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Biology subjects

Moran, M. N.

Publications and source records attributed to Moran, M. N..

2 recordsLinked to original sources

Comparative genetic study of the colony structure and colony spatial distribution between the higher termite Amitermes parvulus and the lower, subterranean termite Reticulitermes flavipes in an urban environment

In insects, ecological competition has often resulted in phenotypic changes and modifications to foraging areas. In termites - and social insects as a whole - colonies cannot easily escape competition through the relocation of their colony. In these species, the outcomes of inter and intra-specific competition are influenced by different life history traits, such as colony size, breeding system (number and types of reproductives), food preference, tunneling patterns, nest site selection, and antagonism between colonies. Here, we investigated variation in breeding system and spatial distribution among colonies of a higher termite Amitermes parvulus and a subterranean termite Reticulitermes flavipes within an urban landscape. We first developed microsatellite markers as a tool to study these life history traits in A. parvulus. Second, we assessed competitive exclusion or tolerance of A. parvulus and R. flavipes colonies by determining their fine-scale distribution using monitoring stations on a grid site, and their large-scale distribution across an urban landscape. Third, we investigated the breeding system of A. parvulus colonies. We showed that the numerous colonies of R. flavipes inhabiting a restricted area contrast with the few, but spatially expansive colonies of A. parvulus, suggesting these species face different degrees of intra-specific competition. We showed that colonies of A. parvulus frequently merged together, and all of them were headed by inbred neotenic reproductives, two characteristics rarely observed in higher termites. Overall, our study revealed drastic differences in colony structure, breeding systems and foraging ranges between the two species. These differences may reflect differences in food preference and food availability between the two species allowing their co-existence within the same urban environment.

evolutionary biology↗

Monopolization at the cost of desiccation: Reduced waterproofing cuticular hydrocarbons impairs nestmate discrimination in an ant

After humans, social insects represent one of the most complex groups of social organisms, relying on a well-organized communication system among colony members. The transfer of information among individuals is primarily based on cuticular hydrocarbons (CHC). These chemical compounds, produced by all insects, initially evolved to prevent water loss1. They were subsequently co-opted as semiochemicals to communicate various types of information. This includes nestmate recognition in social insects2,3, enabling different colonies to partition resources by ousting conspecific competitors. In this study, we report the near complete loss of CHC production by workers of the ant Nylanderia fulva. This absence of CHCs is a double-edged sword. It represents a causative agent in the ecological success of this ant species -- enabling the development of a large supercolony in its invasive range through limited ability to differentiate nestmates-- but increases the risk of suffering ecological stress through desiccation.

evolutionary biology↗