts have been presented, and according to Snoad(1980), for instance, there is little evi- dence of successful protein improvement com- pared with that of seed yield. This conclusion is in accordance with our previous study (Karjalainen and Hovinen 1981) as well as with a recent review by Matthews and Arthur (1985). Variation in the protein content of peas is wide, from 14 % to 39 % (Blixt 1979). The heritability values presented in Table 4 show that part of the variation is due to genetic fac- tors, but a large part appears to be due to non- genetic factors. In view of selection efficiency it is important that the protein content of peas can vary widely in pods taken from different parts of the plant (Matthews and Arthur 1985). Similar findings have been made with beans (Woolfe and Hamblin 1974). The re- sults imply that the reliable determinationof protein content in segregation populations re- quires a large number of samplings in order to reveal heritable differences between pro- genies. An even greater part of protein varia- tion caused by non-genetic components ap- pears to be due to various environmental fac- tors. The data reported in this study indicated that even half of theprotein variation was ac- counted for by climatic factors. This result is in accordance with our previous study (Kar- jalainen and Hovinen 1981) and it clearly in- dicates that protein levels even in single cul- tivars vary widely under northern conditions between different regions and years. These re- sults fit well the recent study by Matthews and Arthur (1985) as they have also pointed out that genetic variation in protein content of peas is almost completely swamped by un- predictable environmental variables. Conse- quently it is apparent that breeding new cul- tivars for variable northern conditions with high and stable levels of protein is a difficult task. In a previous study Karjalainen and Hovinen (1981) demonstrated that protein yield per hectare was almost totally deter- mined for by variation in seed yield, and ac- cording to these lines of evidence they sug- Table 5. Summary of heritability percentages for protein content in peas as reported by various authors. Heritability values in some cases presented in broad sense (b.s) and narrow sense (n.s). Author Method of calculation Heritability % Pandey and Gritton 1975 Diallel, comp. var. 54—67 b.s. 45—67 n.s. Pandey and Gritton 1976 FI, F 2 pop. regression 17—56 Scwiecicki et al. 1980 FI, F 2 pop. regression 29—70 Scwiecicki et al. 1981 Diallel, comp. var. 92 b.s. 75 n.s. 7 gested that in breeding for better protein pro- ductivity it is much more effective to improve seed yield and yield stability than protein con- tent. Protein improvement by plant breeding has frequently faced difficulties because either protein content or protein quality is negatively associated with agronomic characters (Frey 1977, Rabson et al. 1978). Negative associa- tions between protein content and grain yield in peas do not appear to be as tight as in cere- als (Evans and Gridley 1979). However, negative (Jermyn and Slinkard 1977, Binge- fors et al. 1979, Karjalainen and Hovinen 1981) as well as positive correlations (Ali- Khan and Youngs 1973, Pandeyand Gritton 1976) between protein content and seed yield have been found. The present data as well as observations by Gottschalk et al. (1975) sug- gest that seed weight is weakly associated with protein content. In some cases late maturation time appears to be positively associated with protein content as suggested by this study and earlier data (Karjalainen and Hovinen 1981). References Ali-Khan, S.T. 1977. Seed yield, seed weight, percent protein and protein yield of field peas as affected by seeding dates. Can. J. Plant Sci. 57; 17—20. —, & Youngs, C.G. 1973. Variation of protein content in field peas. Can. J. Plant Sci. 53: 37—41. Binoefors, S., Quittenbaum, G. & Tapia-Rojas, J. 1979. Proteinhaltsvariationer i ärter. Sver. Utsädesför. Tidskr. 89: 189—208. Blixt, S. 1979. Natural and induced variability for seed protein in temperate legumes. In Seed protein impro- vement in cereals and grain legumes. (Proc. Meet. Neu- herberg, 1978), lAEA, Vienna (1979) 11, p. 3—20. Briarty, L.G. 1978. The mechanisms of protein body deposition in legumes and cereals. In Plant Proteins (ed. by G. Norton), p. 81—98. Butterworlhs, London. Davies, D.R. 1977. Restructuring the pea plant. Sci Progress 28: 235—241. Evans, A.M. & Gridley, H.E. 1979. Prospect for the improvement of protein and yield in grain legumes. Curr. Adv. Plant Sci. 32: 1 —l7. Frey, K.J, 1977. Protein of oats. Z. Pflanzenziicht. 78: 185—215. Gottschalk, W. 1976. Further investigations on the genetic control of seed protein production in Pisum mutants. In Evaluation of seed protein alterations by mutation breeding. (Proc. Meet. Hahnenklee, 1975), lAEA, Vienna (1976) p. 157—177. —, Muller, H.P. & Wolf, G. 1975. Relations between protein production, protein quality and environmental factors in Pisum mutants. In Breeding for seed protein improvement using nuclear techniques. (Proc. Meet. Ibadan, 1973), lAEA, Vienna (1975), p. 105—123. Holt, N.W. & Sosulski, F.W. 1979. Amino acid com- position and protein quality of field peas. Can. J. Plant Sci. 59; 653—660. Jermyn, W.A. & Slinkard, E.A. 1977. Variability of protein percent and its relationship to seed yield and seed shape in peas. Legume Res. 1: 33—37. Karjalainen, R. & Hovinen, S. 1981. Variation in pro- tein content of peas under Finnish conditions. J. Scient. Agric. Soc. Finl. 53: 228—238. Kujala, V. 1953. Felderbse, bei welcher die ganze Blattspreite in Ranken umgewandelt ist. Arch. Soc. Zool. Bot. Fenn. 8: 44—45. Matthews, P. & Arthur, E. 1985. Genetic and environ- mental components of variation in protein content in peas. In the Pea Crop, A Basis for the Improvement (ed. by P.D. Hebblethwaite, M.C. Heath & T.C.K. Dawkins), p. 369—381. Butterworlhs, London. McLean, L.A., Sosulski, F.W. & Youngs, C.G. 1974. Effects of nitrogen and moisture on yield and protein in field peas. Can. J. Plant Sci. 54: 301—305. Multamäki, K. 1961. Der Einfluss Klimatischer Factoren auf die Entwicklungvon Erbse. Maat. Tiet. Aikak. 33: 256—266. Muller, H.P. & Gottschalk, W. 1978. Gene-ecological investigations on the protein production of different Pisum genotypes. In Seed protein improvement by nuclear techniques (Proc. Meet. Bader, 1977), lAEA, Vienna (1978), p. 301—314. Pandey, S. & Gritton, E.T. 1975. Inheritance of protein and other agronomic traits in a diallel cross on pea. J. Am. Soc. Hort. Sci. 100: 87—90. —, 1976. Observed and predicted response to selection for protein and yield in peas. Crop Sci. 16: 298—292. Pesola, V. 1955. Protein content of field pea seeds as a varietal character. Acta Agr. Fenn. 83: 125—132. Swiecicki, W.K., Kaczmarek, Z. & Surma, M. 1980. In- heritance of protein in peas. 11. Heritability ofprotein content in Ranger x Sträl and Paloma x Sträl cros- ses. Pisum Newsletter 12; 68—69. —, 1981. Diallel analysis of protein content in selected lines of pea (Pisum sativum L.). Genetica Polonica 22; 78—84, Snoad, B. 1980. The origin, performance and breeding of leafless peas. Adas Quart. Rev. 37: 69—86. 8 Rabson, R., Bhatia, C. & Mitra, R.K. 1978. Crop pro- ductivity, grain protein and energy. In Seed protein im- provement by nuclear techniques. (Proc. Meet. Bader, 1977), lAEA, Vienna (1978) p. 3—20. Trevino, I.C. & Murray, G.A. 1975. Nitrogen effects on growth, seed yield, and protein of seven pea cultivars. Crop Sci. 15: 500—502. Wolf, G. 1975. Quantitative Untersuchungen iiber den Proteingehalt von Samen von Pisum sativum. Z. Pflanzenziicht. 75: 43—54. Woolfe, J.A. & Hamblin, J. 1974. Within and between genotypes variation in crude protein content of Phaseolus vulgaris L. Euphytica 23: 121—128. SELOSTUS Herneen proteiinipitoisuuden muuntelu kasvinjalostuksen näkökulmasta Reijo Karjalainen Kasvipatologian ja kasvinjalostustieteen laitokset Helsingin yliopisto, 00710 Helsinki Salme Kortet Kasvinjalostusosaslo, Maatalouden tutkimuskeskus, 31600 Jokioinen Herneen proteiinipitoisuuden vaihtelua tutkittiin viral- listen lajikekokeiden perusteella kuudella koepaikalla vuo- sina 1978—1985. Korrelaatio- ja askeltavalla regressio- analyysillä selvitettiin tärkeimpien ilmastotekijöiden vai- kutusta herneen proteiinipitoisuuteen. Korrelaatioanalyysit osoittivat, että valkuaispitoisuus kytkeytyi positiivisesti lämpötilasummaan ja kesäkuun keskilämpötilaan mutta negatiivisesti heinäkuun sademää- rään. Regressioanalyysit osoittivat, että ilmastotekijät se- littivät 25—70 % herneen proteiinipitoisuudenvaihtelusta. Lämpötilasumma ja heinäkuun sademäärä selittivät eni- ten herneen valkuaispitoisuuden vaihtelua. Tulokset viit- taavat siihen, että pohjoisissa kasvuoloissa herneen pe- rinnölliset valkuaispitoisuuden erot peittyvät usein ym- päristötekijöiden vaikutusten alle, jotenproteiinipitoisuu- den parantaminen kasvinjalostuksen keinoin onvaikeaa. 9