Thermal stress exposure of pupal oriental fruit fly has strong and trait-specific consequences in adult flies

IF 1.6 4区 农林科学 Q2 ENTOMOLOGY Physiological Entomology Pub Date : 2022-11-23 DOI:10.1111/phen.12400
Reyard Mutamiswa, Vimbai Lisa Tarusikirwa, Casper Nyamukondiwa, Ross N. Cuthbert, Frank Chidawanyika
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引用次数: 1

Abstract

Global climate change is projected to increase the incidence of heat waves, their magnitude and duration resulting in insects experiencing increasing environmental stress in both natural and managed ecosystems. While studies on insect thermal tolerance are rapidly increasing, variation across developmental or juvenile stress cross-stage effects within and across generations remain largely unexplored. Yet in holometabolous insects, heat stress at an early developmental stage may influence performance and survival during later stages. Here, we investigated the effects of pupal mild heat stress on the performance of laboratory-reared adult Bactrocera dorsalis (Hendel) (Diptera: Tephritidae) measured as longevity, critical thermal maximum (CTmax), critical thermal minima (CTmin), heat knockdown time (HKDT) and chill coma recovery time (CCRT). Pupal heat stress significantly influenced performance of B. dorsalis adults resulting in impaired longevity and heat tolerance (CTmax and HKDT) in both sexes with improved and compromised cold tolerance (CTmin and CCRT) in females and males, respectively. These findings highlight the role of juvenile stages in mediating stress responses at adult stages. For B. dorsalis, pupal heat stress largely compromised thermal tolerance implying that the species has limited potential to shift its geographic range in heat prone areas. Significant benefits in cold tolerance in females following heat stress may help in improving survival in the cold in the short-term despite restricted activity to the same traits in males. This study suggests that basal heat tolerance and not short-term compensatory thermal plasticity following heat stress may have aided the recent invasion of B. dorsalis in African landscapes.

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东方果蝇蛹的热应激暴露对成年果蝇具有强烈的特性特异性影响
预计全球气候变化将增加热浪的发生率,其规模和持续时间将导致昆虫在自然生态系统和管理生态系统中面临越来越大的环境压力。虽然对昆虫耐热性的研究正在迅速增加,但在各代内部和各代之间,发育或幼年应激跨阶段效应的变化在很大程度上仍未被探索。然而,在全代谢组昆虫中,早期发育阶段的热应激可能会影响后期的表现和生存。在这里,我们研究了蛹轻度热应激对实验室饲养的成年背氏双峰虫(Diptera:Tephritidae)性能的影响,包括寿命、临界热最大值(CTmax)、临界热最小值(CTmin)、热击倒时间(HKDT)和冷昏迷恢复时间(CCRT)。瞳孔热应激显著影响B.dorsalis成虫的表现,导致两性的寿命和耐热性(CTmax和HKDT)受损,雌性和雄性的耐寒性(CTmin和CCRT)分别提高和降低。这些发现强调了青少年阶段在调节成年阶段压力反应中的作用。对于B.dorsalis来说,蛹的热应激在很大程度上损害了其耐热性,这意味着该物种在易热地区改变地理范围的潜力有限。尽管雄性对相同性状的活动受到限制,但在热应激后,雌性在抗寒性方面的显著益处可能有助于在短期内提高在寒冷中的存活率。这项研究表明,热应激后的基础耐热性而非短期补偿性热塑性可能有助于B.dorsalis最近在非洲景观中的入侵。
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来源期刊
Physiological Entomology
Physiological Entomology 生物-昆虫学
CiteScore
2.80
自引率
6.70%
发文量
21
审稿时长
>12 weeks
期刊介绍: Physiological Entomology broadly considers “how insects work” and how they are adapted to their environments at all levels from genes and molecules, anatomy and structure, to behaviour and interactions of whole organisms. We publish high quality experiment based papers reporting research on insects and other arthropods as well as occasional reviews. The journal thus has a focus on physiological and experimental approaches to understanding how insects function. The broad subject coverage of the Journal includes, but is not limited to: -experimental analysis of behaviour- behavioural physiology and biochemistry- neurobiology and sensory physiology- general physiology- circadian rhythms and photoperiodism- chemical ecology
期刊最新文献
Issue Information How insects work—Linking genotype to phenotype Issue Information Efficacy of sugar-protein non-membranous dietary system for diapause egg production in Aedes albopictus mosquitoes under short-day conditions Response of fruit fly (Drosophila pseudoobscura) to diet manipulation of nutrient density
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