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Parasites of seabirds: A survey of effects and ecological implications. 海鸟寄生虫:影响和生态意义的调查。
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2019-01-01 Epub Date: 2019-04-04 DOI: 10.1016/bs.amb.2019.02.001
Junaid S Khan, Jennifer F Provencher, Mark R Forbes, Mark L Mallory, Camille Lebarbenchon, Karen D McCoy

Parasites are ubiquitous in the environment, and can cause negative effects in their host species. Importantly, seabirds can be long-lived and cross multiple continents within a single annual cycle, thus their exposure to parasites may be greater than other taxa. With changing climatic conditions expected to influence parasite distribution and abundance, understanding current level of infection, transmission pathways and population-level impacts are integral aspects for predicting ecosystem changes, and how climate change will affect seabird species. In particular, a range of micro- and macro-parasites can affect seabird species, including ticks, mites, helminths, viruses and bacteria in gulls, terns, skimmers, skuas, auks and selected phalaropes (Charadriiformes), tropicbirds (Phaethontiformes), penguins (Sphenisciformes), tubenoses (Procellariiformes), cormorants, frigatebirds, boobies, gannets (Suliformes), and pelicans (Pelecaniformes) and marine seaducks and loons (Anseriformes and Gaviiformes). We found that the seabird orders of Charadriiformes and Procellariiformes were most represented in the parasite-seabird literature. While negative effects were reported in seabirds associated with all the parasite groups, most effects have been studied in adults with less information known about how parasites may affect chicks and fledglings. We found studies most often reported on negative effects in seabird hosts during the breeding season, although this is also the time when most seabird research occurs. Many studies report that external factors such as condition of the host, pollution, and environmental conditions can influence the effects of parasites, thus cumulative effects likely play a large role in how parasites influence seabirds at both the individual and population level. With an increased understanding of parasite-host dynamics it is clear that major environmental changes, often those associated with human activities, can directly or indirectly affect the distribution, abundance, or virulence of parasites and pathogens.

寄生虫在环境中无处不在,并可能对其宿主物种造成负面影响。重要的是,海鸟可以很长寿,并且在一个年度周期内跨越多个大陆,因此它们暴露于寄生虫的可能性比其他分类群要大。随着气候条件的变化预计会影响寄生虫的分布和丰度,了解当前的感染水平、传播途径和种群水平的影响是预测生态系统变化以及气候变化如何影响海鸟物种的重要方面。特别是,一系列微型和大型寄生虫可以影响海鸟物种,包括蜱虫、螨虫、蠕虫、病毒和细菌,包括海鸥、燕鸥、掠食者、贼鸥、海雀和某些phalaropes (Charadriiformes)、热带鸟类(Phaethontiformes)、企鹅(sphenisformes)、管鸟(procellariformes)、鸬鹚、军舰鸟、鲣鸟、塘鹅(Suliformes)、鹈鹕(pelecanformes)、海鸭和潜鸟(anseformes和Gaviiformes)。我们发现,在寄生性海鸟文献中,最具代表性的是Charadriiformes和Procellariiformes海鸟目。虽然据报道,与所有寄生虫群相关的海鸟都有负面影响,但大多数影响都是在成年鸟身上研究的,关于寄生虫如何影响雏鸟和雏鸟的信息知之甚少。我们发现,研究最常报道的是在繁殖季节对海鸟宿主的负面影响,尽管这也是大多数海鸟研究发生的时间。许多研究报告指出,寄主状况、污染和环境条件等外部因素可以影响寄生虫的作用,因此,累积效应可能在寄生虫如何在个体和种群水平上影响海鸟方面发挥重要作用。随着对寄生虫-宿主动态的进一步了解,很明显,主要的环境变化,通常与人类活动有关,可以直接或间接地影响寄生虫和病原体的分布、丰度或毒性。
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引用次数: 16
Predatory zooplankton on the move: Themisto amphipods in high-latitude marine pelagic food webs. 移动中的掠食性浮游动物:高纬度海洋中上层食物网中的片脚类动物。
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2019-01-01 Epub Date: 2019-04-24 DOI: 10.1016/bs.amb.2019.02.002
Charlotte Havermans, Holger Auel, Wilhelm Hagen, Christoph Held, Natalie S Ensor, Geraint A Tarling

Hyperiid amphipods are predatory pelagic crustaceans that are particularly prevalent in high-latitude oceans. Many species are likely to have co-evolved with soft-bodied zooplankton groups such as salps and medusae, using them as substrate, for food, shelter or reproduction. Compared to other pelagic groups, such as fish, euphausiids and soft-bodied zooplankton, hyperiid amphipods are poorly studied especially in terms of their distribution and ecology. Hyperiids of the genus Themisto, comprising seven distinct species, are key players in temperate and cold-water pelagic ecosystems where they reach enormous levels of biomass. In these areas, they are important components of marine food webs, and they are major prey for many commercially important fish and squid stocks. In northern parts of the Southern Ocean, Themisto are so prevalent that they are considered to take on the role that Antarctic krill play further south. Nevertheless, although they are around the same size as krill, and may also occur in swarms, their feeding behaviour and mode of reproduction are completely different, hence their respective impacts on ecosystem structure differ. Themisto are major predators of meso- and macrozooplankton in several major oceanic regions covering shelves to open ocean from the polar regions to the subtropics. Based on a combination of published and unpublished occurrence data, we plot out the distributions of the seven species of Themisto. Further, we consider the different predators that rely on Themisto for a large fraction of their diet, demonstrating their major importance for higher trophic levels such as fish, seabirds and mammals. For instance, T. gaudichaudii in the Southern Ocean comprises a major part of the diets of around 80 different species of squid, fish, seabirds and marine mammals, while T. libellula in the Bering Sea and Greenland waters is a main prey item for commercially exploited fish species. We also consider the ongoing and predicted range expansions of Themisto species in light of environmental changes. In northern high latitudes, sub-Arctic Themisto species are replacing truly Arctic, ice-bound, species. In the Southern Ocean, a range expansion of T. gaudichaudii is expected as water masses warm, impacting higher trophic levels and biogeochemical cycles. We identify the many knowlegde gaps that must be filled in order to evaluate, monitor and predict the ecological shifts that will result from the changing patterns of distribution and abundance of this important pelagic group.

混血儿片脚类动物是捕食的远洋甲壳类动物,在高纬度的海洋中特别普遍。许多物种可能与软体浮游动物群体(如海鞘和水母)共同进化,将它们作为食物、庇护所或繁殖的基质。与鱼类、假足类和软体浮游动物等其他远洋类群相比,杂交片足类在分布和生态方面的研究很少。由7个不同的物种组成的海苔属双生体是温带和冷水中上层生态系统的关键角色,它们的生物量达到了巨大的水平。在这些地区,它们是海洋食物网的重要组成部分,也是许多商业上重要的鱼类和鱿鱼的主要猎物。在南大洋的北部地区,塞米斯托是如此普遍,以至于它们被认为扮演了南极磷虾在南方扮演的角色。然而,尽管它们的体型与磷虾差不多,也可能成群出现,但它们的摄食行为和繁殖方式完全不同,因此它们各自对生态系统结构的影响也不同。海蛸是中、大型浮游动物的主要捕食者,分布在从极地到亚热带的大陆架到开阔海域的几个主要海洋区域。结合已发表和未发表的发生数据,我们绘制了7种Themisto的分布。此外,我们还考虑了不同的捕食者,它们的大部分食物都依赖于Themisto,这表明它们对鱼类、海鸟和哺乳动物等更高营养水平的动物至关重要。例如,南大洋的T. gaudichadii是大约80种不同种类的鱿鱼、鱼类、海鸟和海洋哺乳动物的主要食物,而白令海和格陵兰水域的T. libellula是商业开发鱼类的主要猎物。我们还考虑了在环境变化的背景下,Themisto物种正在进行的和预测的范围扩张。在北部高纬度地区,亚北极的地暖物种正在取代真正的北极冰界物种。在南大洋,随着水团变暖,预计gaudichaudii的活动范围将扩大,影响更高的营养水平和生物地球化学循环。我们确定了许多必须填补的知识空白,以便评估、监测和预测这一重要的远洋生物的分布格局和丰度的变化所造成的生态变化。
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引用次数: 18
Contributors to Volume 85 第85卷的贡献者
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2019-01-01 DOI: 10.1016/s0091-679x(08)85025-x
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引用次数: 0
Introduction: The sharks of Pacific Mexico and their conservation: Why should we care? 简介:墨西哥太平洋的鲨鱼及其保护:我们为什么要关心?
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2019-01-01 DOI: 10.1016/bs.amb.2019.08.004
D. Lowry, S. Larson
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引用次数: 2
Shark ecology, the role of the apex predator and current conservation status. 鲨鱼生态学,顶端捕食者的作用和目前的保护状况。
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2019-01-01 DOI: 10.1016/bs.amb.2019.08.005
F. Galván‐Magaña, J. L. Castillo-Geniz, Mauricio Hoyos-Padilla, J. Ketchum, A. Klimley, Sergio Ramírez-Amaro, Y. Torres-Rojas, J. Tovar‐Ávila
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引用次数: 12
Conservation genetics of elasmobranchs of the Mexican Pacific Coast, trends and perspectives. 墨西哥太平洋沿岸板鳃亚种的保护遗传学、趋势与展望。
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2019-01-01 DOI: 10.1016/bs.amb.2019.08.002
J. Sandoval‐Castillo
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引用次数: 4
The Cells of Ecosystem Functioning: Towards a holistic vision of marine space. 生态系统功能的细胞:迈向海洋空间的整体视野。
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2019-01-01 Epub Date: 2019-04-19 DOI: 10.1016/bs.amb.2019.03.001
Ferdinando Boero, Francesco De Leo, Simonetta Fraschetti, Gianmarco Ingrosso

Marine space is three dimensional, the turnover of life forms is rapid, defining a fourth dimension: time. The definition of ecologically significant spatial units calls for the spatio-temporal framing of significant ecological connections in terms of extra-specific (biogeochemical cycles), intra-specific (life cycles), and inter-specific (food webs) fluxes. The oceanic volume can be split in sub-systems that can be further divided into smaller sub-units where ecosystem processes are highly integrated. The volumes where oceanographic and ecological processes take place are splittable into hot spots of ecosystem functioning, e.g., upwelling currents triggering plankton blooms, whose products are then distributed by horizontal currents, so defining Cells of Ecosystem Functioning (CEFs), whose identification requires the collaboration of physical and chemical oceanography, biogeochemistry, marine geology, plankton, nekton and benthos ecology and biology, food web dynamics, marine biogeography. CEFs are fuzzy objects that reflect the instability of marine systems.

海洋空间是三维的,生命形式的快速更替定义了第四个维度:时间。生态重要空间单元的定义要求在特定外(生物地球化学循环)、特定内(生命周期)和特定间(食物网)通量方面建立重要生态联系的时空框架。海洋体积可以分成若干子系统,这些子系统可以进一步划分为更小的亚单元,其中生态系统过程高度整合。海洋和生态过程发生的卷被划分为生态系统功能的热点,例如,上升流引发浮游生物大量繁殖,其产物随后通过水平流分布,因此定义了生态系统功能细胞(CEFs),其识别需要物理和化学海洋学,生物地球化学,海洋地质学,浮游生物,浮游生物和底栖生物生态学和生物学,食物网动力学,海洋生物地理学的合作。CEFs是反映海洋系统不稳定性的模糊对象。
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引用次数: 15
Copyright 版权
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2019-01-01 DOI: 10.1016/s0065-2881(19)30026-4
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引用次数: 0
Contributors to Volume 86 第86卷的贡献者
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2019-01-01 DOI: 10.1016/s0091-679x(08)00017-4
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引用次数: 0
The Potential Impact of Hydrocarbons on Mussels in Port au Port Bay, Newfoundland. 碳氢化合物对纽芬兰港港湾贻贝的潜在影响。
3区 生物学 Q1 Agricultural and Biological Sciences Pub Date : 2018-01-01 Epub Date: 2018-10-15 DOI: 10.1016/bs.amb.2018.09.003
Melissa C Cook, Adam May, Lucas Kohl, Geert Van Biesen, Christopher C Parrish, Penny L Morrill

Since 2012, the scallop fishery in Port au Port Bay, Newfoundland, Canada has experienced a drastic decline, while no decline was observed in adjacent St. George's Bay. Local fishermen have raised concerns about an abandoned oil exploration well in the Port au Port Bay. This study investigated the potential impact of petroleum hydrocarbons on sediments and blue mussels [Mytilus edulis] (a proxy organism for scallops) in the area. Sediments from both bays were characterized for their hydrocarbons and compared to potential petroleum hydrocarbon sources. Mussels were analysed for health indices and their 14C content. The results showed that the concentration of hydrocarbons found in the sediments of the fishing ground was within the range of unpolluted marine sediments and that the hydrocarbons present were likely from a mixture of sources. The health indices of the mussels in Port au Port Bay were similar to the health indices of mussels in St. George's Bay and the 14C content of the mussels from both bays was modern. These data suggest that the Port au Port fishing ground was not solely contaminated from crude oil leaking from an oil exploration well, that the mussels were not contaminated with petroleum hydrocarbons, and that Port au Port mussels were just as healthy as the mussels of St. George's Bay. Therefore, whatever caused the scallop decline was most likely scallop- and bay-specific. During this study a fast and efficient method for extracting petroleum hydrocarbons from sediment using accelerated solvent extraction with integrated silica gel was developed.

自2012年以来,加拿大纽芬兰港港湾的扇贝渔业急剧下降,而邻近的圣乔治湾则没有出现下降。当地渔民对港澳港湾的一口废弃油井表示担忧。这项研究调查了石油碳氢化合物对该地区沉积物和蓝贻贝(一种扇贝的替代生物)的潜在影响。对两个海湾沉积物的碳氢化合物进行了表征,并与潜在的石油烃源进行了比较。对贻贝的健康指标和14C含量进行了分析。结果表明,在渔场沉积物中发现的碳氢化合物浓度在未受污染的海洋沉积物的范围内,存在的碳氢化合物可能来自混合来源。港港湾贻贝的健康指数与圣乔治湾贻贝的健康指数相似,两湾贻贝的14C含量相近。这些数据表明,港港渔场不仅受到石油探井泄漏的原油的污染,贻贝也没有受到石油碳氢化合物的污染,港港贻贝和圣乔治湾的贻贝一样健康。因此,导致扇贝数量下降的原因很可能是扇贝和海湾特有的。本研究建立了一种快速高效的沉淀物中石油烃类的溶剂加速萃取集成硅胶萃取方法。
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引用次数: 1
期刊
Advances in Marine Biology
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