Cracking the omega code: hydraulic architecture of the cycad leaf axis

Ann Bot. 2018 Mar 5;121(3):483-488. doi: 10.1093/aob/mcx181.

Abstract

Background and aims: The leaf axis of members of the order Cycadales ('cycads') has long been recognized by its configuration of independent vascular bundles that, in transverse section, resemble the Greek letter omega (hence the 'omega pattern'). This provides a useful diagnostic character for the order, especially when applied to paleobotany. The function of this pattern has never been elucidated. Here we provide a three-dimensional analysis and explain the pattern in terms of the hydraulic architecture of the pinnately compound cycad leaf.

Methods: The genus Cycas was used as a simple model, because each leaflet is supplied by a single vascular bundle. Sequential sectioning was conducted throughout the leaf axis and photographed with a digital camera. Photographs were registered and converted to a cinematic format, which provided an objective method of analysis.

Key results: The omega pattern in the petiole can be sub-divided into three vascular components, an abaxial 'circle', a central 'column' and two adaxial 'wings', the last being the only direct source of vascular supply to the leaflets. Each leaflet is supplied by a vascular bundle that has divided or migrated directly from the closest wing bundle. There is neither multiplication nor anastomoses of vascular bundles in the other two components. Thus, as one proceeds from base to apex along the leaf axis, the number of vascular bundles in circle and column components is reduced distally by their uniform migration throughout all components. Consequently, the distal leaflets are irrigated by the more abaxial bundles, guaranteeing uniform water supply along the length of the axis.

Conclusions: The omega pattern exemplifies one of the many solutions plants have achieved in supplying distal appendages of an axis with a uniform water supply. Our method presents a model that can be applied to other genera of cycads with more complex vascular organization.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Cycadopsida / anatomy & histology*
  • Cycadopsida / physiology
  • Cycadopsida / ultrastructure
  • Models, Biological
  • Plant Leaves / anatomy & histology*
  • Plant Leaves / physiology
  • Plant Leaves / ultrastructure
  • Water / metabolism

Substances

  • Water