bioRxiv Science⌕ Search

Biology subjects

Annagiri, S.

Publications and source records attributed to Annagiri, S..

3 recordsLinked to original sources

Marching with ants to a new nest

In this review, we journey with Diacamma indicum a Ponerine ant over the last decade as they relocate to new nests and discover the challenges they face along the way and how they solve them. Colony relocation is a goal oriented dynamic task that involves all the colony members and impacts the colonies fitness. After explaining how I initiated this journey, we examine colony composition of this species by analysing data from 1200 colonies collected over the last 13 years. On average colonies are constituted with 89.35 adult females, 0.29 males and 56.6 brood items of different development stages and these were significantly impacted by seasonality with Pre monsoon having the highest numbers. After explaining how colonies are collected and maintained in the lab, we explore the architectural components of the subterrain nests built by this species in the natural habitat. Colonies live in relatively simple single chambered nest that does not change significantly across seasons and consists of an entrance tunnel and a secondary runoff tunnel. All members of the colony are recruited to the new nest through tandem running and this species shows the highest documented tandem running speeds at 4.35 body lengths per second and a path efficiency of 83.95% with only 2.4% of tandem runs being unsuccessful in the natural habitat. Even in lab conditions, when colonies are given defined paths of different lengths, colonies showed significant preference to travel through short paths, highlighting their ability to optimizes their path even in the absence of chemical trails. A combination of experiments in the natural habitat and controlled experiments in the lab which are anchored in the umwelt of the organism has enabled us to understand how D. indicum functions and reveals the selection forces that are operating on the organization and performances of relocation. Our journey has brought to light several answers but has opened several more avenues for exploration branching out in different directions. With time and dedicated minds, we hope to continue on this route to marvel at the achievements of these superorganisms.

ecology↗

Intraspecific competition for a nest and its implication for the fitness of relocating ant colonies

Competitive interaction is important in structuring species composition of a habitat. Several studies have been conducted on intraspecific competition but little is known in the context of the goal-oriented task of colony relocation. Current study examines how relocating colonies respond when the new nest is a limiting resource. Examining this competition across equal sized colonies (n=17) and unequal sized colonies (n=14), we found that most trails had a clear outcome with one of the colonys occupying the new nest, while 25% of colonies merged. Larger colonies had a significantly higher chance of occupying the new nest and outcompeted the smaller colonies in most of the cases. Colonies that had lower latency to discover and more explorers had a significantly higher chance of gaining control of the new nest and interesting the level of aggression shown by both the competing colonies was comparable. Spatio-temporal analysis of the aggression revealed that the area surrounding the old, new nest and the time at which transportation occurs has higher levels of aggression. While both the competing colonies stole pupa from each other, the mean number of successful stealing by the larger colonies was 8 times larger than smaller colonies while stealing was comparable between similar sized colonies. Relocating colonies experienced significantly more mortality as compared to controls and competition for the new nest imposed additional mortality on losing colonies over the short time. Due to the potential merging of colonies, incorporation of stolen brood and increased mortality, the overall fitness of the colonies is likely to be negatively impacted due to intraspecific competition for a new nest.

ecology↗

Cryptic functional diversity in ant tandem runs

Ants have evolved diverse recruitment methods to guide colony members to valuable resources, such as food or nest sites. One of these methods, tandem running, consists of an informed leader directly guiding a naive follower every step of the way from nest to resource. Although this behavior appears superficially similar in the different ant taxa in which it has independently evolved, this similarity could conceal underlying functional and mechanistic differences. Here we present a combined network and information-theoretic analysis, which reveals fundamental differences in the tandem recruitment between two distantly related ant genera, Temnothorax and Diacamma. Temnothorax uses tandem running to recruit additional recruiters, whereas Diacamma uses it principally to move the passive majority of the colony, a task that Temnothorax accomplishes with a different behavior, social carrying. Accordingly, the structure of the tandem run recruitment networks of Diacamma was different from those of Temnothorax, with Diacamma networks more closely resembling the social carrying networks of Temnothorax. Furthermore, an information-theoretic analysis of the spatial trajectories of leaders and followers revealed that Diacamma tandem runs lack bidirectional information flow, the signature of route-learning in Temnothorax tandem runs. These results suggest that Diacamma uses tandem runs not to share information, but to transport nestmates. By quantifying the cryptic diversity of communication behavior, this study increases the resolution of our understanding of animal societies.

animal behavior and cognition↗