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Endogenous Retroviruses Drive Resistance and Promotion of Exogenous Retroviral Homologs. 内源性逆转录病毒驱动抗性和促进外源性逆转录病毒同源物。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 Epub Date: 2020-12-08 DOI: 10.1146/annurev-animal-050620-101416
Elliott S Chiu, Sue VandeWoude

Endogenous retroviruses (ERVs) serve as markers of ancient viral infections and provide invaluable insight into host and viral evolution. ERVs have been exapted to assist in performing basic biological functions, including placentation, immune modulation, and oncogenesis. A subset of ERVs share high nucleotide similarity to circulating horizontally transmitted exogenous retrovirus (XRV) progenitors. In these cases, ERV-XRV interactions have been documented and include (a) recombination to result in ERV-XRV chimeras, (b) ERV induction of immune self-tolerance to XRV antigens, (c) ERV antigen interference with XRV receptor binding, and (d) interactions resulting in both enhancement and restriction of XRV infections. Whereas the mechanisms governing recombination and immune self-tolerance have been partially determined, enhancement and restriction of XRV infection are virus specific and only partially understood. This review summarizes interactions between six unique ERV-XRV pairs, highlighting important ERV biological functions and potential evolutionary histories in vertebrate hosts.

内源性逆转录病毒(erv)作为古代病毒感染的标志物,为宿主和病毒进化提供了宝贵的见解。erv有望协助执行基本的生物学功能,包括胎盘、免疫调节和肿瘤发生。erv的一个子集与循环水平传播的外源性逆转录病毒(XRV)祖病毒具有高核苷酸相似性。在这些情况下,ERV-XRV相互作用已被记录,包括(a)重组导致ERV-XRV嵌合体,(b) ERV诱导对XRV抗原的免疫自身耐受性,(c) ERV抗原干扰XRV受体结合,以及(d)相互作用导致XRV感染的增强和限制。虽然重组和免疫自身耐受的机制已部分确定,但XRV感染的增强和限制是病毒特异性的,仅部分了解。本文综述了六种独特的ERV- xrv对之间的相互作用,重点介绍了ERV在脊椎动物宿主中的重要生物学功能和潜在的进化历史。
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引用次数: 16
Introduction. 介绍。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 DOI: 10.1146/annurev-av-09-120220-100001
Harris Lewin, Mike Roberts
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引用次数: 0
Vertebrate Chromosome Evolution. 脊椎动物染色体进化。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 Epub Date: 2020-11-13 DOI: 10.1146/annurev-animal-020518-114924
Joana Damas, Marco Corbo, Harris A Lewin

The study of chromosome evolution is undergoing a resurgence of interest owing to advances in DNA sequencing technology that facilitate the production of chromosome-scale whole-genome assemblies de novo. This review focuses on the history, methods, discoveries, and current challenges facing the field, with an emphasis on vertebrate genomes. A detailed examination of the literature on the biology of chromosome rearrangements is presented, specifically the relationship between chromosome rearrangements and phenotypic evolution, adaptation, and speciation. A critical review of the methods for identifying, characterizing, and visualizing chromosome rearrangements and computationally reconstructing ancestral karyotypes is presented. We conclude by looking to the future, identifying the enormous technical and scientific challenges presented by the accumulation of hundreds and eventually thousands of chromosome-scale assemblies.

由于DNA测序技术的进步促进了染色体尺度全基因组组装的产生,染色体进化的研究正经历着兴趣的复苏。本文综述了该领域的历史、方法、发现和当前面临的挑战,重点是脊椎动物基因组。详细检查了有关染色体重排的生物学文献,特别是染色体重排与表型进化、适应和物种形成之间的关系。对鉴定、表征和可视化染色体重排和计算重建祖先核型的方法进行了综述。最后,我们展望未来,确定了数百甚至最终数千个染色体规模组装的积累所带来的巨大技术和科学挑战。
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引用次数: 26
Strategies to Improve Poultry Food Safety, a Landscape Review. 提高家禽食品安全的策略,综述。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 Epub Date: 2020-11-06 DOI: 10.1146/annurev-animal-061220-023200
Steven C Ricke

Food safety remains a significant public health issue for the poultry industry. Foodborne pathogens can be in contact at all phases of poultry production, from initial hatch to processing and ultimately to retail and meal preparation. Salmonella and Campylobacter have been considered the primary foodborne pathogens associated with poultry. Both organisms are major causative agents of human foodborne illness. Limiting these pathogens in poultry production requires identifying their sources and routes of transmission. This involves the ability to isolate and precisely identify them using methodologies capable of discernment at the genome level. Interventions to reduce their occurrence in poultry production employ two basic strategies: prevention of establishment and elimination of already-established pathogens. This review provides an overview of current findings and prospects for further research on poultry food safety issues.

食品安全仍然是家禽业的一个重大公共卫生问题。食源性病原体可以在家禽生产的所有阶段接触,从最初孵化到加工,最终到零售和膳食制备。沙门氏菌和弯曲杆菌被认为是与家禽有关的主要食源性病原体。这两种微生物都是人类食源性疾病的主要病原体。在家禽生产中限制这些病原体需要确定其来源和传播途径。这包括使用能够在基因组水平上识别的方法分离和精确识别它们的能力。减少其在家禽生产中发生的干预措施采用两项基本战略:预防建立和消除已经建立的病原体。本文综述了家禽食品安全问题的最新研究成果和进一步研究的前景。
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引用次数: 13
Bacteriome Structure, Function, and Probiotics in Fish Larviculture: The Good, the Bad, and the Gaps. 鱼类幼体养殖中的菌群结构、功能和益生菌:好、坏和差距。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 Epub Date: 2020-11-30 DOI: 10.1146/annurev-animal-062920-113114
Nuno Borges, Tina Keller-Costa, Gracinda M M Sanches-Fernandes, António Louvado, Newton C M Gomes, Rodrigo Costa

Aquaculture is the fastest-growing sector in food production worldwide. For decades, research on animal physiology, nutrition, and behavior established the foundations of best practices in land-based fish rearing and disease control. Current DNA sequencing, bioinformatics, and data science technologies now allow deep investigations of host-associated microbiomes in a tractable fashion. Adequate use of these technologies can illuminate microbiome dynamics and aid the engineering of microbiome-based solutions to disease prevention in an unprecedented manner. This review examines molecular studies of bacterial diversity, function, and host immunitymodulation at early stages of fish development, where microbial infections cause important economic losses. We uncover host colonization and virulence factors within a synthetic assemblage of fish pathogens using high-end comparative genomics and address the use of probiotics and paraprobiotics as applicable disease-prevention strategies in fish larval and juvenile rearing. We finally propose guidelines for future microbiome research of presumed relevance to fish larviculture.

水产养殖是全球粮食生产中增长最快的部门。几十年来,对动物生理、营养和行为的研究为陆基鱼类养殖和疾病控制的最佳实践奠定了基础。当前的DNA测序、生物信息学和数据科学技术现在允许以一种易于处理的方式对宿主相关微生物组进行深入研究。充分利用这些技术可以阐明微生物组动力学,并以前所未有的方式帮助设计基于微生物组的疾病预防解决方案。本文综述了鱼类发育早期阶段细菌多样性、功能和宿主免疫调节的分子研究,其中微生物感染造成了重要的经济损失。我们利用高端比较基因组学揭示了鱼类病原体合成组合中的宿主定植和毒力因素,并解决了益生菌和副益生菌在鱼类幼鱼饲养中作为适用疾病预防策略的使用问题。我们最后提出了未来微生物组研究的指导方针,这些研究被认为与鱼类幼虫养殖有关。
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引用次数: 27
Epigenetic Regulation of the Nuclear and Mitochondrial Genomes: Involvement in Metabolism, Development, and Disease. 核和线粒体基因组的表观遗传调控:参与代谢、发育和疾病。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 DOI: 10.1146/annurev-animal-080520-083353
Justin C St John

Our understanding of the interactions between the nuclear and mitochondrial genomes is becoming increasingly important as they are extensively involved in establishing early development and developmental progression. Evidence from various biological systems indicates the interdependency between the genomes, which requires a high degree of compatibility and synchrony to ensure effective cellular function throughout development and in the resultant offspring. During development, waves of DNA demethylation, de novo methylation, and maintenance methylation act on the nuclear genome and typify oogenesis and pre- and postimplantation development. At the same time, significant changes in mitochondrial DNA copy number influence the metabolic status of the developing organism in a typically cell-type-specific manner. Collectively, at any given stage in development, these actions establish genomic balance that ensures each developmental milestone is met and that the organism's program for life is established.

我们对细胞核和线粒体基因组之间相互作用的理解正变得越来越重要,因为它们广泛地参与了早期发育和发育过程的建立。来自不同生物系统的证据表明,基因组之间存在相互依赖性,这需要高度的兼容性和同步性,以确保在整个发育过程中以及由此产生的后代中有效的细胞功能。在发育过程中,DNA去甲基化、新生甲基化和维护性甲基化的浪潮作用于核基因组,并决定了卵子发生和植入前后的发育。同时,线粒体DNA拷贝数的显著变化以典型的细胞类型特异性方式影响发育生物体的代谢状态。总的来说,在发育的任何特定阶段,这些行为建立了基因组平衡,确保每个发育里程碑都得到满足,生物体的生命程序得以建立。
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引用次数: 2
Toxoplasmosis: Recent Advances in Understanding the Link Between Infection and Host Behavior. 弓形虫病:了解感染与宿主行为之间联系的最新进展。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 Epub Date: 2020-11-02 DOI: 10.1146/annurev-animal-081720-111125
Stefanie K Johnson, Pieter T J Johnson

Humans, wildlife, and domestic animals are intimately linked through shared infections. Many parasites and pathogens use multiple host species, either opportunistically or sequentially, such that managing disease risk frequently requires a broader understanding of the ecological community. The coccidian protozoan Toxoplasma gondii infects more than one hundred species of vertebrates, ranging from bats to beluga whales. In humans, acute toxoplasmosis can have serious health consequences for immunocompromised individuals. Even amongst asymptomatic patients, however, toxoplasmosis has been linked to a range of behavioral alterations and conditions, such as changes in risk tolerance, neuroticism, mental illness, suicide, and accident proneness. Whether such links are causal or simply correlational has been the subject of intense study and debate; from an evolutionary standpoint, selection may favor parasite-induced alterations in host behavior that increase the likelihood a host is consumed by the definitive host-in this case a domestic or wild felid. Here, we examine current evidence for parasite-induced manipulations of host behavior, in both humans and other animals. We critically evaluate proposed mechanisms through which infection might influence host behavior, which range from inflammation in the brain to changes in hormones or neurotransmitters. Considering estimates that T. gondii may infect up to one-third of the global human population, we conclude by examining the implications of these changes for human behavior, individual fitness, and emergent cultural properties.

人类、野生动物和家畜通过共同感染密切联系在一起。许多寄生虫和病原体利用多种宿主物种,要么是机会性的,要么是顺序性的,因此管理疾病风险往往需要对生态群落有更广泛的了解。球虫原生动物弓形虫感染了一百多种脊椎动物,从蝙蝠到白鲸。在人类中,急性弓形虫病可对免疫功能低下的个体造成严重的健康后果。然而,即使在无症状患者中,弓形虫病也与一系列行为改变和状况有关,例如风险承受能力的改变、神经质、精神疾病、自杀和事故易感性。这些联系是因果关系还是仅仅是相关关系一直是激烈研究和辩论的主题;从进化的角度来看,选择可能倾向于寄生虫诱导的宿主行为改变,从而增加宿主被最终宿主(在这种情况下是家养或野生猫科动物)消耗的可能性。在这里,我们研究了目前在人类和其他动物中寄生虫诱导的宿主行为操纵的证据。我们批判性地评估了感染可能影响宿主行为的机制,其范围从大脑炎症到激素或神经递质的变化。考虑到弓形虫可能感染全球三分之一的人口,我们通过研究这些变化对人类行为、个体适应性和新兴文化属性的影响来得出结论。
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引用次数: 16
Genetic Variation and Hybridization in Evolutionary Radiations of Cichlid Fishes. 慈鲷进化辐射的遗传变异与杂交。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 Epub Date: 2020-11-16 DOI: 10.1146/annurev-animal-061220-023129
Hannes Svardal, Walter Salzburger, Milan Malinsky

Evolutionary radiations are responsible for much of the variation in biodiversity across taxa. Cichlid fishes are well known for spectacular evolutionary radiations, as they have repeatedly evolved into large and phenotypically diverse arrays of species. Cichlid genomes carry signatures of past events and, at the same time, are the substrate for ongoing evolution. We survey genome-wide data and the available literature covering 438 cichlid populations (412 species) across multiple radiations to synthesize information about patterns and sharing of genetic variation. Nucleotide diversity within species is low in cichlids, with 92% of surveyed populations having less diversity than the median value found in other vertebrates. Divergence within radiations is also low, and a large proportion of variation is shared among species due to incomplete lineage sorting and widespread hybridization. Population genetics therefore provides a suitable conceptual framework for evolutionary genomic studies of cichlid radiations. We focus in detail on the roles of hybridization in shaping the patterns of genetic variation and in promoting cichlid diversification.

进化辐射是导致不同分类群生物多样性变化的主要原因。慈鲷以其惊人的进化辐射而闻名,因为它们已经反复进化成大型和表型多样化的物种阵列。慈鲷基因组携带着过去事件的特征,同时也是正在进行的进化的基础。我们调查了438个慈鲷种群(412种)的全基因组数据和现有文献,以综合有关遗传变异模式和共享的信息。慈鲷的物种内核苷酸多样性较低,92%的被调查种群的多样性低于其他脊椎动物的中位数。辐射内的差异也很低,由于不完整的谱系分类和广泛的杂交,很大比例的变异在物种之间共享。因此,群体遗传学为慈鲷辐射的进化基因组研究提供了一个合适的概念框架。我们将详细讨论杂交在塑造遗传变异模式和促进慈鲷多样化中的作用。
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引用次数: 18
New Insights in Muscle Biology that Alter Meat Quality. 改变肉质的肌肉生物学新见解。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 Epub Date: 2020-12-18 DOI: 10.1146/annurev-animal-021419-083902
Sulaiman K Matarneh, Saulo L Silva, David E Gerrard

Fresh meat quality is greatly determined through biochemical changes occurring in the muscle during its conversion to meat. These changes are key to imparting a unique set of characteristics on fresh meat, including its appearance, ability to retain moisture, and texture. Skeletal muscle is an extremely heterogeneous tissue composed of different types of fibers that have distinct contractile and metabolic properties. Fiber type composition determines the overall biochemical and functional properties of the muscle tissue and, subsequently, its quality as fresh meat. Therefore, changing muscle fiber profile in living animals through genetic selection or environmental factors has the potential to modulate fresh meat quality. We provide an overview of the biochemical processes responsible for the development of meat quality attributes and an overall understanding of the strong relationship between muscle fiber profile and meat quality in different meat species.

鲜肉的品质在很大程度上取决于肌肉在转化为肉的过程中发生的生化变化。这些变化是赋予鲜肉独特特性的关键,包括它的外观、保持水分的能力和质地。骨骼肌是一种由具有不同收缩和代谢特性的不同类型纤维组成的极不均匀的组织。纤维类型组成决定了肌肉组织的整体生化和功能特性,从而决定了其作为鲜肉的品质。因此,通过遗传选择或环境因素改变活体动物的肌肉纤维特征有可能调节鲜肉品质。我们概述了负责肉质属性发展的生化过程,并全面了解了不同肉类物种中肌纤维剖面与肉质之间的密切关系。
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引用次数: 39
Coral Probiotics: Premise, Promise, Prospects. 珊瑚益生菌:前提、承诺、前景。
IF 12 1区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Pub Date : 2021-02-16 Epub Date: 2020-12-15 DOI: 10.1146/annurev-animal-090120-115444
Raquel S Peixoto, Michael Sweet, Helena D M Villela, Pedro Cardoso, Torsten Thomas, Christian R Voolstra, Lone Høj, David G Bourne

The use of Beneficial Microorganisms for Corals (BMCs) has been proposed recently as a tool for the improvement of coral health, with knowledge in this research topic advancing rapidly. BMCs are defined as consortia of microorganisms that contribute to coral health through mechanisms that include (a) promoting coral nutrition and growth, (b) mitigating stress and impacts of toxic compounds, (c) deterring pathogens, and (d) benefiting early life-stage development. Here, we review the current proposed BMC approach and outline the studies that have proven its potential to increase coral resilience to stress. We revisit and expand the list of putative beneficial microorganisms associated with corals and their proposed mechanismsthat facilitate improved host performance. Further, we discuss the caveats and bottlenecks affecting the efficacy of BMCs and close by focusing on the next steps to facilitate application at larger scales that can improve outcomes for corals and reefs globally.

近年来,随着这一研究领域的知识迅速发展,利用珊瑚有益微生物(BMCs)作为改善珊瑚健康的一种工具被提出。bmc被定义为通过以下机制促进珊瑚健康的微生物群落:(a)促进珊瑚营养和生长,(b)减轻有毒化合物的压力和影响,(c)阻止病原体,以及(d)有利于生命早期发育。在这里,我们回顾了目前提出的BMC方法,并概述了已经证明其有可能增加珊瑚对压力的恢复能力的研究。我们重新审视并扩展了与珊瑚相关的假定有益微生物的列表,以及它们促进改善宿主性能的拟议机制。此外,我们讨论了影响bmc功效的警告和瓶颈,并重点讨论了下一步的步骤,以促进更大规模的应用,从而改善全球珊瑚和珊瑚礁的结果。
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引用次数: 89
期刊
Annual Review of Animal Biosciences
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