Planning and implementing genetic rescue of an endangered freshwater fish population in a regulated river, where low flow reduces breeding opportunities and may trigger inbreeding depression

IF 3.5 2区 生物学 Q1 EVOLUTIONARY BIOLOGY Evolutionary Applications Pub Date : 2024-04-11 DOI:10.1111/eva.13679
Alexandra Pavlova, Nadja M. Schneller, Mark Lintermans, Matt Beitzel, Diana A. Robledo-Ruiz, Paul Sunnucks
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Abstract

Augmenting depleted genetic diversity can improve the fitness and evolutionary potential of wildlife populations, but developing effective management approaches requires genetically monitored test cases. One such case is the small, isolated and inbred Cotter River population of an endangered Australian freshwater fish, the Macquarie perch Macquaria australasica, which over 3 years (2017–2019) received 71 translocated migrants from a closely related, genetically more diverse population. We used genetic monitoring to test whether immigrants bred, interbred with local fish and augmented population genetic diversity. We also investigated whether levels of river flow affected recruitment, inbreeding depression and juvenile dispersal. Fish length was used to estimate the age, birth year cohort and growth of 524 individuals born between 2016 and 2020 under variable flow conditions. DArT genome-wide genotypes were used to assess individual ancestry, heterozygosity, short-term effective population size and identify parent-offspring and full-sibling families. Of 442 individuals born after translocations commenced, only two (0.45%) were of mixed ancestry; these were half-sibs with one translocated parent in common. Numbers of breeders and genetic diversity for five birth year cohorts of the Cotter River fish were low, especially in low-flow years. Additionally, individuals born in the year of lowest flow evidently suffered from inbreeding depression for juvenile growth. The year of highest flow was associated with the largest number of breeders, lowest inbreeding in the offspring and greatest juvenile dispersal distances. Genetic diversity decreased in the upstream direction, flagging restricted access of breeders to the most upstream breeding sites, exacerbated by low river flow. Our results suggest that the effectiveness of translocations could be increased by focussing on upstream sites and moving more individuals per year; using riverine sources should be considered. Our results indicate that river flow sufficient to facilitate fish movement through the system would increase the number of breeders, promote individuals' growth, reduce inbreeding depression and promote genetic rescue.

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规划并实施对一条受管制河流中濒危淡水鱼种群的遗传拯救,因为在该河流中,低流量会减少繁殖机会,并可能引发近亲繁殖抑郁
增加枯竭的遗传多样性可以提高野生动物种群的适应性和进化潜力,但要制定有效的管理方法,需要有基因监测的试验案例。其中一个案例是澳大利亚一种濒危淡水鱼--麦格理鲈(Macquaria australasica)的科特河种群,该种群规模小、与世隔绝且近亲繁殖,在3年时间里(2017-2019年),该种群接收了71名来自一个亲缘关系密切、遗传多样性更高的种群的迁入移民。我们利用遗传监测来检验移民是否与当地鱼类繁殖、杂交并增加了种群遗传多样性。我们还调查了河流流量是否会影响繁殖、近亲繁殖抑制和幼鱼扩散。我们利用鱼体长度估算了 2016 年至 2020 年间在不同水流条件下出生的 524 条个体的年龄、出生年份组群和生长情况。利用 DArT 全基因组基因型评估了个体祖先、杂合度、短期有效种群规模,并确定了亲代和全同胞家族。在开始易位后出生的 442 个个体中,只有两个个体(0.45%)具有混合血统;这两个个体是具有一个共同易位亲本的半同胞兄弟姐妹。科特河鱼类五个出生年份组群的繁殖数量和遗传多样性较低,尤其是在低流量年份。此外,在流量最小年份出生的个体在幼鱼生长过程中明显受到近亲繁殖抑制。流量最大的年份繁殖数量最多,后代近亲繁殖率最低,幼鱼扩散距离最远。基因多样性向上游方向降低,这表明繁殖者进入最上游繁殖地受到限制,而河流流量低又加剧了这一现象。我们的研究结果表明,可以通过将重点放在上游繁殖地和每年迁移更多个体来提高迁移的有效性;还应考虑利用河流水源。我们的研究结果表明,如果河流流量足以促进鱼类在系统中的移动,就能增加繁殖数量、促进个体生长、减少近亲繁殖抑制和促进基因拯救。
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来源期刊
Evolutionary Applications
Evolutionary Applications 生物-进化生物学
CiteScore
8.50
自引率
7.30%
发文量
175
审稿时长
6 months
期刊介绍: Evolutionary Applications is a fully peer reviewed open access journal. It publishes papers that utilize concepts from evolutionary biology to address biological questions of health, social and economic relevance. Papers are expected to employ evolutionary concepts or methods to make contributions to areas such as (but not limited to): medicine, agriculture, forestry, exploitation and management (fisheries and wildlife), aquaculture, conservation biology, environmental sciences (including climate change and invasion biology), microbiology, and toxicology. All taxonomic groups are covered from microbes, fungi, plants and animals. In order to better serve the community, we also now strongly encourage submissions of papers making use of modern molecular and genetic methods (population and functional genomics, transcriptomics, proteomics, epigenetics, quantitative genetics, association and linkage mapping) to address important questions in any of these disciplines and in an applied evolutionary framework. Theoretical, empirical, synthesis or perspective papers are welcome.
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