Stress and coping in farm animals

被引:0
|
作者
von Borell, E [1 ]
机构
[1] Univ Halle Wittenberg, Inst Anim Breeding & Husb, Vet Clin, D-06108 Halle, Germany
关键词
stress; coping; behaviour; physiology; farm animal;
D O I
暂无
中图分类号
S8 [畜牧、 动物医学、狩猎、蚕、蜂];
学科分类号
0905 ;
摘要
Stress is a broad term which implies a threat to which the body needs to adjust. Stress may be classified as physical, psychological, or interoceptive in nature, but usually contains components of ail three classifications. The adjustment to stress induces a broad range of neuroendocrine, physiological and behavioural changes to allow for a rapid recovery or adaptation to the change. The hypothalamic-adrenal medullary system involves the hypothalamus, pituitary gland, the sympathetic neural pathways to the adrenal medulla, and the release of epinephrine by the adrenal gland. This short acting stress-response was originally proposed by Waiter Cannon and is referred to as the Fight-Flight Syndrome (FFS). The hypothalamic-pituitary-adrenocortical (HPA) stress-response system with the release of corticosteroids represents a longer-term, sustained response to stressors and was conceptualised by Hans Selye (General Adaptation Syndrome, GAS). These two classical stress response systems have been linked to different coping pattern in that FFS is primarily activated in situations of threat of control, whereas the pituitary-adrenocortical system is activated in situations of loss of control. Several studies have confirmed that unpredictable or uncontrollable stimuli will activate the hippocampal pathway and the HPA axis leading to depression of behaviour. The ability to adjust to some stressors (controllability), however, seems to be under the control of the amygdala through activation of the sympathetic nervous system and prepares the animal for fight and flight responses. In the past, housing systems and handling procedures for farm animals were mainly assessed by descriptive behavioural studies using indicators presumed to be related to stress (i.e,, stereotypic behaviours). Physiological indicators included endocrine changes on the pituitary-adrenal-axis by measuring adrenocorticotropin (ACTH), corticosteroids and catecholamines. The neuroendocrine and immune system has been studied in relation to stress effects at a cellular or neural level during the last decade. Ali these studies were often conducted in an isolated manner without considering that the neuroendocrine and immune system are communicating with each other and are ultimately influenced by the animals individual perception of a stressor. Psychological stressors perceived as threats may be equally important as those of a physical nature in challenging coping mechanisms. Situations of uncertainty, social pressure and fear are potent stressors with relevance for the welfare of animals, leading to severe damage to specific target organs and tissues or even to death in some species. Transportation is considered as a major stressor for farm animals and might have deleterious effects on the health, welfare, performance and ultimately on product quality. Studies on the assessment of stress during animal housing, management procedures and transportation require non-invasive methods as classical approaches of data collection with direct human interference (i.e., for blood collection and heart rate measurement) might directly after the stress response. Telemetric devices for measuring heart and respiration rate, body temperature and blood pressure are useful tools to obtain undisturbed responses. Also, noninvasive measurements of stress indicating metabolites in saliva, faeces or urine has been recently developed and validated. Parallel to behavioural observations, these physiological measurements provide valuable information on coping strategies and the consequences for the welfare of farm animals.
引用
收藏
页码:144 / 152
页数:9
相关论文
共 50 条
  • [21] CLINICAL SIGNS OF STRESS IN FARM ANIMALS - CHANGES IN BEHAVIOR
    EWBANK, R
    BRITISH VETERINARY JOURNAL, 1974, 130 (01): : 90 - 91
  • [22] STRESS IN FARM-ANIMALS, A LIMITING FACTOR FOR PRODUCTIVITY
    DECHAMPS, P
    NICKS, B
    ANNALES DE MEDECINE VETERINAIRE, 1987, 131 (08) : 671 - 675
  • [23] Oxidants and antioxidants in disease: Oxidative stress in farm animals
    Lykkesfeldt, Jens
    Svendsen, Ove
    VETERINARY JOURNAL, 2007, 173 (03): : 502 - 511
  • [24] Farm Family Coping with Stress: The Impact of the 1998 Ice Storm
    Sutherland, Lee-Ann
    Glendinning, Tony
    JOURNAL OF COMPARATIVE FAMILY STUDIES, 2008, 39 (04) : 527 - +
  • [25] STRESS, COPING, AND SATISFACTION - GENERATIONAL-DIFFERENCES IN FARM FAMILIES
    WEIGEL, RR
    WEIGEL, DJ
    BLUNDALL, J
    FAMILY RELATIONS, 1987, 36 (01) : 45 - 48
  • [26] ANIMAL BEHAVIOR AND WELL-BEING SYMPOSIUM: Interaction between coping style/personality, stress, and welfare: Relevance for domestic farm animals
    Koolhaas, J. M.
    Van Reenen, C. G.
    JOURNAL OF ANIMAL SCIENCE, 2016, 94 (06) : 2284 - 2296
  • [27] Impact of heat stress on the reproduction of farm animals and strategies to ameliorate it
    Para, Irshad Ahmad
    Dar, Parvez Ahmad
    Malla, Bilal Ahmad
    Punetha, Meeti
    Rautela, Ankita
    Maqbool, Ishfaq
    Mohd, Aquil
    Shah, Mudasir Ahmad
    War, Zahoor Ahmad
    Ishaaq, Raja
    Malla, Waseem Akram
    Sheikh, Aasif Ahmad
    Rayees, Mohmmad
    BIOLOGICAL RHYTHM RESEARCH, 2020, 51 (04) : 616 - 632
  • [28] TRANSPORTATION STRESS IN FARM ANIMALS AND ITS CORRECTION BY PROBIOTIC TREATMENT
    Kukharenko, Natalia S.
    Fyodorova, Anastasia O.
    Shchelkanov, Mikhail Yu
    SOUTH OF RUSSIA-ECOLOGY DEVELOPMENT, 2019, 14 (02): : 87 - 98
  • [29] Can Stress in Farm Animals Increase Food Safety Risk?
    Rostagno, Marcos H.
    FOODBORNE PATHOGENS AND DISEASE, 2009, 6 (07) : 767 - 776
  • [30] Farm animals
    不详
    TIJDSCHRIFT VOOR DIERGENEESKUNDE, 2018, 143 (05) : 49 - 49