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1.
Clove oil has been demonstrated to be an effective, inexpensive anaesthetic and euthanizing agent for a number of fish species, including rainbow trout, used in aquaculture and fisheries research. However, the potential for clove oil to cause perturbations in important plasma hormone concentrations has not been investigated. The effect of anaesthesia and euthanasia in trout with eugenol (the active ingredient in clove oil) on plasma cortisol, glucose, growth hormone (GH) and two thyroid hormones [tri‐iodothyronine (T3) and thyroxine (T4)] was compared with tricaine methanesulfonate (MS‐222) anaesthesia, and stunning by cranial concussion in two experiments. Effects on blood chemistry were different when comparing the particular anaesthetic method being used. Stunning fish significantly increased plasma cortisol and glucose levels (both P<0.05), while euthanizing fish using either clove oil or MS‐222 had no effect on these hormone levels. In contrast, the levels of GH, T3 and T4 hormones were unaffected regardless of whether fish were euthanized by stunning, MS‐222 or clove oil. Variation in effects between hormones were observed using clove oil eugenol. In fish sampled 10 min after anaesthetizing with 150 mg L?1 of eugenol, cortisol levels were significantly decreased (P<0.03), while there were no differences in either glucose or GH levels. Tri‐iodothyronine and T4 also showed significantly elevated levels (P<0.05) after 10‐min exposure to eugenol. These results highlight the importance of investigating the potential effects of any new anaesthetic or euthanizing compounds on blood plasma parameters, prior to using them in a research setting, or when comparing results to other studies which have utilized alternative anaesthetic compounds.  相似文献   

2.
We examined the effects tricaine methanesulfonate (MS-222), clove oil and CO2 on feed intake and cortisol response in steelhead trout, Oncorhynchus mykiss. Even though a body of literature exists about the effects of different anaesthetics on fish, no comparative information seems to be available about their effects on feed intake after anaesthesia, which would be important to know especially in aquaculture research. We anaesthetised juvenile steelhead trout with these three anaesthetics, and then sampled them 4, 24 and 48 h later. Fish in all groups ate relatively well already 4 h after anaesthesia. However, feed intake in fish treated with clove oil or MS-222 was lower than in the controls. There were no differences in feed intake among anaesthetised groups. Plasma cortisol concentrations were elevated 48 h after anaesthetisation, but the treatment means were equal throughout the experiment. Our results support previous findings that clove oil is a reasonable alternative to MS-222.  相似文献   

3.
Two anaesthetics, clove oil and methane sulphonate (MS-222), were examined for their effects on the olfactory nerve response of masu salmon ( Oncorhynchus masou Brevoort) and rainbow trout ( O. mykiss Walbaum). Exposing both species to clove oil for 3 min at concentrations of 50 and 100 mg L−1, or for 10 min at 50 mg L−1, did not significantly reduce their olfactory response. Directly applying clove oil anaesthesia to the olfactory epithelium significantly reduced olfactory response though after 20 min, olfactory response recovered to 70% and 52% of pre-treatment levels in masu salmon and rainbow trout respectively. Compared with the post-anaesthetic recovery of responses after clove oil (50 mg L−1), buffered MS-222 (100 mg L−1) with NaHCO3 (100 mg L−1), and unbuffered MS-222 (100 mg L−1) treatment for 3 min, the response after MS-222 treatment declined gradually and significantly, but not after clove oil and MS-222+NaHCO3 treatments. Clove oil appears to be an effective and relatively safe anaesthetic for salmonids with little long-term impact on their olfactory response, which plays a crucial role in their life history.  相似文献   

4.
The aim of the present study was to investigate the anaesthetic efficacy and biochemical effects of 1,8‐cineole (cineole) in rainbow trout (Oncorhynchus mykiss). The fish were exposed to 200, 300, 400, 500, 600 and 800 μl/L cineole and time of induction of anaesthesia and recovery from anaesthesia were recorded. Thereafter, the fish haematological and biochemical responses to anaesthesia with different concentrations of cineole were studies. Moreover, the haematological and biochemical response of fish anaesthetized for 300 s with either cineole (283 μl/L) or eugenol (25 μl/L) were compared. Cineole at the concentrations of 200–800 μl/L induced stages 2, 3 and 4 anaesthesia within 109‐29.3, 226‐59 and 418‐117 s respectively. Increase in anaesthesia induction time led to higher stress responses and enzymes’ activity characterized by elevation in red blood cell (RBC), white blood cell (WBC), blood haematocrit and haemoglobin, and plasma cortisol, glucose and lactate levels, and aspartate aminotransferase (AST), alkaline phosphatase (ALP), lactate dehydrogenase and creatine phosphokinase (CPK) activities. However, cineole concentrations had no significant effects on plasma alanine aminotransferase (ALT) activity and ions levels. Comparison of cineole with eugenol showed that cineole showed less change in blood RBC and plasma AST, ALP, CPK, cortisol and glucose levels compared to eugenol. In conclusion, cineole is efficient to anaesthetize trout at concentrations of 200–800 μl/L. Increase in cineole concentration shortens anaesthesia induction time, stress response and probably tissue damage. The concentrations of 600–800 μl/L cineol is recommended for rapid sampling as it causes the least stress and enzymatic responses. The present results suggest that cineole causes slightly lower side effects in trout compared to eugenol.  相似文献   

5.
The efficacy of the anaesthetic agents benzocaine, metacaine (MS-222), metomidate and 2-phenoxyethanol was studied in Atlantic cod (Gadus morhua) with average body weights of 10 ± 4 g, 99 ± 33 g and 1022 ± 274 g at water temperatures of 8 °C and 16 °C. The agents were tested individually and as combination anaesthesia comprising pre-anaesthetic sedation with a low dosage of metomidate or 2-phenoxyethanol followed by anaesthesia with benzocaine or MS-222. All agents were administered through bath immersion with an exposure time of 5 min. The different treatments resulted in average induction and recovery times ranging from 52 ± 6 s to 182 ± 16 s and 77 ± 26 s to 659 ± 46 s respectively. Induction and recovery times varied in relation to water temperature and were generally shorter at 16 °C for all weight groups and treatments compared to 8 °C. For benzocaine and MS-222 induction and recovery times were found to increase with increasing body weight. For metomidate the recovery time increased with increasing weight whereas there were no weight related differences in induction time. No differences in either induction or recovery times associated to body weight were found for 2-phenoxyethanol. Acute stress prior to anaesthesia with MS-222 resulted in significantly shorter induction time and prolonged recovery time, as well as deeper anaesthetised fish. The dosage of MS-222 had to be reduced in order to avoid mortality in fish subjected to acute stress. Combination anaesthesia allowed a reduction of the dosages used for inducing anaesthesia and produced markedly reduced recovery times compared to agents administered individually.  相似文献   

6.
The aim of this study was to evaluate the anaesthetic effect of MS‐222 and propofol and determine their optimal concentrations for safe handling of the tetra Astyanax altiparanae in the laboratory. The fish were separated by length into three classes: I (1.5–5.0 cm), II (5.1–8.0 cm) and III (greater than 8.1 cm). Pilot tests were performed to evaluate the appropriate anaesthetic concentrations for inducing the five possible anaesthetic stages: I – sedation; II – light anaesthesia; III – deep anaesthesia; IV – surgical anaesthesia; and V – spinal collapse. After defining the maximum and minimum concentrations required to induce stage IV anaesthesia, the animals were exposed to five intermediate concentrations (n = 10 fish/concentration) of each anaesthetic for 15 min. The animals were then transferred to clean water to evaluate the time required for recovery. In addition, blood glucose levels were measured for class II and class III fish subjected to the previously defined ideal concentrations for each of the tested anaesthetics (n = 10 fish/treatment). Both evaluated substances are suitable to anaesthetize A. altiparanae. The optimal MS‐222 concentration was 90 mg L?1, and this result was similar for all three size classes. The optimal propofol concentrations for inducing surgical anaesthesia in the size classes I, II and III were 0.22, 0.23 and 0.27 respectively.  相似文献   

7.
在室养条件下观察了MS-222、苯佐卡因和乌拉坦对稀有鮈鲫(Gobiocypris rarus)的麻醉效果。结果表明,乌拉坦不宜作为稀有鮈鲫的麻醉剂,而一定浓度的MS-222或苯佐卡因可导致稀有鮈鲫的快速麻醉;不同麻醉剂浓度、不同的作用时间下,稀有鮈鲫在行为上呈现不同的反应,据此可分为轻度镇静、深度镇静、轻度麻醉、中度麻醉、深度麻醉和髓质麻醉阶段;根据反应时间、恢复时间、维持时间和存活率等,建议使用60mg/L的苯佐卡因或100~110mg/L的MS-222作为深度麻醉剂量。  相似文献   

8.
MS-222对牙鲆麻醉效果   总被引:2,自引:0,他引:2       下载免费PDF全文
以MS-222为麻醉剂,在13~14℃水温条件下,用浸浴麻醉方法测试了不同麻醉剂浓度和不同麻醉时间对牙鲆复苏时间、复苏率和24h存活率及长时间麻醉对复苏率的影响以及超有效浓度麻醉剂(60mg/L)麻醉后的抗露干能力。预备实验证明,本试验条件下麻醉剂的有效浓度为50mg/L。实验表明,将麻醉剂浓度从50mg/L提高到200mg/L,供试鱼被麻醉的时间由288s缩短至50s,复苏时间由94s延长至106s;用60、100和200mg/L的麻醉液持续麻醉后,可获得100%复苏率的最长麻醉时间分别为64、32和32min,牙鲆经MS-222麻醉后抗露干时间延长。牙鲆麻醉后复苏过程中存在较大的个体差异,但一旦复苏,牙鲆24h内的存活率可达100%。实验表明,MS-222的合理麻醉浓度为60mg/L,此浓度下最长麻醉时间为64min,麻醉露干时间应低于60min。  相似文献   

9.
通过测定不同质量浓度MS-222对细鳞鲑和美洲红点鲑的麻醉效果,检测麻醉时鱼的呼吸频率以及空气暴露时长对鱼体复苏的影响,探究两种鱼类在渔业生产和科研实验中的最适麻醉剂浓度。结果显示:当MS-222质量浓度为80、100 mg/L时,细鳞鲑麻醉所需的时间显著少于40、60 mg/L浓度组,而显著多于其余浓度组(P<0.05)。当MS-222质量浓度为100 mg/L时,细鳞鲑的复苏时长最短(P<0.05)。当MS-222质量浓度为80 mg/L时,美洲红点鲑麻醉所需的时间显著少于40、60 mg/L浓度组,而显著多于其余浓度组(P<0.05)。当MS-222质量浓度为100 mg/L时,美洲红点鲑的复苏时长显著大于40、60和80 mg/L浓度组,而显著小于其余浓度组(P<0.05)。比较MS-222对两种鱼的麻醉效果,美洲红点鲑对MS-222更为敏感。两种鱼的呼吸频率总体上都随着麻醉程度的加深而下降,当空气暴露时长少于5 min时,细鳞鲑的复苏时长先减少后增加,美洲红点鲑的复苏时长则呈逐渐减少趋势。  相似文献   

10.
为研究丁香酚对花鲈(Lateolabrax maculatus)幼鱼的麻醉效果。采用静水方法在水温(27±1)℃下研究不同质量浓度丁香酚(20、25、30、40、50、60、80 mg/L和100 mg/L)对规格为(21.6±2.75)cm长和(110.3±30.67)g重的花鲈麻醉效果和呼吸频率的影响。25~100 mg/L质量浓度的丁香酚均能使花鲈进入深度麻醉期,且麻醉浓度与平均入麻时间呈负相关,与平均复苏时间成正相关;丁香酚质量浓度为50 mg/L时,麻醉效果较好。低浓度丁香酚20 mg/L对花鲈呼吸频率影响不明显。在质量浓度达到40~100 mg/L时,鱼体由麻醉期(A3)进入深度麻醉期(A4),呼吸频率迅速降低。以50 mg/L丁香酚将花鲈麻醉后再在空气中进行暴露,暴露时间与复苏时间呈正相关。暴露时间在2~30 min范围内的复苏率为100%。当时间增加至35、40和45 min时,复苏率降低至66%,33%和0。且暴露时间大于20 min花鲈只能进入恢复期3期(R3)。因此,50 mg/L的丁香酚麻醉液是花鲈幼鱼的理想麻醉浓度。  相似文献   

11.
本文研究了MS-222和丁香酚两种麻醉剂在不同浓度下对多鳞四指马(鲅)幼鱼的麻醉效果,观测了其不同麻醉阶段的表现,探讨了麻醉时间和温度对其入麻和复苏的影响.结果表明 MS-222、丁香酚分别在55 mg/L、10 mg/L以上才对幼鱼有麻醉效果,最适麻醉剂浓度分别为20±5 mg/L和80±10 mg/L;随着浓度的上升,入麻时间缩短,复苏时间增加.随着温度的上升,入麻时间缩短,复苏时间增加.  相似文献   

12.
The effects of 60‐mg L?1 clove oil and 60‐mg L?1 tricaine methanesulphonate (MS‐222) on the blood chemistry of rainbow trout were compared after exposure to handling stress via caudal puncture blood sampling. Fish sampled by caudal puncture and subsequently exposed to anaesthetics showed a typical handling stress response over a 48‐h period. There were no significant differences between the responses of fish exposed to equal concentrations of clove oil and MS‐222, with the following exceptions: the blood glucose at full anaesthesia, and lactate at full recovery increased significantly in the clove oil‐exposed fish. In a subsequent experiment, the stress response observed in fish sampled by caudal puncture and exposed to clove oil and MS‐222 was compared with a non‐anaesthetized control group. The increases in plasma cortisol levels were significantly lower at recovery in fish treated with either anaesthetic compared with the control fish. Fish exposed to MS‐222 had significantly higher cortisol levels at 1 h. These findings show that few differences exist between the anaesthetic effects of clove oil and MS‐222 on the physiological response of fish to stress. However, clove oil is more effective at reducing the short‐term stress response induced by handling and blood sampling, and is recommended as an alternative fish anaesthetic.  相似文献   

13.
Anaesthetic efficacy of eugenol was investigated on Flowerhorn (Amphilophus labiatus × Amphilophus trimaculatus). A total of 104 fish with average weights of 12 ± 2.5, 28 ± 5 and 53 ±5.1 g were subjected to 25–200 mg L?1 eugenol and behavioural responses as well as induction and recovery times were recorded. Induction and recovery times were significantly affected by eugenol concentration as well as fish weight (P < 0.05). Generally, 49.9–127.3 s after exposure to 50–200 mg L?1 eugenol, fish reached stage 3 anaesthesia (suitable for general handling). Fish entered stage 4 anaesthesia (suitable for surgery and blood sampling) over 57.3–140.4 s post exposure to such concentrations. Recovery time was 91.7–312 s in all weight classes for all eugenol concentrations. Mortality (23%) was only observed in 12‐g fish when were subjected to 200 mg L?1 eugenol. This study showed the behavioural response of Flowerhorn to anaesthesia and eugenol efficacy as an anaesthetic in this important ornamental species. The general quadratic equation revealed that concentrations of eugenol and fish size along with their interactive effects have significantly contributed to the model, with concentration recording the highest beta value in all models (β = ?0.809, ?0.818 and ?0.909, P = 0.000). According to the results, minimum eugenol concentration to induce anaesthesia in less than 3 min was 50 mg L?1.  相似文献   

14.
The effects of four anaesthetic agents, tricaine methanesulphonate (MS‐222) (112.5 mg L?1), 2‐phenoxyethanol (400 μL L?1), clove oil (70 mg L?1) and benzocaine (65 mg L?1) on juvenile marbled spinefoot (Siganus rivulatus) of three mean body weights (7.3 g, 19.1 g, 55.5 g) and at three temperatures (20, 25, 30°C) were evaluated. In addition, the relationship between body lipid content and efficacy of the four anaesthetic agents was evaluated in juvenile S. rivulatus. Times necessary for induction and recovery were recorded. Significant effects of temperature on induction and recovery times were observed. Induction and recovery times decreased with increasing water temperature. No uniform relationship between body weight of juvenile marbled spinefoot and anaesthetic efficacy was observed. Body fat content was positively correlated with induction time only when MS‐222 was used but did not affect induction times of fish exposed to 2‐phenoxyethanol, clove oil or benzocaine. Recovery times were generally longer for all fish containing more body fat. Results of the study show that anaesthetic efficiency increases with increasing water temperature but is not strongly affected by body weight for juvenile marbled spinefoot. In addition, body fat in fish affected the efficacy of the various anaesthetic agents tested in this study, generally slowing down recovery.  相似文献   

15.
Anaesthetic efficacy of eugenol was investigated on iridescent shark, Pangasius hypophthalmus. Fish (2, 5, 10 and 20 g) subjected to 20–200 mg L?1 eugenol and behavioural response as well as induction and recovery times were recorded. Induction and recovery times were significantly affected by eugenol concentration as well as fish weight (< 0.05). Generally, 27–300 s after exposure to 20–200 mg L?1 eugenol, iridescent sharks reached stage 3 anaesthesia (suitable for general handling). Fish entered stage 4 anaesthesia (suitable for surgery and blood sampling) over 54–710 s exposure to such concentrations. Recovery time was 109–600 s in all weight classes as well as eugenol concentrations. Mortality (44–100%) was only observed in 2 g fish when subjected to 110–170 mg L?1 eugenol. This study, for the first time, showed behavioural response of iridescent shark to anaesthesia as well as effectiveness of eugenol as anaesthetic in this important aquaculture‐ornamental species. According to the models obtained in this study, minimum eugenol concentrations to induce anaesthesia over less than 3 min were 53.8–81.5 mg L?1 in 2–20 g fish. Likewise, maximum eugenol concentrations in which fish recovered over less than 5 min were 65.9–105.8 mg L?1 in 2–20 g fish.  相似文献   

16.
The anaesthetic effects of eugenol on Penaeus monodon were investigated at the different eugenol concentrations (60, 110, 160 and 210 mg/L), water temperature (21, 26 and 31°C), air exposure time (3, 6, 9 and 12 min) and body weight (2.62 ± 0.27, 6.34 ± 0.36 and 11.43 ± 0.33 g). The anaesthesia and recovery time were recorded. The results showed that the anaesthesia time of the shrimp decreased with the increase in the eugenol concentration and water temperature, and the recovery time increased with the increase of the eugenol concentration and the decrease of water temperature. Under the same eugenol concentrations, the recovery time increased with the increase of air exposure time and body weight. Under the eugenol concentration range of 60–210 mg/L, the recovered rate was 100%. The results indicated that eugenol is a safe and efficient anaesthetic for P. monodon.  相似文献   

17.
The use of anaesthetic agents has been increasing to address the welfare needs of different fish species in scientific and aquaculture practices. MS-222 is the most used synthetic anaesthetic but some limitations and side effects have been reported. Natural substances have been used as potential substitutes with clove oil playing an important role due to its eugenol content. Yet, other monoterpenes have shown anaesthetic properties in different fish species. As such, a quantitative assessment has been conducted to explicitly relate and summarise the use of monoterpenes with described anaesthetic properties in fish. A combined PubMed, Web of Science, Scopus, PubMed Central and Europe PMC electronic database search was performed, from January 2002 to August 2022, following the PRISMA guidelines. Out of 1555 articles retrieved from the literature search, 30 English reports met the criteria for inclusion in the meta-analysis through a generic inverse-variance method (random-effects model) and according to the fish age. The findings show a total of 10 different monoterpenes with high homogeneity and effectiveness in inducing anaesthesia and recovery according to the fish anaesthetic criteria. Further subgroup analysis showed these effects were independent of fish age. Meta-regression of the included studies revealed an inverse linear association between anaesthesia induction and recovery time and water bath temperature while no further correlation was found with other confounding factors (body weight, water pH and dissolved oxygen levels). Although further studies will be required, this meta-analysis provides robust evidence that different monoterpenes serve as an attractive and effective alternative for fish anaesthesia although water bath temperature also played an important role in anaesthesia outcome.  相似文献   

18.
在室养条件下观察了MS-222、苯佐卡因和乌拉坦对稀有鮈鲫(Gobiocypris rarus)的麻醉效果。结果表明,乌拉坦不宜作为稀有鮈鲫的麻醉剂,而一定浓度的MS-222或苯佐卡因可导致稀有鮈鲫的快速麻醉;不同麻醉剂浓度、不同的作用时间下,稀有鮈鲫在行为上呈现不同的反应,据此可分为轻度镇静、深度镇静、轻度麻醉、中度麻醉、深度麻醉和髓质麻醉阶段;根据反应时间、恢复时间、维持时间和存活率等,建议使用60mg/L的苯佐卡因或100~110mg/L的MS-222作为深度麻醉剂量。  相似文献   

19.
The efficacy of anaesthetic tricaine methanesulfonate (MS‐222) was evaluated in four freshwater aquarium fish species, Zebrafish (Danio rerio), Guppy (Poecilia reticulata), Discu (Symphysodon discus) and Green swordtail (Xiphophorus helleri). The correct dose of anaesthetic should induce the plane 4 of anaesthesia in less than 180 s, recovery in less than 300 s and must survive when exposed during 30 min to anaesthetic. Fishes were exposed to six concentrations of anaesthetic (75, 100, 125, 150, 200 and 250 mg L?1) and the time of fish reaching plane 4 of anaesthesia, post exposure recovery, and the percentage of survival when fish were subject to 30 min in the anaesthetic were recorded. The optimal doses varied according to the species: D. rerio – 75, 100 and 125 mg L?1, P. reticulata – 125, 150 and 200 mg L?1, S. discus – 75 and 100 mg L?1 and X. helleri – 125 and 150 mg L?1. The induction time generally decreased significantly with increasing concentration of MS‐222 for all of the species evaluated. The recovery time had a tendency to increase with the increase of the MS‐222 concentration for D. rerio, P. reticulata and S. discus. On the other hand, X. helleri recovery time decreased with the increase of MS‐222 concentration. MS‐222 proved to be effective in anaesthesia for all the freshwater ornamental species studied. The main results clearly show that the optimal dose to anesthetize is fish species dependent and it is completely wrong to extrapolate optimal anaesthetic concentrations between different species.  相似文献   

20.
This study describes anaesthetic efficacy of menthol and 1,8‐cineole in common carp, Cyprinus carpio, in comparison with eugenol. Common carp fingerlings were exposed to eugenol: 5, 10, 15, 25, 35, 50, 75, 100, 150 and 200 ppm; menthol: 5, 10, 15, 25, 50, 100, 200, 300, 400, 500 and 600 ppm; 1,8‐cineole: 100, 150, 200, 300, 400, 500, 600, 700 and 800 ppm. Induction time and recovery time were recorded. Results showed that menthol and 1,8‐cineole anesthetized the fish at higher concentrations compared to eugenol. The fish exposed to menthol showed common fish behavioural responses to anaesthesia, similar to eugenol. But, 1,8‐cineole‐exposed fish showed tail‐up swimming, which was not observed before. Also, 1,8‐cineole failed to completely cease muscle tone. Exposure to 200 ppm eugenol and 600 ppm menthol resulted in 40% and 20% mortality, respectively. Induction time was exponentially dependent on anesthetic concentrations. Recovery time was linearly correlated to eugenol and menthol, but not 1,8‐cineole concentrations. Recovery time was exponentially dependent on induction time in the fish anesthetized with eugenol and menthol, but not 1,8‐cineole. Menthol and 1,8‐cineole are recommended for carp anaesthesia. Menthol is capable to anesthetize common carp within 1–3 min at 118–512 ppm. Common carp anesthetized with 108–133 ppm menthol recovers within 5 min. 1,8‐cineole failed to anesthetize common carp within less than 150 s at 300–800 ppm concentrations. However, it anesthetizes carp within 3 min at 595 ppm concentration. Also, 1,8‐cineole is not recommended for fish surgery. Both menthol and 1,8‐cineole were less efficacious than eugenol.  相似文献   

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