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62 results for “social insect”

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dryad36/100

Juvenile social experience and practice have a switch-like influence on adult mate preferences in an insect

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publicDec 2020View details →
dryad36/100

Data from: DNA methylation reflects tissue and caste identity but not parasitism-induced changes in a social insect

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publicDec 2025View details →
dryad36/100

Diet composition and social environment determine food consumption, phenotype and fitness in an omnivorous insect

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publicApr 2020View details →
dryad36/100

Data from: Genotype and social environment influence female-female interactions in a non-social insect

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publicJun 2025View details →
dryad32/100

Data from: Young but not defenseless: antifungal activity during embryonic development of a social insect

Termites live in environments heavily colonized by diverse microbial communities, including pathogens. Eggs laid within the nest likely experience similar pathogenic pressures as their older nestmates. Consequently, they may have also been under selective pressures to be immune-competent. Through in vitro experiments, we tested the ontogeny, location and strength of embryos' antifungal activity against the fungus Metarhizium brunneum. Extraembryonic washes and intraembryonic components were incubated with fungal conidia, which was then scored for viability. Fungistatic activity was location- and stage-dependent. Extraembryonic washes had relatively weak antifungal activity. Conversely, intraembryonic contents were highly antifungal, exhibiting increased potency through development. Boiling both embryonic washes and intraembryonic contents rescued conidia viability, indicating the antifungal agent(s) is (are) likely proteinaceous. Embryonic protein profiles shifted from putative vitellogenins in young embryos to multiple proteins in subsequent stages, suggesting that the increase in fungistatic activity may be due to the expression of endogenous proteins during embryogenesis. This study is the first to address embryonic antifungal activity in a hemimetabolous eusocial taxon. Our results support the hypothesis that microbes have been significant agents of selection, fostering the evolution of antifungal properties even in the most immature and supposed, most vulnerable stage of development.

opencc-zeroDec 2018View details →
dryad32/100

Data from: Strict monandry in the ponerine army ant genus Simopelta suggests that colony size and complexity drive mating system evolution in social insects

Altruism in social insects has evolved between closely related full-siblings. It is therefore of considerable interest why some groups have secondarily evolved low within-colony relatedness, which in turn affects the relatedness incentives of within-colony cooperation and conflict. The highest queen mating frequencies, and therefore among the lowest degrees of colony relatedness, occur in Apis honeybees and army ants of the subfamilies Aenictinae, Ecitoninae, and Dorylinae, suggesting that common life-history features such as reproduction by colony fission and male biased numerical sex-ratios have convergently shaped these mating systems. Here we show that ponerine army ants of the genus Simopelta, which are distantly related but similar in general biology to other army ants, have strictly monandrous queens. Preliminary data suggest that workers reproduce in queenright colonies, which is in sharp contrast to other army ants. We hypothesize that differences in mature colony size and social complexity may explain these striking discrepancies.

opencc-zeroDec 2009View details →
dryad32/100

Data from: The value of oviposition timing, queen presence and kinship in a social insect

Reproductive cooperation confers benefits, but simultaneously creates conflicts among cooperators. Queens in multi-queen colonies of ants share a nest and its resources, but reproductive competition among queens often results in unequal reproduction. Two mutually non-exclusive factors may produce such inequality in reproduction: worker intervention or queen traits. Workers may intervene by favouring some queens over others, owing to either kinship or queen signals. Queens may differ in their intrinsic fecundity at the onset of oviposition or in their timing of the onset of oviposition, leading to their unequal representation in the brood. Here, we test the role of queen kin value (relatedness) to workers, timing of the onset of oviposition and signals of presence by queens in determining the maternity of offspring. We show that queens of the ant Formica fusca gained a significantly higher proportion of sexuals in the brood when ovipositing early, and that the presence of a caged queen resulted in a significant increase in both her share of sexual brood and her overall reproductive share. Moreover, the lower the kin value of the queen, the more the workers invested in their own reproduction by producing males. Our results show that both kinship and breeding phenology influence the outcome of reproductive conflicts, and the balance of direct and indirect fitness benefits in the multi-queen colonies of F. fusca.

opencc-zeroDec 2012View details →
dryad32/100

Data from: Strict monandry in the ponerine army ant genus Simopelta suggests that colony size and complexity drive mating system evolution in social insects

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publicNov 2010View details →
dryad32/100

Data from: Density of antennal sensilla influences efficacy of communication in a social insect

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publicJul 2013View details →
dryad32/100

Data from: The value of oviposition timing, queen presence and kinship in a social insect

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publicJul 2013View details →
dryad32/100

Data from: Location-specific cuticular hydrocarbon signals in a social insect

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publicMar 2016View details →
dryad32/100

Data from: Young but not defenseless: antifungal activity during embryonic development of a social insect

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publicJul 2020View details →
dryad28/100

Young but not defenseless: Antifungal activity during embryonic development of a social insect

<p>      Termites live in environments heavily colonized by diverse microbial communities, including pathogens. Eggs laid within the nest likely experience similar pathogenic pressures as their older nestmates. Consequently, they may have also been under selective pressures to be immune-competent. Through <i>in vitro</i> experiments, we tested the ontogeny, location and strength of embryos' antifungal activity against the fungus <i>Metarhizium brunneum</i>. Extraembryonic washes and intraembryonic components were incubated with fungal conidia, which was then scored for viability. Fungistatic activity was location- and stage-dependent. Extraembryonic washes had relatively weak antifungal activity. Conversely, intraembryonic contents were highly antifungal, exhibiting increased potency through development. Boiling both embryonic washes and intraembryonic contents rescued conidia viability, indicating the antifungal agent(s) is (are) heat-sensitive, and likely proteinaceous. Embryonic protein profiles shifted from putative vitellogenins in young embryos to multiple proteins in subsequent stages, suggesting that the increase in fungistatic activity may be due to the expression of endogenous proteins during embryogenesis. This study is the first to address embryonic antifungal activity in a hemimetabolous, eusocial taxon. Our results support the hypothesis that microbes have been significant agents of selection, fostering the evolution of antifungal properties in termite eggs, the most immature and supposed, most vulnerable stage of development.</p>

opencc-zeroAug 2020View details →
dryad28/100

Data from: Conserved class of queen pheromones stops social insect workers from reproducing

A major evolutionary transition to eusociality with reproductive division of labor between queens and workers has arisen independently at least 10 times in the ants, bees, and wasps. Pheromones produced by queens are thought to play a key role in regulating this complex social system, but their evolutionary history remains unknown. Here, we identify the first sterility-inducing queen pheromones in a wasp, bumblebee, and desert ant and synthesize existing data on compounds that characterize female fecundity in 64 species of social insects. Our results show that queen pheromones are strikingly conserved across at least three independent origins of eusociality, with wasps, ants, and some bees all appearing to use nonvolatile, saturated hydrocarbons to advertise fecundity and/or suppress worker reproduction. These results suggest that queen pheromones evolved from conserved signals of solitary ancestors.

opencc-zeroDec 2013View details →
dryad28/100

Data from: Colony and individual life-history responses to temperature in a social insect pollinator

1. Pollinating insects are of major ecological and commercial importance, yet they may be facing ecological disruption from a changing climate. Despite this threat, few studies have investigated the life-history responses of pollinators to experimentally controlled changes in temperature, which should be especially informative for species with complex life histories such as eusocial insects. 2. This study uses the key pollinator Bombus terrestris, a eusocial bumblebee with an annual colony cycle, to determine how temperature affects life-history traits at both individual and colony levels. 3. In two laboratory experiments, we reared B. terrestris colonies at either 20 or 25 °C, and measured differences in a set of life-history traits including colony longevity, queen longevity, worker longevity, production of workers, production of sexuals (queen and male production) and growth schedule, as well as effects on thermoregulatory behaviours. 4. Higher rearing temperature had a significant positive effect on colony longevity in one of the two experiments but no significant effects on queen or worker longevity. Higher rearing temperature significantly increased colony size but did not affect the timing of peak colony size. It was also associated with significantly higher queen production but had no effect on the production of workers or males or the timing of male production. Higher temperature colonies exhibited significantly more wing fanning by workers and significantly less wax canopy construction. Hence, an increase in rearing temperature of a few degrees increased colony longevity, colony size and queen production. However, individual longevity was not affected and so may have been buffered by changes in costly thermoregulatory behaviours. 5. We conclude that eusocial insects may show complex phenotypic responses to projected temperature increases under climate change, including effects on productivity and reproduction at the colony level. Such effects should be considered when predicting the impact of climate change on the provision of essential pollination services.

opencc-zeroDec 2014View details →
dryad28/100

Data from: Feces production as a form of social immunity in an insect with facultative maternal care

Background: Social animals have the unique capability of mounting social defenses against pathogens. Over the last decades, social immunity has been extensively studied in species with obligatory and permanent forms of social life. However, its occurrence in less derived social systems and thus its role in the early evolution of group-living remains unclear. Here, we investigated whether lining nests with feces is a form of social immunity against microbial growth in the European earwig Forficula auricularia, an insect with temporary family life and facultative maternal care. Results: Using a total of 415 inhibition zone assays, we showed that earwig feces inhibit the growth of two GRAM+ bacteria, two fungi, but not of a GRAM- bacteria. These inhibitions did not result from the consumed food or the nesting environment. We then demonstrated that the antimicrobial activity against fungus was higher in offspring than maternal feces, but that this difference was absent against bacteria. Finally, we showed that family interactions inhibited the antibacterial activity of maternal frass against one of the two GRAM+ bacteria, whereas they had no effect on the one of nymphal frass. By contrast, antifungal activities of the frass were independent of mother-offspring interactions. Conclusion: These results demonstrate that social immunity occurs in a species with simple and facultative social life, and thus shed light on the general importance of this process in the evolution of group-living. These results also emphasize that defecation can be under selection for other life-history traits than simple waste disposal.

opencc-zeroDec 2014View details →
dryad28/100

Data from: Reduced cellular immune response in social insect lineages

Social living poses challenges for individual fitness because of the increased risk of disease transmission among conspecifics. Despite this challenge, sociality is an evolutionarily successful lifestyle, occurring in the most abundant and diverse group of organisms on earth—the social insects. Two contrasting hypotheses predict the evolutionary consequences of sociality on immune systems. The social group hypothesis posits that sociality leads to stronger individual immune systems because of the higher risk of disease transmission in social species. By contrast, the relaxed selection hypothesis proposes that social species have evolved behavioural immune defences that lower disease risk within the group, resulting in lower immunity at the individual level. We tested these hypotheses by measuring the encapsulation response in 11 eusocial and non-eusocial insect lineages. We built phylogenetic mixed linear models to investigate the effect of behaviour, colony size and body size on cellular immune response. We found a significantly negative effect of colony size on encapsulation response (Markov chain Monte Carlo generalized linear mixed model (mcmcGLMM) p &lt; 0.05; phylogenetic generalized least squares (PGLS) p &lt; 0.05). Our findings suggest that insects living in large societies may rely more on behavioural mechanisms, such as hygienic behaviours, than on immune function to reduce the risk of disease transmission among nest-mates.

opencc-zeroDec 2015View details →
dryad28/100

Data from: Pace-of-life in a social insect: behavioral syndromes in ants shift along a climatic gradient

Behavioral syndromes are correlations between behavioral traits, but their selective advantage under different environmental conditions is not well understood. Here, we used the pace-of-life hypothesis to predict how behavioral syndromes could vary along climatic gradients. This hypothesis states that populations experiencing different ecological conditions should differ in suites of physiological characteristics associated with behavioral and life-history traits. We examined the persistence of behavioral syndromes at multiple levels in the ant Temnothorax longispinosus along a climatic gradient in north-eastern USA. "Across populations", we predicted that proactive phenotypes, which show higher activity, aggression and exploration, are more likely to persist in warmer climates. "Within populations", we expected positive associations among proactive behaviors to be more pronounced at warmer sites. Additionally, we measured colony productivity to test whether deviation from the population-level syndrome influences their success, and whether such deviations could vary among populations. Behavioral syndromes clearly occurred across populations, with colonies from warmer environments exhibiting more exploration and foraging but slightly less aggressiveness than colonies from colder sites. However, the presence of behavioral syndromes within sites was population-specific. Positive associations between foraging, exploration and aggression, albeit rarely found, were more pronounced at the warmest sites, whereas negative associations were more common at colder sites. Furthermore, colonies from colder environments showed higher syndrome deviations than colonies from warmer environments, which may be linked to resource limitation and may also negatively affect colony productivity. This study partially corroborates the pace-of-life hypothesis and yields insights into the adaptive value of behavioral syndromes along climatic gradients.

opencc-zeroDec 2016View details →
dryad28/100

Data from: Paternal signature in kin recognition cues of a social insect: concealed in juveniles, revealed in adults

Kin recognition is a key mechanism to direct social behaviours towards related individuals or avoid inbreeding depression. In insects, recognition is generally mediated by cuticular hydrocarbon (CHC) compounds, which are partly inherited from parents. However, in social insects, potential nepotistic conflicts between group members from different patrilines are predicted to select against the expression of patriline-specific signatures in CHC profiles. Whereas this key prediction in the evolution of insect signalling received empirical support in eusocial insects, it remains unclear whether it can be generalized beyond eusociality to less-derived forms of social life. Here, we addressed this issue by manipulating the number of fathers siring clutches tended by females of the European earwig, Forficula auricularia, analysing the CHC profiles of the resulting juvenile and adult offspring, and using discriminant analysis to estimate the information content of CHC with respect to the maternal and paternal origin of individuals. As predicted, if paternally inherited cues are concealed during family life, increases in mating number had no effect on information content of CHC profiles among earwig juveniles, but significantly decreased the one among adult offspring. We suggest that age-dependent expression of patriline-specific cues evolved to limit the risks of nepotism as family-living juveniles and favour sibling-mating avoidance as group-living adults. These results highlight the role of parental care and social life in the evolution of chemical communication and recognition cues.

opencc-zeroDec 2013View details →
dryad28/100

Data from: Patterns of paternity skew among polyandrous social insects: What can they tell us about the potential for sexual selection?

Monogamy results in high genetic relatedness among offspring and thus it is generally assumed to be favoured by kin selection. Female multiple mating (polyandry) has nevertheless evolved several times in the social Hymenoptera (ants, bees and wasps), and a substantial amount of work has been conducted to understand its costs and benefits. Relatedness and inclusive fitness benefits are, however, not only influenced by queen mating frequency but also by paternity skew, which is a quantitative measure of paternity biases among the offspring of polyandrous females. We performed a large scale phylogenetic analysis of paternity skew across polyandrous social Hymenoptera. We found a general and significant negative association between paternity frequency and paternity skew. High paternity skew, which increases relatedness amongst colony members and thus maximizes inclusive fitness gains, characterized species with low paternity frequency. However, species with highly polyandrous queens had low paternity skew, with paternity equalized amongst potential sires. Equal paternity shares among fathers are expected to maximize fitness benefits derived from genetic diversity among offspring. We discuss the potential for post-copulatory sexual selection to influence patterns of paternity in social insects, and suggest that sexual selection may have played a key, yet overlooked role in social evolution.

opencc-zeroDec 2011View details →

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International Brain Laboratory public data

The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.

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