刺网渔业中快速的体细胞生长可能导致过度捕捞

IF 0.9 4区 生物学 Q4 ECOLOGY Annales Zoologici Fennici Pub Date : 2021-09-06 DOI:10.5735/086.058.0412
T. Wanke, U. Brämick, T. Mehner
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引用次数: 2

摘要

Vendace通常被认为是招募过度捕捞的低风险地区。这一假设已被北方种群所证实,但可能不适用于低纬度地区。我们通过比较生长不同的两种种群的繁殖力、自然死亡率和捕捞死亡率,与不受捕捞影响的种群的繁生殖力、自然死亡和捕捞死亡率来评估在文迪斯种群最南端招募过度捕捞的风险。尽管在一项研究中,由于湖泊生产力高和种群密度低,vendace湖的生长速度更快,并且具有更高的特定年龄的繁殖力,但在首次产卵前的密集收获会降低产卵者的数量,从而对种群的招募潜力产生负面影响。相比之下,在生长缓慢的种群中,vendace在第一次产卵后进入渔业,每次产卵的产卵量与不受捕鱼影响的种群相似。我们得出的结论是,以快速体细胞生长为特征的vendace种群可能面临更高的招募过度捕捞的风险,可以通过保护首次产卵者来减少这种风险。
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Fast Somatic Growth May Cause Recruitment Overfishing in Vendace (Coregonus albula) Gillnet Fisheries
Vendace is commonly assumed at low risk to recruitment overfishing. This assumption has been confirmed for boreal stocks but might not apply at lower latitudes. We evaluated the risk of recruitment overfishing at the southernmost extent of vendace populations by comparing fecundity, natural mortality, and fishing mortality of two stocks differing in growth with those of a population not subject to fishing. Although in one study lake vendace grew faster owing to high lake productivity and low stock density, and had substantially higher age-specific fecundity, intense harvest before first spawning negatively affected the stock's recruitment potential by reducing spawner abundance. In contrast, in the slow-growing stock, vendace entered the fishery after first spawning, and egg production per recruit was similar to that of the population not subject to fishing. We conclude that vendace stocks characterized by fast somatic growth may be at higher risk of recruitment overfishing, which can be reduced by protecting first-time spawners.
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来源期刊
Annales Zoologici Fennici
Annales Zoologici Fennici 生物-动物学
CiteScore
2.40
自引率
14.30%
发文量
10
审稿时长
>12 weeks
期刊介绍: Annales Zoologici Fennici publishes mainly original research reports, but also in-depth reviews and commentaries on all aspects of animal ecology and evolution, and fields related to them. Our aim is to promote papers which focus on the interactions among various components in the past and present environments by using integrative and cross-disciplinary approaches. This may be achieved by employing tools from different fields of research, such as (but not restricted to): ecology and paleoecology, molecular ecology and phylogeography, conservation biology, human-induced contemporary evolution and wildlife management, animal behaviour and interactions (including recognition systems and mechanisms), paleontology (except systematics and taxonomy) and evolution, bioenergetics.
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