Maataloustieteellinen Aikakauskirja Vol. 56: 83—87, 1984 Rapeseed fat in dairy cow feeding LIISA SYRJÄLÄ-QVIST and PENTTI ASPILA Department of Animal Husbandry, University of Helsinki, SF-00710 Helsinki 71 Abstract. Dairy cows on silage and hay-based diets were given a barley-oats concentrate mixture containing 13 % rapeseed feed in four different forms: diet 1) rapeseed meal, 2) rape- seed meal + rapeseed oil, 3) rapeseed meal + crushed rapeseed and 4) protected fatty rape- seed meal. The fat content of the rapeseed feed was: diets 2 and 3, 7,1 % of dry matter; diet 4, 6.3 Wo; diet 1, 2.4 °7o. From the rapeseed the cows received only about 2 g digestible crude fat/kg 4 % FCM, the total fat supply on diets 2, 3 and 4 being 15 g digestible crude fat/kg 4 °/o FCM. At so low a level, the rapeseed fat did not have any clear effect on the milk fat or milk protein contents, or on the iodine number or fatty acid composition of the milk fat. The milk yield increased, however, when the diet contained rapseed feed. Introduction Many studies have shown that when fats and oils are fed to ruminants they undergo modification in the rumen. The esterified fatty acids can be liberated by hydrolysis, and long-chain unsaturated fatty acids can undergo complete or partial hydrogenation, to yield stearic acid (Cl6) and a wide variety of trans- and positional isomers of unsatu- rated fatty acids (Palmquist and Jenkins 1980). The effect on the milk composition of addition of fat or oil to the diet has varied, however, depending on such factors as the degree of unsaturation of the fatty acids in the dietary fat. The object of this experiment was to study the changes occurring in the milk composi- tion when cows were fed rapeseed meal, alone or together with rapeseed oil or crushed seeds. Protected fatty rapeseed meal was also used as a feed component. This experiment was intended as a pilot study for further ex- periments on rapeseed used as protein and energy additives for high-production dairy cows. Experimental procedures The experiment was performed with 8 Ayrs- hire cows and started when the average time elapsed from calving was 37 days. After the standardization period of 2 weeks, the ani- mals were divided into four groups and changed to the experimental feeds during the Index words; fatty rapeseed meal, milk composition 83 JOURNAL OF AGRICULTURAL SCIENCE IN FINLAND 2 following weeks. The test period lasted 4 weeks and the post-test period 4 weeks. During the standardization and post-test periods, all the animals received the same feed consisting, on the average, of 3 kg hay, 6 kg silage dry matter and 7 kg barley-oats (1:1) concentrate, plus minerals and vita- mins. In the standardizationperiod the silage was grass silage, but in the test and post-test periods it was both grass and sugar-beet top silage. During the test period the diets were also the same, except for the composition of the concentrate mixture. It contained 13 % rapeseed feed in different forms, as follows: Group 1: rapeseed meal Group 2: rapeseed meal + rapeseed oil Group 3: rapeseed meal + crushed rapeseed Group 4: protected fatty rapeseed meal The proportions of rapeseed meal and rapeseed oil or crushed rapeseed in groups 2 and 3 were adjusted in such a way that the fat content was the same, or 7.1 % of the dry matter (Tables I—2).1 —2). The fat content of the rapeseed feed in group 4 was 6.3 % and in group 1 2.4 %. The concentrate was fed individually, but the hay and silage were given group-wise. The amount of the diet was adjusted accord- Table 2. The percentages of different feeds in the con- centrate mixture during the test period. Groups 12 3 4 Barley 41.1 41.2 41.1 41.1 Oats 41.1 41.2 41.1 41.1 Molasses 1.4 1.3 1.4 1.4 Rapeseed meal 13.0 12.2 11.3 Rapeseed oil 0.7 Crushed rapeseed 1.7 Protected fatty rapeseed meal 13.0 Minerals 3.4 3.4 3.4 3.4 kg/f.u. 1.30 1.28 1.28 1.29 DCP g/f.u. 122 116 117 115 Group 1 = rapeseed meal » 2 = rapeseed meal + rapeseed oil » 3 = rapeseed meal + crushed rapeseed » 4 = protected fatty rapeseed meal ing to the nutrient requirements (Salo et ai. 1982). The feeding procedures, feed sam- pling, analyses and calculations were as described by Syrjälä-Qvist et ai. (1982). The milk was weighed on two days in every week. Milk samples were taken on two successive days for analysis at the end of the standardization, test and post-test peri- ods. The milk samples were analysed for milk fat and protein by the infrared tech- Table 1. The mean chemical composition and feeding value of the feeds. 1 Hay Grass Sugar- Barley Oats Rape- Crushed Protected silage beet top seed rapeseed fatty silage meal rapeseed meal Dry matter, % 84.5 26.7 16.4 74.0 77.4 88.8 92.5 89.5 % of DM Ash 7.1 6.8 20.8 2.8 3.4 7.8 4.5 7.8 Crude protein 10.7 15.0 15.0 10.7 12.6 38.2 22.1 36.3 Crude fat 2.5 5.4 5.0 2.2 5.6 2.4 43.6 6.3 Crude fibre 30.5 29.2 17.7 5.7 10.7 13.8 7.3 14.0 N-free extract 49.2 43.6 41.5 78.6 67.7 37.8 22.5 35.6 DM kg/f.u. 1.58 1.34 1.36 0.88 1.03 1.14 0.55 1.12 DCP g/f.u. 118 145 164 70 101 361 108 305 DM = Dry matter DCP = Digestible crude protein f.u. = feed unit = 0.7 starch equivalent The feeding values were calculated using the digestibility coefficients and values presented by Salo et ai. (1982). 84 nique, for the iodine number by the Hanus method (see Kaufmann 1958) and for fatty acids as described by Antila and Kankare (1983). Results and discussion The 4 % fat corrected milk (FCM) yield improved in every group during the test peri- od and decreased again during the post-test period (Table 3). The average increase from the standardization period to the test period in groups 1,2, 3 and 4 was 1.1, 5.6, 1.0 and 1.4 kg, respectively. The milk fat and milk protein content also tended to increase dur- ing the test period, but not significantly (P > 0.05). In all the groups the rapeseed feeds had some effect on the milk fat com- position. The iodine number of the milk fat was lower in. the test period than in the standardization and post-test periods, the deviation in groups 1,2, 3 and 4 averaging 3.5, 3.5, 2.5 and 2.0 units, respectively (Table 3). There were no significant differ- ences between the groups (P > 0.05). The clearest change in the fatty acid com- position on the milk fat was in the propor- tion of oleic acid (C 18:1); it decreased in all the groups in the test period and remained at a similary low level in the post-test period. The proportion of linolic acid (C 18:2) also decreased in the test period in all the groups, but that of linoleic acid (C 18:3) was fairly constant throughout the experiment. The proportion of the total ClB -unsaturated fatty acids in groups 1,2,3 and 4 in the test period was on average 4.9, 4.6, 5.9 and 2.5 % units lower than in the standardization and post- test periods. The differences between the groups were not significant (P > 0.05), the difference between groups 3 and 4 was in- dicative (P < 0.10). The rapeseed oil of varieties low in erucic acid contains, on average, 56 % oleic acid (Gig.,) 23 % linolic acid (C l8:2) and 12 ®/o linoleic acid (C 18:3 (ANON.). In spite of the high proportion of these unsaturated fatty acids, the diets containing the rapeseed fat did not significantly improve the softness of the milk fat in this experiment. The main Table 3. The mean milk yield and composition of milk in different groups. Periods Standardization Test Post-test Groups 1234 1234 1234 FCM, kg/d 25.9 26.6 25.3 27.9 27.0 32.2 26.3 29.3 24.8 26.2 25.6 24.8 Milk fat % 4.3 4.2 4.7 4.4 4.4 4.8 4.6 4.7 4.8 4.4 4.8 4.5 Milk protein % 2.8 2.7 2.7 2.9 3.0 3.1 3.0 3.0 3.0 3.0 3.0 3.2 lodine number 32.5 33.1 38.0 31.1 28.6 30.6 34.4 29.1 31.8 35.2 35.8 31.2 Fatty acids % in milk fat C„ 1.9 2.2 1.8 2.0 3.2 3.0 3.2 3.0 2.8 2.7 3.0 2.8 C, 2 2.3 2.5 2.0 2.4 3.8 3.6 3.9 3.6 3.6 3.6 4.0 3.8 C,„ 9.9 10.2 8.7 10.5 12.4 12.2 12.4 12.2 12.4 12.2 12.4 12.6 C,„ 33.2 31.1 28.8 34.7 35.6 34.2 32.4 35.6 32.4 36.1 33.9 37.8 ClB 11.4 11.4 11.6 11.0 10.2 11.4 11.1 11.0 8.9 9.6 10.0 10.2 C, g:l 28.0 28.7 33.6 26.1 18.6 20.3 22.3 19.7 18.8 20.9 22.5 18.6 C l8:2 2.2 2.0 2.2 2.0 1.8 1.8 1.8 1.9 1.6 1.8 1.8 1.6 C, B:, 0.8 0.7 0.8 0.7 0.8 0.7 0.8 0.8 0.6 0.8 0.7 0.7 total C|B- - 31.0 31.4 36.6 28.8 21.2 22.8 24.9 22.4 21.1 23.5 25.0 20.9 Group 1 = rapeseed meal » 2 = rapeseed meal + rapeseed oil » 3 = rapeseed meal + crushed rapeseed » 4 = protected fatty rapeseed meal 85 reason is probably that the animals received only small amounts of rapeseed fat. The total daily supply of crude fat on diets 2, 3 and 4 averaged 572 g/cow, rapeseed fat con- tributing about 11 %, or 62 g/cow. Accord- ing to the digestibility coefficients presented in feed tables (Salo et ai. 1982), the animal received 15 g digestible crude fat per kg FCM, the contribution of rapeseed being only 2 g/kg FCM. Frank (1978) found that the iodine num- ber of the milk fat was clearly higher when the animals received a diet containing 8.4 % crushed rapeseed in the concentrate mixture than when they were on a diet of rapeseed meal. The amount of digestible crude fat that the animals received in the rapeseed was, however, 10 g/kg FCM, the total amount being 25—28 g. The effect of fat and oil additives on milk production and the milk fat composition has varied from study to study (Armstrong and Prescott 1971). The reasons have probably been differences in the fat content of the basic feeds and in the effect of the fat on the digestibility of the other components (Brooks et al. 1954, Palmquist and Jenkins 1980). Reference Anon. Kevätöljykasvien tuotanto. Tieto tuottamaan 8: 1—72. Maatalouskeskusten Liiton julk. no. 630. Antila, V. & Kankare, V. 1983. The fatty acid compo- sition of milk lipids, Milchwissenschaft 38: 478—481. Armstrong, D.G. & Prescott, J.H.D. 1971. Amount, physical form and composition of feed and milk secretion in the dairy cow. Lactation p. 349—377 ed. I.R. Falconer, Butterworths, London. Brooks, C.C., Garner, G.8., Gehrke, C.W., Muhrer, M.E. & Phander, W.H. 1954. The effect of added fat on the digestion of cellulose and protein by ovine rumen microorganisms. J. Anim. Sci. 13: 758—764. Frank, B. 1978. Rapeseed as a source of fat for dairy cows. Proc. sth Int. Rapeseed Conf. 2; 213—216, Malmö, Sweden. Kaufmann, H.P. 1958. Analyse der Fette und Fett- produkte. 1. 1104 p. Berlin. Palmquist, D.L. & Jenkins, T.C. 1980. Fat in lactation rations; review. J. Dairy Sci 63: I—l 4.1 —14. Salo, M.-L., Tuori, M. & Kiiskinen, T. 1982. Rehutau- lukot ja ruokintanormit. 70 p. Helsinki. Syrjälä-Qvist, L., Tuori, M. & Setälä, J. 1982. Rape- seed meal as a protein source for high-production dairy cows on grass silage and hay-based feeding, J. Scient. Agric. Soc. Finl. 50: 155 —165. Ms received March 20, 1984 86 SELOSTUS Rypsirasvan vaikutus maidon koostumukseen Liisa Syrjälä-Qvist and Pentti Aspila Helsingin yliopiston kolieläinlieleen laitos, 00710 Helsinki 71 Pienimuotoisessa ja vain suuntaa antavaksi tarkoite- tussa kokeessa selvitettiin rypsin rasvan vaikutusta mai- dontuotannossa. Säilörehu- ja heinäruokinnalla olevien lehmien ohra—kaura-väkirehuseokseen lisättiin eri diee- teissä rypsirehua seuraavasti: 1) tavallista rypsirouhetta, 2) tavallista rypsirouhetta + rypsiöljyä, 3) tavallista rypsirouhetta + rikottuja siemeniä ja 4) suojattua ras- vaista rypsirouhetta. Rypsirehun rasvapitoisuus oli diee- teissä 2 ja 3 7.1 Vo, dieetissä 4 6.3 % sekä tavallisessa rouheessa 2.4 % kuiva-aineesta. Kutakin rypsirehua käytettiin väkirehuseoksessa 13 %. Kaikilla rypsirehuilla oli selvä positiivinen vaikutus maidontuotantoon. Maidon rasva- ja valkuaispitoisuu- teen, sekä maitorasvan jodilukuun ja rasvahappokoos- tumukseen sen sijaan ei rypsirehuilla ollut selvää vaiku- tusta. Syynä lienee osaltaan se, että rypsirehujen rasva- pitoisuus jäi suhteellisen alhaiseksi. Lehmät saivat diee- teillä 2, 3 ja 4 rypsirasvaa sulavana raakarasvana vain 2 g/kg 4 %:ista maitoa, kokonaisrasvamäärän ollessa vas- taavasti 15 g sulavaa raakarasvaa/kg maitoa. 87