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Growing Up in a Changing World: Environmental Regulation of Development in Insects. 在变化的世界中成长:昆虫发育的环境调控。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2021-01-07 Epub Date: 2020-08-21 DOI: 10.1146/annurev-ento-041620-083838
Christen K Mirth, Timothy E Saunders, Christopher Amourda

All organisms are exposed to changes in their environment throughout their life cycle. When confronted with these changes, they adjust their development and physiology to ensure that they can produce the functional structures necessary for survival and reproduction. While some traits are remarkably invariant, or robust, across environmental conditions, others show high degrees of variation, known as plasticity. Generally, developmental processes that establish cell identity are thought to be robust to environmental perturbation, while those relating to body and organ growth show greater degrees of plasticity. However, examples of plastic patterning and robust organ growth demonstrate that this is not a hard-and-fast rule.In this review, we explore how the developmental context and the gene regulatory mechanisms underlying trait formation determine the impacts of the environment on development in insects. Furthermore, we outline future issues that need to be resolved to understand how the structure of signaling networks defines whether a trait displays plasticity or robustness.

所有生物在其整个生命周期中都暴露于环境的变化中。当面对这些变化时,它们调整自己的发育和生理,以确保它们能够产生生存和繁殖所必需的功能结构。虽然有些特征在各种环境条件下都非常稳定,但其他特征则表现出高度的变化,即可塑性。一般来说,建立细胞身份的发育过程被认为对环境扰动是稳健的,而那些与身体和器官生长有关的发育过程则表现出更大程度的可塑性。然而,塑料图案和强健的器官生长的例子表明,这并不是一个硬性规定。本文综述了昆虫的发育背景和性状形成的基因调控机制如何决定环境对昆虫发育的影响。此外,我们概述了未来需要解决的问题,以了解信号网络的结构如何定义特征是否显示可塑性或稳健性。
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引用次数: 27
Behaviors and Interactions of Insects in Mid-Mesozoic Ecosystems of Northeastern China. 中国东北中中生代生态系统昆虫的行为与相互作用。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2021-01-07 Epub Date: 2020-09-11 DOI: 10.1146/annurev-ento-072720-095043
Taiping Gao, Chungkun Shih, Dong Ren
During the past 20 years, more than 1,600 species of well-preserved fossil insects, including members of over 270 families within 24 orders, have been described from the Middle Jurassic Yanliao Entomofauna and Early Cretaceous Jehol Entomofauna in Northeastern China. Diversified fossil insects not only document the origin, systematics, and early evolution of many lineages, but also reveal these lineages' behaviors and interactions with coexisting plants, vertebrates, and other insects in their ecosystems. For example, fossil evidence has been documented, for example, regarding insects' feeding and pollination mutualism with gymnosperms; ectoparasitic feeding on blood of vertebrates; camouflage, mimicry of gymnosperm plants, and eyespot warning; sound stridulation for attracting potential mates; and sexual display, mating, egg-laying, and parental care. In this article, we review the diverse taxonomy of mid-Mesozoic insects of Northeastern China and elucidate their behaviors and interactions within their ecosystems, which have impacted their early evolution and development into extant insects. Expected final online publication date for the Annual Review of Entomology, Volume 66 is January 11, 2020. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
近20年来,在中国东北中侏罗统燕辽昆虫系和早白垩世热河昆虫系中发现了保存完好的昆虫化石1600余种,分属24目270余科。多样化的昆虫化石不仅记录了许多谱系的起源、系统分类和早期进化,而且揭示了这些谱系与生态系统中共存的植物、脊椎动物和其他昆虫的行为和相互作用。化石证据已经被记录下来,例如,关于昆虫与裸子植物的取食和授粉的相互关系;以脊椎动物血液为食的体外寄生虫;裸子植物的伪装、拟态和眼斑警告;吸引潜在配偶的声音;性展示,交配,产卵,抚育后代。本文综述了中国东北中中生代昆虫的多样性分类,并阐明了它们在生态系统中的行为和相互作用,这些行为和相互作用影响了它们早期进化和发展为现存昆虫。
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引用次数: 24
Symbiont-Mediated Digestion of Plant Biomass in Fungus-Farming Insects. 共生体介导的植物生物量在真菌养殖昆虫中的消化。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2021-01-07 Epub Date: 2020-09-14 DOI: 10.1146/annurev-ento-040920-061140
Hongjie Li, Soleil E Young, Michael Poulsen, Cameron R Currie

Feeding on living or dead plant material is widespread in insects. Seminal work on termites and aphids has provided profound insights into the critical nutritional role that microbes play in plant-feeding insects. Some ants, beetles, and termites, among others, have evolved the ability to use microbes to gain indirect access to plant substrate through the farming of a fungus on which they feed. Recent genomic studies, including studies of insect hosts and fungal and bacterial symbionts, as well as metagenomics and proteomics, have provided important insights into plant biomass digestion across insect-fungal mutualisms. Not only do advances in understanding of the divergent and complementary functions of complex symbionts reveal the mechanism of how these herbivorous insects catabolize plant biomass, but these symbionts also represent a promising reservoir for novel carbohydrate-active enzyme discovery, which is of considerable biotechnological interest.

昆虫普遍以活的或死的植物材料为食。对白蚁和蚜虫的开创性研究为微生物在植食性昆虫中所起的关键营养作用提供了深刻的见解。一些蚂蚁、甲虫和白蚁等已经进化出了利用微生物通过种植它们赖以为生的真菌来间接接触植物基质的能力。最近的基因组学研究,包括对昆虫宿主、真菌和细菌共生体的研究,以及宏基因组学和蛋白质组学的研究,为了解昆虫-真菌共生关系中的植物生物量消化提供了重要的见解。在了解复杂共生体的分化和互补功能方面取得的进展不仅揭示了这些食草昆虫如何分解植物生物量的机制,而且这些共生体也代表了新的碳水化合物活性酶发现的有希望的水库,这是相当大的生物技术兴趣。
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引用次数: 34
Evolution of Insect Color Vision: From Spectral Sensitivity to Visual Ecology. 昆虫色觉的进化:从光谱敏感性到视觉生态学。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2021-01-07 Epub Date: 2020-09-23 DOI: 10.1146/annurev-ento-061720-071644
Casper J van der Kooi, Doekele G Stavenga, Kentaro Arikawa, Gregor Belušič, Almut Kelber

Color vision is widespread among insects but varies among species, depending on the spectral sensitivities and interplay of the participating photoreceptors. The spectral sensitivity of a photoreceptor is principally determined by the absorption spectrum of the expressed visual pigment, but it can be modified by various optical and electrophysiological factors. For example, screening and filtering pigments, rhabdom waveguide properties, retinal structure, and neural processing all influence the perceived color signal. We review the diversity in compound eye structure, visual pigments, photoreceptor physiology, and visual ecology of insects. Based on an overview of the current information about the spectral sensitivities of insect photoreceptors, covering 221 species in 13 insect orders, we discuss the evolution of color vision and highlight present knowledge gaps and promising future research directions in the field.

色觉在昆虫中广泛存在,但不同物种之间存在差异,这取决于光谱灵敏度和参与光感受器的相互作用。光感受器的光谱灵敏度主要由所表达的视色素的吸收光谱决定,但它可以受到各种光学和电生理因素的修饰。例如,筛选和过滤色素、横纹图波导特性、视网膜结构和神经处理都会影响感知到的颜色信号。本文综述了昆虫复眼结构、视色素、感光生理和视生态的多样性。本文在综述了13目221种昆虫光感受器光谱敏感性的研究现状的基础上,讨论了色觉的进化过程,并对该领域目前的知识空白和未来的研究方向进行了展望。
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引用次数: 150
The Interplay Between Viruses and RNAi Pathways in Insects. 昆虫中病毒与RNAi通路的相互作用。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2021-01-07 DOI: 10.1146/annurev-ento-033020-090410
Bryony C Bonning, Maria-Carla Saleh

As an overarching immune mechanism, RNA interference (RNAi) displays pathogen specificity and memory via different pathways. The small interfering RNA (siRNA) pathway is the primary antiviral defense mechanism against RNA viruses of insects and plays a lesser role in defense against DNA viruses. Reflecting the pivotal role of the siRNA pathway in virus selection, different virus families have independently evolved unique strategies to counter this host response, including protein-mediated, decoy RNA-based, and microRNA-based strategies. In this review, we outline the interplay between insect viruses and the different pathways of the RNAi antiviral response; describe practical application of these interactions for improved expression systems and for pest and disease management; and highlight research avenues for advancement of the field.

作为一种重要的免疫机制,RNA干扰(RNAi)通过不同的途径表现出病原体特异性和记忆性。小干扰RNA (small interfering RNA, siRNA)途径是昆虫对RNA病毒的主要抗病毒防御机制,在DNA病毒的防御中作用较小。不同的病毒家族已经独立地进化出独特的策略来对抗宿主的这种反应,包括蛋白质介导的、基于诱饵rna的和基于微rna的策略,这反映了siRNA途径在病毒选择中的关键作用。在这篇综述中,我们概述了昆虫病毒与RNAi抗病毒反应的不同途径之间的相互作用;描述这些相互作用在改进表达系统和病虫害管理方面的实际应用;并强调该领域发展的研究途径。
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引用次数: 38
A Century of Synergy in Termite Symbiosis Research: Linking the Past with New Genomic Insights. 白蚁共生研究的一个世纪的协同作用:将过去与新的基因组见解联系起来。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2021-01-07 DOI: 10.1146/annurev-ento-022420-074746
Michael E Scharf, Brittany F Peterson

Termites have long been studied for their symbiotic associations with gut microbes. In the late nineteenth century, this relationship was poorly understood and captured the interest of parasitologists such as Joseph Leidy; this research led to that of twentieth-century biologists and entomologists including Cleveland, Hungate, Trager, and Lüscher. Early insights came via microscopy, organismal, and defaunation studies, which led to descriptions of microbes present, descriptions of the roles of symbionts in lignocellulose digestion, and early insights into energy gas utilization by the host termite. Focus then progressed to culture-dependent microbiology and biochemical studies of host-symbiont complementarity, which revealed specific microhabitat requirements for symbionts and noncellulosic mechanisms of symbiosis (e.g., N2 fixation). Today, knowledge on termite symbiosis has accrued exponentially thanks to omic technologies that reveal symbiont identities, functions, and interdependence, as well as intricacies of host-symbiont complementarity. Moving forward, the merging of classical twentieth-century approaches with evolving omic tools should provide even deeper insights into host-symbiont interplay.

长期以来,人们一直在研究白蚁与肠道微生物的共生关系。在19世纪后期,人们对这种关系知之甚少,并引起了约瑟夫·莱迪等寄生虫学家的兴趣;这项研究导致了20世纪生物学家和昆虫学家的研究,包括克利夫兰、亨盖特、特雷格和莱彻尔。早期的见解来自显微镜、有机体和腐烂研究,这些研究导致了对存在的微生物的描述,对共生体在木质纤维素消化中的作用的描述,以及对宿主白蚁利用能源气体的早期见解。然后重点发展到依赖培养的微生物学和寄主-共生体互补的生化研究,揭示了共生体对特定微生境的需求和共生的非纤维素机制(例如N2固定)。今天,由于基因组学技术揭示了共生体的身份、功能和相互依存关系,以及宿主-共生体互补的复杂性,关于白蚁共生的知识呈指数级增长。展望未来,将20世纪的经典方法与不断发展的基因组学工具相结合,应该会对宿主-共生体的相互作用提供更深入的见解。
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引用次数: 12
Ecology and Evolution of Insect-Fungus Mutualisms. 昆虫-真菌共生关系的生态学和进化。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2020-01-10 DOI: 10.1146/annurev-ento-011019-024910
P. H. Biedermann, F. Vega
The evolution of a mutualism requires reciprocal interactions whereby one species provides a service that the other species cannot perform or performs less efficiently. Services exchanged in insect-fungus mutualisms include nutrition, protection, and dispersal. In ectosymbioses, which are the focus of this review, fungi can be consumed by insects or can degrade plant polymers or defensive compounds, thereby making a substrate available to insects. They can also protect against environmental factors and produce compounds antagonistic to microbial competitors. Insects disperse fungi and can also provide fungal growth substrates and protection. Insect-fungus mutualisms can transition from facultative to obligate, whereby each partner is no longer viable on its own. Obligate dependency has (a) resulted in the evolution of morphological adaptations in insects and fungi, (b) driven the evolution of social behaviors in some groups of insects, and (c) led to the loss of sexuality in some fungal mutualists. Expected final online publication date for the Annual Review of Entomology, Volume 65 is January 7, 2020. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
互惠共生的进化需要相互作用,一个物种提供另一个物种无法提供或效率较低的服务。昆虫-真菌互惠互利交换的服务包括营养、保护和传播。在本综述的重点外共生体中,真菌可以被昆虫消耗,或者可以降解植物聚合物或防御化合物,从而为昆虫提供基质。它们还可以抵御环境因素,并产生对抗微生物竞争对手的化合物。昆虫传播真菌,还可以提供真菌生长基质和保护。昆虫-真菌共生体可以从兼性转变为专性,从而使每个伴侣不再独立生存。义务依赖(a)导致了昆虫和真菌形态适应的进化,(b)驱动了一些昆虫群体的社会行为的进化,以及(c)导致了一些真菌共生体的性取向丧失。《昆虫学年度评论》第65卷预计最终在线出版日期为2020年1月7日。请参阅http://www.annualreviews.org/page/journal/pubdates用于修订估算。
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引用次数: 127
Insect Declines in the Anthropocene. 人类世昆虫数量减少。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2020-01-10 DOI: 10.1146/annurev-ento-011019-025151
D. Wagner
Insect declines are being reported worldwide for flying, ground, and aquatic lineages. Most reports come from western and northern Europe, where the insect fauna is well-studied and there are considerable demographic data for many taxonomically disparate lineages. Additional cases of faunal losses have been noted from Asia, North America, the Arctic, the Neotropics, and elsewhere. While this review addresses both species loss and population declines, its emphasis is on the latter. Declines of abundant species can be especially worrisome, given that they anchor trophic interactions and shoulder many of essential ecosystem services of their respective communities. A review of the factors believed to be responsible for observed collapses and those perceived to be especially threatening to insects form the core of this treatment. In addition to widely recognized threats to insect biodiversity, e.g., habitat destruction, agricultural intensification (including pesticide use), climate change, and invasive species, this assessment highlights a few less commonly considered factors such as atmospheric nitrification from the burning of fossil fuels and the effects of droughts and changing precipitation patterns. Because the geographic extent and magnitude of insect declines are largely unknown, there is an urgent need for monitoring efforts, especially across ecological gradients, which will help to identify important causal factors in declines. This review also considers the status of vertebrate insectivores, reporting bias, challenges inherent in collecting and interpreting insect demographic data, and cases of increasing insect abundance. Expected final online publication date for the Annual Review of Entomology, Volume 65 is January 7, 2020. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
据报道,全世界的飞禽、陆禽和水生昆虫数量都在减少。大多数报告来自西欧和北欧,那里的昆虫动物群研究得很好,并且有许多分类学上不同谱系的大量人口统计数据。在亚洲、北美、北极、新热带和其他地方也发现了其他动物灭绝的案例。虽然这篇综述讨论了物种损失和种群下降,但它的重点是后者。丰富物种的减少尤其令人担忧,因为它们锚定了营养相互作用,并承担了各自社区的许多基本生态系统服务。审查被认为对观察到的坍塌负责的因素以及那些被认为对昆虫特别有威胁的因素构成了这种治疗的核心。除了生境破坏、农业集约化(包括农药使用)、气候变化和入侵物种等广泛认识到的对昆虫生物多样性的威胁外,本评估还强调了一些不太常被考虑的因素,如燃烧化石燃料造成的大气硝化作用以及干旱和降水模式变化的影响。由于昆虫数量下降的地理范围和幅度在很大程度上是未知的,因此迫切需要进行监测工作,特别是跨生态梯度的监测工作,这将有助于确定昆虫数量下降的重要原因。这篇综述还考虑了脊椎动物食虫的现状、报道偏差、收集和解释昆虫统计数据所固有的挑战,以及昆虫丰度增加的情况。《昆虫学年鉴》第65卷的最终在线出版日期预计为2020年1月7日。修订后的估计数请参阅http://www.annualreviews.org/page/journal/pubdates。
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引用次数: 596
Mechanisms, Applications, and Challenges of Insect RNA Interference. 昆虫RNA干扰的机制、应用和挑战。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2020-01-07 DOI: 10.1146/annurev-ento-011019-025224
Kun Yan Zhu, Subba Reddy Palli

The RNA interference (RNAi) triggered by short/small interfering RNA (siRNA) was discovered in nematodes and found to function in most living organisms. RNAi has been widely used as a research tool to study gene functions and has shown great potential for the development of novel pest management strategies. RNAi is highly efficient and systemic in coleopterans but highly variable or inefficient in many other insects. Differences in double-stranded RNA (dsRNA) degradation, cellular uptake, inter- and intracellular transports, processing of dsRNA to siRNA, and RNA-induced silencing complex formation influence RNAi efficiency. The basic dsRNA delivery methods include microinjection, feeding, and soaking. To improve dsRNA delivery, various new technologies, including cationic liposome-assisted, nanoparticle-enabled, symbiont-mediated, and plant-mediated deliveries, have been developed. Major challenges to widespread use of RNAi in insect pest management include variable RNAi efficiency among insects, lack of reliable dsRNA delivery methods, off-target and nontarget effects, and potential development of resistance in insect populations.

由短/小干扰RNA (siRNA)引发的RNA干扰(RNAi)在线虫中被发现,并在大多数生物体内发挥作用。RNAi作为一种研究基因功能的研究工具已被广泛使用,并在开发新的有害生物防治策略方面显示出巨大的潜力。RNAi在鞘翅目动物中是高效和系统的,但在许多其他昆虫中是高度可变或低效的。双链RNA (dsRNA)降解、细胞摄取、细胞间和细胞内转运、dsRNA加工成siRNA以及RNA诱导的沉默复合物形成的差异都会影响RNAi的效率。dsRNA的基本给药方法包括显微注射、喂药和浸泡。为了改善dsRNA的递送,各种新技术已经被开发出来,包括阳离子脂质体辅助、纳米颗粒激活、共生体介导和植物介导的递送。在害虫管理中广泛使用RNAi的主要挑战包括昆虫之间RNAi效率的变化,缺乏可靠的dsRNA递送方法,脱靶和非靶标效应,以及昆虫种群中潜在的抗性发展。
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引用次数: 249
The Insect Circulatory System: Structure, Function, and Evolution. 昆虫循环系统:结构、功能和进化。
IF 23.8 1区 农林科学 Q1 ENTOMOLOGY Pub Date : 2020-01-07 DOI: 10.1146/annurev-ento-011019-025003
J. Hillyer, G. Pass
Although the insect circulatory system is involved in a multitude of vital physiological processes, it has gone grossly understudied. This review aims to highlight this critical physiological system by detailing the structure and function of the circulatory organs, including the dorsal heart and the accessory pulsatile organs that supply hemolymph to the appendages. It also emphasizes how the circulatory system develops and ages and how, by means of reflex bleeding and functional integration with the immune system, it supports mechanisms for defense against predators and microbial invaders, respectively. Beyond that, this review details evolutionary trends and novelties associated with this system, as well as the ways in which this system also plays critical roles in thermoregulation and tracheal ventilation in high-performance fliers. Finally, this review highlights how novel discoveries could be harnessed for the control of vector-borne diseases and for translational medicine, and it details principal knowledge gaps that necessitate further investigation. Expected final online publication date for the Annual Review of Entomology, Volume 65 is January 7, 2020. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
尽管昆虫的循环系统参与了许多重要的生理过程,但对它的研究还远远不够。本文旨在通过详细介绍循环器官的结构和功能来强调这一重要的生理系统,包括心脏背侧和为附属物提供血淋巴的附属搏动器官。它还强调了循环系统如何发展和老化,以及如何通过反射性出血和与免疫系统的功能整合,分别支持防御捕食者和微生物入侵者的机制。除此之外,本文还详细介绍了与该系统相关的进化趋势和新颖性,以及该系统在高性能飞行员的体温调节和气管通气中发挥关键作用的方式。最后,本综述强调了如何利用新发现来控制媒介传播疾病和转化医学,并详细说明了需要进一步调查的主要知识差距。《昆虫学年鉴》第65卷的最终在线出版日期预计为2020年1月7日。修订后的估计数请参阅http://www.annualreviews.org/page/journal/pubdates。
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引用次数: 38
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Annual review of entomology
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