Investment in higher order central processing regions is not constrained by brain size in social insects

Proc Biol Sci. 2014 Apr 16;281(1784):20140217. doi: 10.1098/rspb.2014.0217. Print 2014 Jun 7.

Abstract

The extent to which size constrains the evolution of brain organization and the genesis of complex behaviour is a central, unanswered question in evolutionary neuroscience. Advanced cognition has long been linked to the expansion of specific brain compartments, such as the neocortex in vertebrates and the mushroom bodies in insects. Scaling constraints that limit the size of these brain regions in small animals may therefore be particularly significant to behavioural evolution. Recent findings from studies of paper wasps suggest miniaturization constrains the size of central sensory processing brain centres (mushroom body calyces) in favour of peripheral, sensory input centres (antennal and optic lobes). We tested the generality of this hypothesis in diverse eusocial hymenopteran species (ants, bees and wasps) exhibiting striking variation in body size and thus brain size. Combining multiple neuroanatomical datasets from these three taxa, we found no universal size constraint on brain organization within or among species. In fact, small-bodied ants with miniscule brains had mushroom body calyces proportionally as large as or larger than those of wasps and bees with brains orders of magnitude larger. Our comparative analyses suggest that brain organization in ants is shaped more by natural selection imposed by visual demands than intrinsic design limitations.

Keywords: allometry; ants; mushroom bodies.

Publication types

  • Research Support, Non-U.S. Gov't
  • Research Support, U.S. Gov't, Non-P.H.S.

MeSH terms

  • Animals
  • Ants / anatomy & histology
  • Ants / physiology*
  • Bees / anatomy & histology
  • Bees / physiology*
  • Biological Evolution*
  • Body Size
  • Brain / anatomy & histology
  • Brain / physiology
  • Cognition
  • Organ Size
  • Wasps / anatomy & histology
  • Wasps / physiology*