Skin filament recovery after clipping in Hippocampus guttulatus: behavioural and histological aspects

IF 1.3 4区 生物学 Q3 MARINE & FRESHWATER BIOLOGY Aquatic Biology Pub Date : 2017-09-05 DOI:10.3354/AB00680
M. Gristina, Simona Bertrandino, F. Cardone, D. Mentino, G. Corriero, G. Scillitani
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引用次数: 9

Abstract

Skin filaments are present on the heads of several Hippocampus species. Their clipping is a useful, non-lethal technique for marking individuals and sampling tissue. Little is known about the consequences of clipping on behaviour and details of regeneration. We present the results of a study on the effects of filament clipping on activity patterns and the regeneration of this structure at the macroscopic and microscopic level in Hippocampus guttulatus Cuvier, 1801 from the Gulf of Taranto (Apulia, Ionian Sea). Twelve individuals of both sexes underwent filament clipping, and their behaviour sequences (expressed as percent of total time spent swimming, resting, food searching, and swinging) were monitored for 10 wk in water tanks. In the first week, individuals spent significantly more time food searching and swimming compared to controls, whereas in the following weeks, no differences between groups were observed. Regeneration was observed in 12 other individuals reclipped after 3, 5, and 7 wk. Sections of paraffin-embedded filaments were stained with Mallory’s trichrome, alcian blue pH 2.5, periodic acid-Schiff (PAS), and PAS with diastase. Epidermal cells and basal membranes were the first to recover fully. Basal epidermal cells were filled with glycogen. In the dermis, the arrangement of bundles of fibres surrounded by melanocytes took longer to reconstitute. After 10 wk, the filaments grew to about 36.7% of their original length, whereas at the microscopic level, the tissues recovered fully. It is concluded that filament clipping does not significantly affect the general behavioural patterns of H. guttulatus, and regeneration at the microscopic level is fully accomplished.
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海马体割伤后皮肤细丝恢复:行为学和组织学方面
几种海马体的头部有皮肤细丝。它们的剪切是一种有用的、非致命的技术,用于标记个体和取样组织。关于修剪对行为和再生细节的影响,人们知之甚少。我们在宏观和微观水平上研究了来自塔兰托湾(阿普里亚,爱奥尼亚海)的海马体guttulatus Cuvier, 1801的纤维剪切对其活动模式和该结构再生的影响。在水箱中监测了12只雄性和雌性的幼虫的行为序列(以游泳、休息、寻找食物和摇摆的总时间的百分比表示),为期10周。在第一周,与对照组相比,个体花在寻找食物和游泳上的时间明显更多,而在接下来的几周,两组之间没有观察到差异。在3周、5周和7周后,在其他12个个体中观察到再生。石蜡包埋细丝切片用马洛里三色、阿利新蓝pH 2.5、周期性酸-希夫(PAS)和带淀粉酶的PAS染色。表皮细胞和基膜最先完全恢复。基底表皮细胞充满糖原。在真皮层,被黑素细胞包围的纤维束的排列需要更长的时间来重建。10周后,细丝长至原来长度的36.7%左右,而在显微镜下,组织完全恢复。综上所述,剪丝对舌鱼的一般行为模式没有显著影响,在微观水平上完全完成了再生。
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来源期刊
Aquatic Biology
Aquatic Biology 生物-海洋与淡水生物学
CiteScore
2.70
自引率
0.00%
发文量
7
审稿时长
3 months
期刊介绍: AB publishes rigorously refereed and carefully selected Feature Articles, Research Articles, Reviews and Notes, as well as Comments/Reply Comments (for details see MEPS 228:1), Theme Sections, Opinion Pieces (previously called ''As I See It'') (for details consult the Guidelines for Authors) concerned with the biology, physiology, biochemistry and genetics (including the ’omics‘) of all aquatic organisms under laboratory and field conditions, and at all levels of organisation and investigation. Areas covered include: -Biological aspects of biota: Evolution and speciation; life histories; biodiversity, biogeography and phylogeography; population genetics; biological connectedness between marine and freshwater biota; paleobiology of aquatic environments; invasive species. -Biochemical and physiological aspects of aquatic life; synthesis and conversion of organic matter (mechanisms of auto- and heterotrophy, digestion, respiration, nutrition); thermo-, ion, osmo- and volume-regulation; stress and stress resistance; metabolism and energy budgets; non-genetic and genetic adaptation. -Species interactions: Environment–organism and organism–organism interrelationships; predation: defenses (physical and chemical); symbioses. -Molecular biology of aquatic life. -Behavior: Orientation in space and time; migrations; feeding and reproductive behavior; agonistic behavior. -Toxicology and water-quality effects on organisms; anthropogenic impacts on aquatic biota (e.g. pollution, fisheries); stream regulation and restoration. -Theoretical biology: mathematical modelling of biological processes and species interactions. -Methodology and equipment employed in aquatic biological research; underwater exploration and experimentation. -Exploitation of aquatic biota: Fisheries; cultivation of aquatic organisms: use, management, protection and conservation of living aquatic resources. -Reproduction and development in marine, brackish and freshwater organisms
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