Maataloustieteellinen A ikakauskirja Vol. 60: 181—189, 1988 Species aspects of breeding herbage varieties for northern marginal regions ODD ARNE ROGNLI Department of Genetics and Plant Breeding, Agricultural University of Norway, N-1432 Äs-NLH, Norway Abstract. Northern marginal regions are very heterogeneous as regards environmental con- ditions for plant growth. Low temperature is the overriding feature of the environment in these regions. This paper discusses species aspects in relation to breeding for adaptation to northern marginal regions for the most important herbage species. The impact of natural selection and climatic adaptation on the herbage plant populations at the margin forms the basis for dis- cussing breeding objectives for the various species in these regions. The differences between species native to these regions, e.g. Poa pratensis, Festuca rubra, Deschampsia spp., and in- troduced species like Phleum pratense and Festuca pratensis, are emphasized. These differ- ences include important characteristics like yield potential, seasonal distribution, quality and winterhardiness, the most important characteristic of adaptation to northern marginal regions. The influence of the course of the reproductive development on both total yield, harvest index and seasonal distribution is stressed, and particularly discussed for Phleum. Index words: herbage grass breeding, native species, introduced species, ecotypes, low-input agriculture Introduction Geographically, »northern marginal re- gions» should be understood as areas close to and north of the Arctic Circle, and these in- clude the northernmost parts of Norway, Sweden and Finland, Iceland, the Faroe Is- lands, Greenland, Alaska and the northern parts of the USSR (Lomakka 1958). There is a tremendous variation in climatic conditions within these regions. In ecological terms, a marginal or extreme environment often has one single environmental factor that limits plant growth (Bradshaw 1971). Low temper- ature is the single most important feature of the environment at higher latitudes. Most of the valuable herbage species are at the mar- gin of their distribution in these regions. The importance of herbage production in northern marginal regions is recognized. Roughly speaking, 60—100 % of the agricul- tural land is made up of leys and permanent pastures. High frequency of peat and bog soils and, generally, low soil pH, in combination with wet and cold climate during short grow- ing seasons, impose very heavy strains on her- 181 JOURNAL OF AGRICULTURAL SCIENCE IN FINLAND https://www.c-info.fi/en/info/?token=Hi6oUcTtKt3Dd1Ky.C3rYjy3WTMFPxrxfvkJYeA.iYd6iecSB_SWazzjrnF-79fnBPAE5krrmTLpQnHYIfNmJHtb1OYEtcCRAs5g2JQ30cA52watz1mFppyh7ZvcKFcNRS0Dhu3Sote_iG1_zeXc9dVZ_J_G5M9_GZAhYAqLrzlBeicsevANmsHc_pbj_qLQaPxzlQdW3D31TJc 182 bage plants at higher latitudes, especially under the modern cultivation techniques (Schjelderup 1983 a). The present topic is very wide and complex. Therefore, this presentation is not an attempt to give a com- plete coverage of the field. Plant adaptation and species strategies in northern marginal regions Natural selection The physical environment generates high and directional selection pressures in margi- nal regions (Bradshaw 1971). Adaptation is for survival ability as opposed to competitive ability in more optimal environments. During transplantation of temperate populations of cultivated species to arctic and subarctic regions, the cumulative mortality has often been nearly 100 %, and therefore most of the northern populations and cultivars of valua- ble herbage species have a fairly narrow genet- ic background. However, studies of plant populations from northern marginal regions have shown that they are very heterogeneous, with much more genetic variability than ex- pected (Tigerstedt 1985). Introduction of southern Medicago spp. and Trifolium spp. populations to Alaska, is a recent example of conscious use of natural selection in the adap- tation of new species (Klebesadel 1985). Characteristics of herbage plant life forms at higher latitudes The typical plant life form of arctic and al- pine environments is an herbaceous perenni- al with a relatively large root and/or rhizome system (Billings 1974). The large root system may: 1) increase the efficiency of nutrient up- take from cold soils, 2) serve as storage or- gans for carbohydrates which secure both de- velopment of winterhardiness, survival under a long-lasting snow cover and early leaf de- velopment in spring, and 3) increase the com- petitive ability through vegetative propaga- tion. These characteristics are advantageous in short and cold growing seasons. Polyploidy and vegetative reproduction by vivipary and apomixis, are very common among the arctic grass species (Flovik 1938). Polyploid species are very heterozygous, a feature that proba- bly is responsible for physiological stability on the enzyme level during strong temperature fluctuations (Tigerstedt 1985). Initiation and differentiation of flowerbuds in the autumn render the arctic plant species able to set ma- ture seed in the very short summer. In com- bination with apomixis and rhizomatous roots, it gives optimal Darwinian fitness in high-latitude environments. Ecotypic differentiation Clinal variation (ecotypes) is the most im- portant adaptive strategy in species with a wide geographic distribution. Studies of natural and semi-natural populations of her- bage grasses, show strong ecotypic differen- tiation in response to daylength and temper- ature for a number of important herbage plant characteristics, e.g. photosynthesis and growth rate (Heide 1985; Solhaug 1985), seasonal growth rhythm and dry matter dis- tribution (Foss 1968; Eagles and Ostgard 1971), flowering response (Habjorg 1979 a; Heide 1980, 1982) and growth cessation and development of cold hardiness. The critical photoperiods for vegetative growth and flower induction, events that strongly influence the pattern of dry matter distribution, are very long in these ecotypes. When grown at lower latitudes they start growing later in the spring, and growth ceases earlier in the autumn. Eco- type studies have taught us a lot about the mechanisms that contribute to optimal fitness under different environmental conditions. Owing to the unique environmentalconditions in northern marginal regions, well-adapted ecotypes or adapted cultivars must be the main genetic resources of herbage breeding programmes for these regions (Simonsen 1985). Species aspects in relation to breeding objectives The main breeding objectives for northern marginal regions have been discussed by Simonsen (1985). In the following, the her- bage species aspects will be discussed in rela- tion to the main breeding objectives. Lolium spp. dominate herbage production in Europe today. The great variations in cli- mate, soil and management conditions in northern marginal regions make it necessary to use several species (Simonsen 1985). Phle- um pratense is the dominating species in youn- ger sown meadows in Scandinavia, while Agrostis tenuisand Poa pratensis dominate in older meadows (Nesheim 1986). In pastures and permanent grasslands, Poa pratensis, Agrostis tenuis, Festuca rubra and Deschamp- sia caespitosa are the most important species. In addition, D. caespitosa and D. beringensis are interesting species for forage production both in Iceland and in Alaska (Thomasson 1984). In Northern Sweden and Finland, breeding efforts are concentrated on timothy, meadow fescue and red clover (Hagsand 1985; Ravantti and Kajaste 1986). Herbage yield and seasonal distribution Northern ecotypes have a specific growth rhythm that is important for high production and survival at higher latitudes. The relative amount of dry matter produced in the first cut increases with increasing latitude of origin (Foss 1968, Klebesadel and Helm 1986). Schjelderup (1983 b) found that Phleum pratense and Poa pratensis had the highest spring growth rate in the north, while Festu- ca pratensis and Dactylis glomerata exhibit- ed a higher growth rate in the south in this period. In the second cut, the growth rate was highest in the south for all species, except for Poa pratensis. This underlines the high- latitude adaptation of Poa, and the well- known fall dormancy in the north. Following shorter days in late summer there is a switch from leaf growth to carbohydrate storage in the crowns, with related development of cold hardiness and frost resistance. In this context we may ask: Can the seasonal distribution of dry matter be altered by breeding without any adverse effects on winterhardiness? Based on the experience from numerous studies of win- terhardiness in northern marginal regions, I would say no. This is especially so ifhigh per- sistency is required. In breeding cultivars for short-term leys, it may be possible to stretch the period of growth in the fall, without decreasing winterhardiness too much. The potential for biomass production is remarkably high in northern regions. Simon- sen (1985) presented results showing that timothy and meadow fescue, cut twice, yield- ed nearly the same at northern and southern latitudes in Fennoscandia, while cocksfoot yielded less in the north than in the south. However, because more than two cuttings can be taken, the total annual dry matter yield will be higher in the south. Deinum et al. (1981) showed that the growth rate of timothy in- creased with increasing latitude. Physiologi- cal adaptation to long photoperiods and low temperature, giving a larger leaf area and a prolonged period of vegetative growth due to delayed reproductive development at lower temperatures, are apparently the main factors behind the high spring growth rate in the north (Heide et al. 1985; Hay and Pedersen 1986). Solhaug (1985) also found a larger leaf area index in the North-Norwegian timothy culti- var ‘Engmo’, as compared with cultivars from the south of Norway. Breeding for higher yield (i.e. increased har- vest index), can be doneeither by selectionand crossing within adapted local populations and cultivars, or by crossing cultivars and ecotypes from other regions with adapted material. Ex- tensive variability trials have shown that suffi- cient genetic variationexists for herbage yield characteristics within populations from north- ern areas (Simonsen 1985). Results presented in Table 1 clearly show that the yield can be increased also by crossing populations from southern and northern parts of Scandinavia. 183 Table 1. Relative dry matter yield and percentage of spring coverage (third year) in Alta (70° N) of mixed 1 half-sib families and cultivars of timo- thy (Aastveit unpubl.) Entry Rel. yield % spring coverage PC progeny: 21/79 97 48 23/79 112 70 10/80 108 56 11/80 102 56 12/80 78 69 18/80 106 65 19/80 100 51 20/80 97 67 Cultivar: Engmo (northern) 100 56 Grindstad (southern) 97 28 1 Equal weights of seed of each half-sib family within each polycross were mixed. PC progeny 23/79, which is a mixture of half- sib families from crosses between the north- ern cultivar ‘Engmo’ and the southern culti- var ‘Grindstad’, gave a higher yield and was more persistent than ‘Engmo’ in Alta (70°N). Individual families from the polycross gave even higher yields. The harvest index is also dependent on spe- cies. Firstly, the harvest index is certainly low- er for species native to northern marginal regions than for introduced species. The rea- son is larger, rhizomatous root systems. Sec- ondly, stemmy grasses like Phleum and Bro- mus probably have higher harvest indices than leafy grasses (Poa and Festuca). Both these aspects can be illustrated by a comparison of Poa pratensis as a native, leafy grass, and Phleum pratense as an introduced, stemmy grass species. Poa starts growing extremely early in spring, and can be cut more frequently than Phleum (Schjelderup and Myhr 1980). Early spring growth is extremely important in northern marginal regions. The basis for the earlier spring growth in Poa as compared with Phleum is larger carbohydrate resources, more rapid differentiationand elongation of fertile tillers, and better adaptation to low tempera- ture (Andersen unpubl., ref. by Simonsen 1985). Despite the early spring growth, Poa has to be cut twice in order to compete with Phleum in dry matter production (Schjel- derup and Myhr 1980). The high yields of dry matter, produced in one cut by timothy, is evidently linked with its generative develop- ment (Rognli 1987 a). Timothy has a single spring requirement for flower induction and initiation. Nearly all tillers of sufficient size become generative and elongate during mid- summer, greatly enhancing sink capacity as compared with leafy grasses like Poa and Festuca. This can also be looked upon as a question of vegetative vigour and/or reproductive suc- cess. The theory of fitness states that popula- tions of perennial species exhibit loss of vigour by not being maximally fit in the environments they exploit, but fit for even harsher environ- ments (crucial incidents) (Levins 1968). In herbage grasses, vegetative production is not dependent on reproductive success per se, apart from the establishment phase of leys. In the latter case, ecotypes with higher vegeta- tive vigour, from regions with lesser environ- mental stress than in marginal environments, should be used. This has been utilized to a great extent by provenance transfers in forest tree cultivation, and is also reflected in varie- ty trials in northern areas. Southern grass (herbage) cultivars are in general more productive than northern ones in the first year, and often also in subsequent years if winter stress is not too severe. In my mind, the differences in vegetative vigour between Poa and Phleum at higher latitudes can be in- terpreted on this basis. The high biomass production of timothy is partly caused by the lack of reproductive adaptation to northern marginal climates (Rognli 1987 a). During migration from south to north, natural selec- tion has mainly operated on the vegetative growth cycle, increasing the survival ability through altered assimilate distribution. On the other hand, the price for reproductive success and survival ability in Poa at higher latitudes is loss of vigour. Northern ecotypes are adapted in the sense that they survive the most 184 Table 2. Frost and ice encasement tolerance in cultivars and ecotypes of different grass species (Gudleifsson 1986). Species Cultivar/ Country Frost- Ice ecotype tolerance tolerance LT !0 Ll!0 Poa pratensis Holt Norway —14.7 37 Fylking Sweden —14.0 24 Delta Canada —13.7 15 (04) Iceland —13.1 33 (06) Iceland —12.3 29 Festuca pratensis Token Norway —11.7 14 (Petursey) Iceland —11.6 9 Ensign Canada —lO.B 11 Salten Norway —10.6 17 Trader Canada —lO.O 16 Phleum pratense (0503) Iceland —15.7 36 Korpa Iceland —13.8 33 (0501) Iceland —13.6 44 Descharapsia spp. Nordcoast USA —10.3 50 (Korpa) Iceland —10.5 39 Dactylis glomerata (Sämsstadir) Iceland 9.5 12 Hattfjelldal Norway 9.3 8 Juno Canada 8.9 14 Leikund Norway 8.8 2 Kay Canada 8.5 10 Phalaris Token Norway . 6.7 26 arundinacea Grove Canada 4.7 26 severe winters. They are not necessarily well adapted for herbage production. Resistance to adverse environmental conditions The most important factor in northern mar- ginal regions is winterhardiness, a complex characteristic which mainly includes resistance to frost and ice/water cover, and resistance to parasitic low-temperature fungi. Larsen (1986) pointed out also that desiccation dur- ing winter probably causes more damage to grasslands than has been recognized. Our un- derstanding of the complex genetic and phys- iological mechanisms, especially the hardening process in relation to climate, is still incom- plete, and makes breeding for winterhardiness very difficult. Table 2 presents results from a frost tolerance and ice encasement test of different varieties of seven species (Gudleif- son 1986). Phleum pratense and Poa praten- sis are the most frost tolerant, Festucapraten- sis and Deschampsia spp. are less so, and Dac- tylis glomerata and Phalaris arundinacea are most susceptible to frost injury. Both P. pratense, P. pratensis, Deschampsia spp. and P. arundinacea are generally tolerant against ice encasement, while F. pratensis and D. glomerata are sensitive to this kind of stress. Red clover is very sensitive to ice encasement and water logging, and survives best in con- tinental regions with stable snow cover. The latitudinal dine in winterhardiness, increasing with latitude, is well documented, and large- ly governed by differences in seasonal growth rhythm. As regards cultivar differences, the degree of tolerance towards a certain winter stress factor is largely dependent on the type of winter climate to which they have been adapted. In general, cultivars from regions with continental winter climate are frost resis- tant, and have good resistance against low- temperature fungi, while cultivars from mar- itime regions are less frost resistant, but toler- ate ice encasement following freeze-thaw os- 185 cillations. Klebesadel and Helm (1986) found that, although northern timothy culti- vars were very winter-hardy in Alaska, native species with rhizomatous root systems were better adapted to very instable, maritime winter climates. This adaptation is certainly a result of better regrowth ability. Genetic variation for winter survival seems to be low within adapted plant material (Schjelderup 1982). This is not unexpected in view of the strong natural selection they have undergone. Preliminary results from the Nordgras work indicate that differences in winterhardiness are more dependent on local differences in climate than genetic differences between cultivars (Anon. 1986). Breeding for winterhardiness will be very important in cases where non-adapted material is introduced. A major restriction on northern expansion of perennial ryegrass (Lolium perenne) is the susceptibility to low-temperature fungi (Jöns- son and Nilsson 1986). Ryegrass is apparent- ly not adapted to live under long-lasting snow cover, and a strategy for adaptation of ryegrass to short-term leys in northern regions should be developed. Jönsson and Nilsson (1986) improved the resistance to Fusarium nivale by phenotypic selection in diploid ryegrass, while theresponse was rather uncer- tain in tetraploids. Table 3 presents some results taken from the official Norwegian her- bage variety trials (five locations in South- Norway, second harvest year). Among the ryegrass material there is a strong positive correlation between the relative amount of dry matter produced in the first cut and winter survival (r =0.83). A further shift in the seasonal distribution may be necessary in ord- er to increase northern adaptation of peren- nial ryegrass. Ryegrass seems to have a remarkable ability to recover in spring after injury by low-temperature fungi. Nutritive value and persistence Forage grasses are the dominating part of the roughage in northern marginal regions, and high nutritive value is therefore particu- larly important (Simonsen 1985). The nutri- tive value or quality is influenced by many fac- tors. These include species and species com- position, climate, timing and frequency of cut- ting, fertilization and conservation. Timothy is regarded as the most palatable and nutri- tive grass species in these regions. A major problem is to obtain both high productivity, high quality and persistency at the same time. Persistency is partly depen- dent on the species, but also largely influenced by the management system. Schjelderup (1983 b) found that timothy and meadow fes- cue were much more sensitive to the effects of soil compaction by heavy machinery than Kentucky bluegrass. If the intention is to produce a long-lasting meadow, then in- digenous rhizomatous species like Poa and Phalaris should be used. Then one probably has to accept lower biomass production per year, and certainly lower quality. In short- term leys, i.e. 3—4-year crop rotation, in- troduced species like Phleum, F. pratensis and D. glomerata will be the most valuable. Ex- periences of different cutting systems have shown that timothy can be cut only once in marginal regions in order to persist. High dry matter production may then be obtained by cutting fairly late. A breeding strategy for a »one-cut» cultivar could therefore be to max- imize dry matter production by selecting for a high fertile tiller number, which increases sink capacity, and to secure good quality by selecting genotypes with a slow decline in digestibility after heading (Rognli 1987 a). McElroy and Christie (1986) estimated an increase of 2—3 percentage points in in vitro digestibility (IVD) at anthesis following this strategy. Clover is very little used in the northern regions, but will certainly be more important in the near future because herbage quality is given high priority. Haosand and Landström (1984) found that even if the content of red clover in meadows in northern Sweden was low after 5—6 years, it still contributed a lot and gave higher yields of better quality than pure timothy meadows. The present northern 186 Table 3. Seasonal distribution of dry matter yield and winter survival in varieties and Norwegian breeding popula- tions of Lolium perenne. Entry Relative amount of DM Relative winter cut 1 cut 2 cut 3 DM yield survival * Taptoe NL 50 37 13 100 53 Bonita (4n) ML 51 37 12 97 52 Tove (4n) DK 50 37 13 99 49 Svea (2n) S 55 34 11 91 89 Raigtl (4n) N 55 34 10 90 61 Raigd2(2n) N 49 39 12 87 58 Raigd3(2n) N 56 34 10 95 81 Raigt4 (4n) N 57 33 10 100 80 Pure (4n) N 54 36 10 95 74 Forus timothy 62 30 8 97 94 cultivars of red clover are not winter-hardy enough for use in the most marginal regions. White clover is native, and could replace red clover in these areas. Breeding work has been undertaken in northern Norway to develop cultivars both for grazing and conservation. Seed production Two aspects of seed production are partic- ularly important in relation to breeding at higher latitudes. The first is the seed yield level of the cultivars. Results from seed production studies have shown that existing ecotypes and cultivars in general are very good seed producers. They often produce more seed than cultivars from southern Scandina- via, as shown for timothy by Skaare and Hillestad (1974). This indicates a higher reproductive potential in the northern timo- thy cultivars than in the southern ones, which may be a result of past adaptation to hay production (Rognli 1987 a). In highly rhizomatous species like Poa and Phalaris, the seed yields decrease very rapidly with increas- ing tiller density. The second aspect is concerned with the localization of seed production. The climatic conditions at higher latitudes are unfavoura- ble for commercial seed production. The main problem is low seed quality, and large year to year variations in yield. However, the poten- tial seed yield is often as high in the north as in the south (HAbjorg 1979 b; Roonli 1987 a). HAbjorg (1979 b) found that the Norwegian Poa pratensis ecotypes produced the highest yields of seed at continental, high- latitude locations. Finding locations in the north, where elite seed production of north- ern cultivars could be located, has been a major objective for the NORDGRAS project (Anon. 1986). Elite seed production of culti- vars which are populations (seed elite), must be kept in the region of origin in order to avoid genetic shifts. The multiplication scheme that has been chosen for the North- Norwegian timothy cultivars, with elite seed produced in the north, basic seed in the middle, and certified seed in the south of Nor- way, has been successful. Elite seed of syn- thetic cultivars (based on clones), may in prin- ciple be produced anywhere. However, great genotype x environment-interactions in seed production may affect the genetic stability when seed is produced in different environ- ments (Rognli 1987 b). Selection of clones with high phenotypic stability of seed produc- tion when breeding synthetic varieties, could be a means of reducing the risk of genetic shifts. GxE interactions, caused by specific adaptation to high-latitude daylengths and temperatures, have resulted in low and un- predictable seed yields of the northern culti- vars of Poa pratensis and Phalaris arun- dinacea. Simonsen (1985) advocated to eliminate the most extreme long-day geno- 187 types from the breeding material in order to reduce the latitudinal effects on seed produc- tion. This procedure may be seen as a kind of phenotypic stabilizing selection. As thoroughly discussed by Rognli (1987 a), the management of elite seed produc- tion of northern cultivars may be of vital im- portance for the vegetative productivity of the cultivars. Concluding remarks High-input agriculture requires much ener- gy and causes environmental problems. There- fore, there is an increasing interest in low- input agriculture in the developed world to- day. Plant production will in the future prob- ably be undertaken under more natural con- ditions. Breeding for the margin, or environ- mental stress, will be increasingly important. High yield levels in northern marginal regions are probably more dependent on fertilizers than in more optimal environments. A discus- sion of the impact of low-input agriculture on the structure of northern herbage production should be started among the breeders. Do we have to rely on indigenous species like Agros- tis tenuis, Festuca rubra, Deschampsia caespitosa, which are adapted to acid and in- fertile soils, and Poa pratensis on more productive land, or can we still utilize produc- tive, high-input species in the future? References Anon. 1986. Forasdling av graesmarksplanter til nordens nordligste omräder. Report given from NORD- GRAS-project, SNP, 33 pp. Billings, W.D. 1974. Plant adaptations to cold summer climates. In: »Arctic and AlpineEnvironments», (Eds. J.D. Ives, J. Berry), London, Methuen, 403—443. Bradshaw, A.D. 1971. Plant evolution in extreme en- vironments. In: »Ecological Genetics and Evolu- tion», (Ed. Creed), Blackwell Sei. Pubi., Oxford, 20—50. Deinum, 8., de Beyer, J., Nordfeldt, P.H., Kornher, A., OSTGARD, O. & van Bogaert, G. 1981. Quality of herbage at different latitudes. Neth. J. Agric. Sci. 29: 141—150. Eagles, C.F. & Ostgard, O. 1971. 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In: »Plant Production in the North» (Eds. Ä. Kaurin, O. Junttila, J. Nilsen), Norwegian Univer- sity Press, 205—218. SELOSTUS Nurmiheinien lajikohtaisia jalostustavoitteita viljelyn pohjoisia raja-alueita varten Odd Arne Rognli Department of Genetics and Plant Breeding, Agricultural University of Norway, N-1432 Äs-NLH, Norway Pohjoiset raja-alueet muodostavat hyvin epäyhtenäi- sen viljely-ympäristön. Alhainen lämpötila on kuitenkin hallitseva ympäristötekijä. Luonnonvalinnan vaikutus ja pohjoisten nurmikasvipopulaatioiden sopeutuminen il- mastoon muodostavat eri lajien jalostustavoitteidentar- kastelun perustan. Erot alueen alkuperäisten lajien, ku- ten nurmikka (Poa pralensis), punanata (Fesluca rubra) ja lauha ( Deschampsia spp.) sekä toisaalta tänne tuotu- jen lajien, timotei (Phleum pratense) ja nurminata (Fes- lucapranlensis), ovat merkittäviä. Erot kohdistuvat jouk- koon tärkeitä ominaisuuksia, kuten sadontuottokykyyn, kasvurytmiin, laatuun ja talvenkestävyyteen. Viimeksi mainittu on pohjoisiin oloihin sopeutumisen tärkein omi- naisuus. Erityisesti timoteitä kohteena käyttäen tarkas- tellaan tuottavuuden eri osatekijäinkeskinäisiä suhteita. 189