Social relationships and reproductive performance in group-living arctic blue foxes Hannu Korhonen and Sakari Alasuutari Korhonen, H. 1 & Alasuutari, S. 2 1994. Social relationships and reproductive per- formance in group-living arctic blue foxes. Agricultural Science in Finland 3; 49-58. ('Agricultural Research Centre of Finland, Fur Farming Research Station, FIN-69100 Kannus, Finland and 2University of Helsinki, Muddusjärvi Experimental Farm, FIN- -99910 Kaamanen, Finland.) The aim of the present work was to study social relationships and reproductivity in captive arctic blue fox groups of different genetic origin. The social status of the individuals among groups remained constant during autumn and early winter. Males typically dominated over females in the groups. Males also had higher body weights and more social contacts than females. The locomotor activity of the animals increased during the breeding season, especially in the case of males. Urinary marking had a significant importance during the breeding season, being most pronounced in dominant males. No synchronization was observed in the heat development of females despite some kinship. Behaviours such as escape attempts, bitings and increased aggressiveness occurred in March-April as a result of increasing social tension combined with repro- ductivebehaviour. Whelping success varied depending on group composition. Some of the non-breeding and breeding females were observed to act as communal nursing helpers. Key words: dominance, hierarchy, social behaviour Introduction The arctic fox (Alopex lagopus) has been pre- viously considered to have relatively solitary living habits in the wild (Fox 1969, Banfield 1977). Recently, however, social characteristics in the be- haviour of this species have been emphasized. Dur- ing the denning season, for instance, reproducing arctic foxes have been observed to form social fam- ily groups consisting of adult males and females with their progeny (Hersteinsson and MacDon- ald 1982, MacDonald 1984). Social interactions between members of the family in the dens seem to be limited, however (Garrott et al. 1984). Occa- sionally, also supplemental, non-breeding vixens have been observed at rearing dens(Eberhardt et al. 1983), where some of them act as communal nursing helpers (Hersteinsson and MacDonald 1982, Hersteinsson 1991, MacDonald 1984). In captivity, arctic blue foxes form a type of social organization characterized by observable dominance relationships when reared in groups (Korhonen and Alasuutari 1991a,b, 1992a,b). The rank order ofa group is oftenrelated to age and sex (Wakely and Mallory 1988, Angerbjörn et al. 1991). During the nursing season, there have been some observations of co-operative nursing of pups with extra adults serving as helpers (Kull- berg and Angerbjörn 1991). Thus, the recent data both from the wild and from captivity support 49 Agricultural Science in Finland 3 (1994) https://www.c-info.fi/en/info/?token=o8WWN2NPFXv_T8VB.3FAfY2mcw5bunAOP138j5Q.WqTGIbPy3I11TEzD-8fTKBQO5VMSVPkUcZC6GgJ76DTzE3CkLbg5XsvqXEYTPto5CUUnLX9YnDjCUD-DGi0jxyO3Uvu17ete33asu7O-mP8qfKuS6ofaYzANm9JkdUmW0lEj1NSXXITUwIOXz_SqAUKlvaHRufVLW2TQBs3S52Kf4qmB3wjVI2VpxzwUxW_CxtilC5MtUNKHPL_Q_XNUGz_BqiM3mS2QJJSOvPHOs9MTjSxpoQXMhxVuCv-hhAVQ6vmN7pbo3wxoo3boloH9ZM17EJekOzbL1nVY the hypothesis of the arctic fox being an even more social animal than has been previously believed. More studies are, however, needed in order to fur- ther confirm this conclusion. The objective of the present study was to exam- ine the social relationships and reproductive suc- cess among captive arctic blue foxes (Alopex lagopus) with different group compositions housed in ground enclosures. Material and methods Subjects and general management The experiments were carried out at the Muddus- järvi Experimental Farm in Finnish Lapland (69°N, 27°E). At weaning, three different groups of farm- bom arctic blue foxes (Alopex lagopus) were formed as follows: Group 1: 3 males (A,A,B) and 3 females (A,A,C) housed in an enclosure measuring 17 m long x 8 m wide. Group 2; one male (D,) and 3 females (E,F,E) housed in an enclosure measur- ing 11 m long x 8 m wide. Group 3: 3 males (G,H,I) and 3 females (J,J,J) housed in an enclosure meas- uring 11 m long x 8 m wide. The capital letters A-J represent the different litters from which the foxes originated. The animals in Groups 1, 2 and 3 were born on May 7-8, May 12-13 and May 10-16, re- spectively. Each enclosure contained 3-4 wooden nestboxes measuring 70 cm long x 40 cm wide x 40 cm high (Fig. 1). Experimental treatments and observations The animals were weighed 6 times during the course of the experiments. They were fed once a day; the daily feed portion was about 550 g per animal untilDecember 1,and about 350 g after that. During the breeding season the heat development in females was monitored by evaluation of vulval swelling and by measuring the electrical resistance in the vaginal tract (MÖLLER 1980). The animals were observed 4-5 times weekly for periods lasting about 30 minutes to estimate their social status and contacts (dominant/submissive be- haviour, based on avoiding behaviours when inter- acting with another fox) (Wakely and Mallory 1988, Korhonen and Alasuutari 1992a). Twice weekly the observations were made at feeding time (lasting about 15 minutes) when the occurrence of mutual contacts and aggressions were most pro- nounced. The individual eating order, as well as the number and outcome of challenges made by the foxes, was observed as described by Wakely and Mallory (1988). The social contacts of the ani- mals were also monitoredby a videocamera (Pana- sonic NV-G1) during a 4-hour periods twice a month. The daily activity and urinary marking be- haviour of the animals was recorded by visual scan- Fig. I. Schematic picture of the ex- perimental enclosures. Dark dots represent the sites of urine mark- ings. 50 Agricultural Science in Finland 3(1994) 51 Agricultural Science in Finland 3 (1994) Table I. Development of body weights (kg) in the experimental enclosures. Aug 5 Aug 31 Oct 20 Dec 4 Jan 28 Mar 15 ENCLOSURE I Male-1 4.3 5.5 5.9 9.0 9.0 6.9 Male-2 5.2 6.2 6.7 9.8 9.9 8.7 Male-3 5.3 6.9 7.5 11.1 10.8 8.3 Female-1 4.2 4.9 5.2 7.9 7.9 7.0 Female-2 4.3 5.0 5.8 8.2 7.7 6.8 Female-3 4.5 5.1 5.0 7.8 6.9 6.1 ENCLOSURE 2 Male-1 4.8 5.6 6.6 9.2 9.3 7.4 Female-1 4.8 5.0 5.4 7.5 7.7 6.5 Female-2 4.6 5.8 6.1 8.3 8.4 6.7 Female-3 5.2 5.9 6.1 8.5 7.9 6.4 ENCLOSURE 3 Male-1 4.0 5.3 5.8 8.3 8.8 7.1 Male-2 3.9 5.0 5.2 7.4 7.9 6.8 Male-3 4.5 5.8 6.4 9.3 9.5 7.7 Female-1 3.4 3.9 4.3 6.1 6.8 5.7 Female-2 3.6 4.6 4.6 6.5 6.8 5.9 Female-3 3.8 4.7 5.1 7.1 7.5 6.7 ning observations (at 1-minute intervals) during three 24-hour periods: September 1-3, January 19- 21 and March 16-18. Statistical analyses were carried out in SAS using analyses of variance (ANOVA) and the Chi square test. Results Weight gain At the beginning of the experiments, the body weight differences of the animals in each group were within a frame ofabout 1 kg (Table 1).During autumn, the weights of the males tended to increase faster compared to the females. Therefore, males also reached higher mid-winter weights than fe- males (p<0.05). Maximum weights were achieved in December-January when the weight differences between the heaviest and lightest individuals among the groups were as high as 3.3 kg. After January, weights started to decline markedly, even by as much as 2.5 kg within a 1.5-monthperiod. Behavioural activity A summary of behavioural activity observations is given in Table 2. Already in September, clear dif- ferences (p<0.05) were apparent in the locomotor activities of the individuals within the groups. In enclosures 1 and 2, no marked differences existed betwen the sexes. On the other hand, in enclosure 3 the males were more active than the females (p<0.05). Furthermore, no marked differences in average group activity were found between the en- closures; the mean activity values for enclosures 1, 2 and 3 were 35.5, 33.1 and 32.2%/day, respec- lively. The number ofurinations was low (from 1 to 4 times daily) in all animals during this period, In January, locomotor activity (24.6%/day on an average) was significantly (p<0.05) lower than in September (33.7%/day) when the foxes werejuve- niles. The activities for enclosures 1, 2 and 3 were 27.0, 20.7 and 24.3%/day, respectively. No statisti- cally significant differences in activity were found between males (24.9%/day) and females (24.2%/ day). Urinary markings were still low. Locomotor activity increased (p<0.05) in March (37.6%/day) compared to both January and Sep- Table 2. Locomotor activity (%/24 h), number of individual urinations (urine marks/24 h) and social status. The data for each month are based on 3-day observations: Sept 1-3, Jan 19-21,and Mar 16-18. Social status represents the hierarchical positions among the group in mid-March, I: social status estimated according to dominant/submissive behaviour observations made during daytime and in feeding situations. II: social status according to number of daily mutual contacts (based on Table 3). 1 = most dominant, 6 = least dominant. The social status of an individual shows its place in the rank order of the group. Locomotor activity Number of urinations Status Litter Sept Jan Mar Sept Jan Mar I II ENCLOSURE 1 Male-1 30,0 29.6 45.3 1 1 21 2 2 A Male-2 42.1 28.2 41.0 3 2 6 3 3 A Male-3 35.0 22.9 42.1 1 3 32 1 1 B Female-1 36.1 25.2 24.8 1 3 1 6 6 A Female-2 30.6 28.2 34.6 2 2 7 4 5 A Female-3 39.7 30.5 30.6 1 1 2 5 4 C ENCLOSURE 2 Male-1 30.1 20.3 32.3 1 4 142 1 1 D Female-1 39.8 24,4 49.2 4 2 12 2 2 E Female-2 35.3 14.9 16.2 3 1 1 3 3 F Female-3 27.0 23.2 23.8 1 9 29 4 4 E ENCLOSURE 3 Male-1 33.0 20.1 53.7 1 3 15 2 3 G Male-2 37.2 19.6 36.6 2 2 10 3 2 H Male-3 39.2 33.7 40.7 2 1 40 1 1 I Female-1 19.7 24.7 34.6 1 1 1 6 6 J Female-2 33.5 24.8 48.4 2 2 1 4 4 J Female-3 30.5 22.6 47.9 1 2 1 5 5 J tember. Males were now more active (41.7 %/day) than females (34.4%/day). The activities for enclo- sures 1,2 and 3 were 36.4, 30.4 and 43.7%/day, respectively. A dramatic increase in urinary activity was observed; especially the dominant males in each enclosure were intensive urine markers (Table 2). For the females of enclosures 1 and 3 the in- crease was almost zero, but for those in enclosure 2 the increase was pronounced. It was not possible to estimate the intensivity of locomotor activity with our methods. The sites ofurinary marking became rather fixed as the breeding season approached, as shown by Fig. 1. Most often the urine was directed close to the wall of the neighbouring enclosure. The foxes of enclosure 2 had the highest total marking inten- sity due to the two neighbouring walls (Table 2, Fig. 1). Social relationships and rank order Social relationships remained constant in each group throughout the autumn and early winter. However, some changes occurredat the onset of the breeding season. In enclosure 1, the social structure was the same both in January and in March (Table 3). In enclosure 2, the number of social contacts markedly decreased in females 2 and 3 during March. The most prominent changes occurred in enclosure 3; the social status of males 1 and 2 changed, and the lowest female in January (female F-2) became the most dominant female in March (Tables 2 and 3). The total number of daily social contacts within the group decreased in enclosures 1 and 2 from 250 to 150and from 130 to 63, respectively (January vs. March). In enclosure 3, on the other hand, the num- 52 Agricultural Science in Finland 3 (1994) Table 3. Numbers of social contacts (per 24 h) between group members. The first column for each animal represents the data from Jan 19-21 and the second from Mar 16-18. Each social contact represents a situa- tion when an encounter of two individuals is supported by clear visual status signals and/or agonistic interaction supported by dominant/submissive behaviour. Male-1 Male-2 Male-3 Female-1 Female-2 Female-3 Encl.l Male-1 - - 4 11 1 12 11 3 5 6 21 5 Male-2 4 11 - - 14 7 6 1 4 0 13 0 Male-3 1 12 14 7 - - 2 2 4 2 28 25 Female-1 113 61 22 - - 10 41 Female-2 56 40 42 10 - - 70 Female-3 21 5 13 0 28 25 4 1 7 0 - 0 42 37 41 19 49 48 24 7 21 8 73 31 Enel.2 Male-! - - 22 26 12 3 5 0 Female-1 22 26 - - 4 1 19 0 Female-2 12 3 4 1 - - 3 3 Female-3 5 0 19 0 3 0 - - 39 29 45 27 19 4 27 3 Enel. 3 Male-1 - - 3 4 10 11 10 1 1 2 6 6 Male-2 3 4 - - 7 14 3 4 4 18 4 13 Male-3 10 11 7 14 - - 18 2 3 27 6 6 Female-1 10 1 3 4 18 2 - - 5 3 11 7 Female-2 1 2 4 18 3 27 5 3 - - 1 4 Female-3 66 4 13 66 117 14 30 24 21 53 44 60 39 17 14 54 28 36 ber of social contacts increased from 176 to 244 (January vs. March). The estimated social status of the individuals among the experimental groups was rather similar when compared by both dominant/ submissive behaviour observations and by the daily number of mutual social contacts in mid-March (Table 2). The social status of each individual shows its place in therank order of the group. observed between males M-2 and M-3. In each enclosure, bitings led to limping of backfoot of lower-ranking animals, which lasted several weeks. Escapes from the enclosures occurred during and after the breeding season. Male M-2 escaped from enclosure 1 and female F-l both from enclosures 2 and 3. They were all returned to the original enclo- sures. Aggressive encounters and escapings Aggressive behaviour was not observed during autumn and early winter. However, from January 20 onwards, several aggressive contacts occurred. Males M- 1 and M-2 were occasionally aggressive in enclosure 1 and females F-3, F-2 and F-l in enclosure 2. In enclosure 3, most aggressions were Development ofoestrus and matings All of the females showed visible heat development (Table 4). There was no synchronization in the heat cycles of females in spite of some kinship. Female F-l in enclosure 2 was the first to come into heat and also the first to mate (March 29). The next one was F-2 of enclosure 1 mated by male M-l, fol- 53 Agricultural Science in Finland 3 (1994) Table 4. Vulval swelling (X = low, XX = medium and XXX = intense; represent the intensity) and electrical resistance in the vaginal tract (ohm) in experimental females. * mating observed, ** estimated mating day according to electrical resistance values (Möller 1980) and/or visually observed pregnancy. Date Enclosure 1 Enclosure 2 Enclosure 3 F-l F-2 F-3 F-l F-2 F-3 F-l F-2 F-3 Mar 23 X XX 415 X X ... 24 X 115 400 XX 26 X X XX 550 XX X ... 28 X X XX 715 XX X ... 29 X X XX * XXX XX - - X Apr 1 X X XX 220 125 X 2 X X XX 325 130 - - XX 4 X XX XXX 445 190 - X 560 5 X 230 55 480 185 X XX 410 7 XX 180 90 320** 140 X 105 130 9 XX 255 170 275 135 XX 195 235** 10 XX 350 170 115 70 XX 175 125 11 380 305 285 125 130 XX 350 95 12 235 140 90 120 105 XX 270 105 13 280 * 90 120 105 * 14 455 90 130** 105 15 300** 120 100 115 17 115 95 130 215 18 135** 350 19 160 21 * 22 110 115 lowed by F-2 ofenclosure 3 by M-l (April 13). The females of enclosure 3 were the last to come into heat, and the last mated female (F-l; April 21, by M-3) was also from enclosure 3. In addition, some mating efforts were observed; in enclosure 3 by M-l (April 13), and in enclosure 1 by M-2 and M-3 (April 13). Whelping and communal helpers On May 19,femaleF-l in enclosure 2 whelped into the nestbox close to enclosure 1. Two days later the kits were counted; 4 were alive and 5 dead. It was noted that the female carried the kits into the nest- box close to enclosure 3. On May 22, only one kit was alive, but even that was lost the next day. No communal helping was observed in the case of this female. On May 29, female F-3 in enclosure 3 whelped 9 kits into the nestbox furthest from enclosure 2. Two days later, she carried the kits into the ground den which she had dug previously. In the same enclo- sure, F-2 whelped 5 kits on June4. It was observed that male M- 1 (father of thekits) often stayed close to F-2 and was inside the nest with the kits, too. He also brought feed to F-2. On June 12, F-l of the same enclosure whelped into the nestbox but lost the kits soon. Shortly thereafter, both F-3 and F- 1 started to nurse the kits ofF-3 together without any aggressions or conflicts. On June 3, females F-2 and F-3 in enclosure 1 whelped inside separate nestboxes. F-3 lost her kits on the same day, but all 10 kits of F-2 survived. After losing her ownkits, F-3 began tocommunally nurse these kits withF-2. An inspection of the teats of both females revealed that both were actually able to nurse. It was additionally noted that the coat 54 Agricultural Science in Finland 3 (1994) of F-3 was soiled by the urine of F-2. Both females were also observed to have a very close mutual relationship and friendly mutual contacts. When the kits were 2-3 weeks old, both females spent 22.2% of the daytime together inside the nestbox ofF-2. For 38.9% and 29.2% of the day F-2 and F-3, respectively, were alone with the kits in the nest- box. The kits were left without the presence of an adult in the nestbox only 9.7% of day. Female F-l, which had no kits, was primarily an outsider as regards kit care. She tried to enter the nestbox of the kits a few times, but F-2 warded her off. When the kits were 12 days old, F-2 transferred some of them into another nestbox. Now both F-2 and F-3 nursed their own kit group. A few days later the kits were transferred back into the same nestbox, where F-2 and F-3 resumed their communal nursing. How- ever, it was soon observed that F-2 carried one kit into a third nestbox, where F- 1 started to care for it. Every now and then, F-2 or F-3 also visited that nestbox to nurse thekit. F- 1 was not allowed to take care of any other kit except this one. Male M-l (father) also sometimes spent shorter periods of time inside the nestbox with the kits. In addition, both M- 1 and M-3 were observed to bring feed in front of the nestbox for the females. Discussion Observations both from the wild (JOHSON 1973, Kleiman 1967, MacDonald 1979a) and from shed conditions (Pedersen and Jeppesen 1992) show that foxes often prefer to defecate and/or urinate near territorialboundaries or close to neigh- bouring cages. Foxes employ such marking as a sign of their territory borders. This finding is also supported by the observations of the present study; as Fig. I clearly illustrates urinary marking was concentrated close to the walls of neighbouring enclosures. In addition, marking intensity was found to increase dramatically during the breeding season when tensionbetween the individuals is also otherwise amplified (Korhonen and Alasuutari 1992a). Marking activity was most pronounced in males, whose social rank is typically higher than that of females (Korhonen and Alasuutari 1992a). In each enclosure the most dominant male (status 1) was the most intensive marker. Thus, there is substantial evidence that marking activity occurs in relation to the social status of males. In females living in groups, on the other hand, mark- ing activity seems to be less important with respect to their social status, as reported previously by Korhonen and Alasuutari (1992a). The signifi- cant increase in marking activity in March, ob- served in the present study, was due to increased hierarchical tension and reproductive behaviour preceding the breeding season (Korhonen and Alasuutari 1992a). As Tables 2-3 show, the daily number of social contacts is related to an animal’s social status as judged by dominant/submissive behaviour. More- over, the highest-ranking male of each group could be easily identified by virtue of its highest number of mutual contacts, as described previously (Kor- honen and Alasuutari 1992a). Thus, it is obvi- ous that the daily number of social contacts is a fairly good indicator of an animal’s social status, at least near to the breeding season when mutual ten- sion between individuals is most pronounced. The behavioural activity of the animals increased towards the onset of the breeding season. Espe- cially the locomotor activity of the males was marked at that time. The higher activity level of males is in relation to their larger number of social contacts and distinct status behaviour during the breeding season (Korhonen and Alasuutari 1992a). On the other hand, the most dominant male was not necessarily the most active one according to the present study. It was observed that the 2nd- ranking male often tried to actively initiate contacts especially with females, but the dominant male or the female in question prevented it. Therefore, the 2nd-ranking male was often restless (running around) which was manifested in the form of an increased activity level. Angerbjörn et al. (1991) noticed that it was precisely the 2nd-ranking males that were most active and aggressive also in food scavenging experiments. The present mating data are partly unreliable because it was not possible to follow the mating behaviour of the foxes continuously. However, the time of day when the monitoring was performed 55 Agricultural Science in Finland 3 (1994) Table 5. Summary of females’ reproductive results in ground enclosure experiments according to the pre- sent study (1,2,3) and previous studies (4,5: Korhonen and Alasuutari 1991a,b,6: Korhonen and Ala- suutari 1992a). Exp. female Heat cycle Mating Reproductive success (1) F-l F-2 F-3 F-l F-2 F-3 F-l F-2 F-3 F-l F-2 F-l F-2 F-3 F-l F-2 F-3 F-4 normal normal normal 9 not pregnant yes yes whelped, kits survived whelped, kits lost* (2) normal but early normal whelped, kits lost** not pregnant yes 9 9normal not pregnant (3) normal but late normal whelped, kits lost*** whelped, kits survived whelped, kits survived yes yes yesnormal (4) started normally started normally escaped at proestrus escaped at proestrus no no (5) normal but late normal not pregnant**no pregnant but aborted**** whelped, kits survived yes yesnormal (6) started normally normal escaped at proestrus pregnant but aborted not pregnant no yes no yes only proestrus normal whelped, kits lost • acting as helper for F-2 ** escaped before whelping, was caught and returned *** acting as helper for F-3 **** escaped after whelping of F-3 (8.00-11.00 a.m. and 1.00-4.00 p.m.) is the time when matings most often occur according to farm- ing practice. Nevertheless, it is quite obvious that some mating data were missed, which means that the estimation of the relationship between the fox- es’ social status and mating success is difficult. In our previous study (Korhonen and Alasuutari 1992a) the most dominant male was also found to be the predominant breeder, although breeding ef- forts were observed in lower-ranking males as well. In that experiment only the most dominant female whelped but lost the kits quite soon after whelping. Table 5 summarizes the reproductive success in our present and previous enclosure experiments. It is obvious that thereproduction of arctic blue foxes is not very successful under the studied (Exps. 1-6) group-living conditions because the kits of only 4 (22%) vixens (Exps. 1,3,5)ofa total of 18 survived. The main reason for the poor reproductive perform- ance may have been due to the structure of the groups. Often groups are formed in the wild by parents and theirkits or other close relatives (Mac- Donald 1979b), but the individuals in our groups (Exps. 1-6) in many cases were not related. Another explanation for thekit losses and poor reproductiv- ity in the groups could be the social tension and pronounced dominance relations between the ani- mals. MacDonald (1979b) performed a comprehen- sive study on the social regulation of reproductive performance among red fox groups in captivity. However, it was not possible accurately to measure the sexual state and heat development of the group- living vixens in that study. It was therefore also difficult to propose any final explanation for the reproductive suppression of subordinate vixens. In the present study, on the other hand, the data on electrical resistance in the vaginal tract provide a 56 Agricultural Science in Finland 3(1994) better perspective for estimating such regulatory mechanisms (c.f. MÖLLER 1980). It now seems obvious that there are several mechanisms which prevent all of the vixens of the group from breed- ing. Such prevention can already begin during the breeding season when all females do not necessar- ily come into heat, but may reach the level of proestrus only (Exp. 6). The timing of the onset of the heat cycle (early, late) can be another influenc- ing factor (Exps. 2,3,5). In addition, in spite of a normal heat cycle some females do not necessarily become pregnant at all (Exps. 1,2,5,6) or become pregnant but abort (Exps. 5,6). Although the group members cohabited well during the autumn and early winter, pronounced aggressive encounters suddenly occurred as the breeding season approached. This also led to some bitings and may also be one reason for the escape attempts observed. Aggressive behaviour, bitings and escapes were similarly observed in our pre- vious study (Korhonen and Alasuutari 1992a) near the breeding season. Thus, it is obvious that in addition to physiological mechanisms, behavioural factors also have a role in the prevention of breed- ing of surplus animals in the group. The presence of non-breeding surplus adults as helpers has been best documentedby MacDonald (1979b), who observed in captive red foxes that the surplus vixens could feed, guard, groom and play with thekits. There are some other observations of such behaviour in wild red and arctic foxes (Her- steinsson and MacDonald 1982, Kullberg and Angerbjorn 1991). The present study clearly showed that surplus vixens may also nurse the kits together with the original vixen, and that an addi- tional third vixen may participate in the care of the kits. Thus, both non-breeding and breeding vixens seem to be capable ofacting as helpers as observed in Exps. 1 and 3. The helping role of males is that of bringing feed. It is tempting to conclude that a system of co-operative assistance is a part of the survival strategies of fox societies. 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Flierarchical develop- ment, agonistic behaviours, and growth rates in captive arctic fox. Canadian Journal of Zoology 66: 1672-1678. Manuscript received August 1993 SELOSTUS Sosiaaliset suhteet ja lisääntyminen erilaisissa siniketturyhmissä Hannu Korhonen 1 ja Sakari Alasuutari2 'Maatalouden tutkimuskeskus ja 2 Helsingin yliopisto Tutkimuksessa selvitettiin ryhmän rakenteen vaikutusta sini- kettujen sosiaalisiin suhteisiin vieroituksesta läpi talven peni- kointiin saakka. Tulokset osoittivat, että urokset ovat yleensä dominoivia naaraisiin nähden. Uroksilla on myös naaraita enemmän sosiaalisia kontakteja. Urosten painonkehitys on naaraita hieman suurempi. Kettujen, etenkin urosten, liikunta- aktiviteetti nousee selvästi lisääntymisaikana. Myös virtsaa- miskäyttäytyminen on korostetun voimakasta lisääntymis- kaudella. Dominoivat urokset ovat kaikkein intensiivisempiä virtsaajia. Virtsaa käytetään reviirin merkitsemiseen sekä oman sosiaalisen aseman ja seksuaalisen tilan ilmaisemiseen. Ryhmäkasvatettujen naaraiden kiimankehitys ei ole synkro- noitua läheisestä keskinäisestä sukulaisuussuhteesta huoli- matta. Sellaiset käyttäytymispiirteet kuten karkaamiset, agg- ressiot japuremat korostuvat lisääntymiskaudella johtuen so- siaalisten jännitteiden kasvusta. Osa ryhmän naaraista ei joko saa pentuja tai hävittää ne. Silti tällaiset naaraat voivat toimia penikoivien emojen apuna pentujen hoidossa. 58 Agricultural Science in Finland 3 (1994)