Anatomical features associated with water transport in imperforate tracheary elements of vessel-bearing angiosperms
Open Access
- 8 March 2011
- journal article
- research article
- Published by Oxford University Press (OUP) in Annals of Botany
- Vol. 107 (6) , 953-964
- https://doi.org/10.1093/aob/mcr042
Abstract
Imperforate tracheary elements (ITEs) in wood of vessel-bearing angiosperms may or may not transport water. Despite the significance of hydraulic transport for defining ITE types, the combination of cell structure with water transport visualization in planta has received little attention. This study provides a quantitative analysis of structural features associated with the conductive vs. non-conductive nature of ITEs. Visualization of water transport was studied in 15 angiosperm species by dye injection and cryo-scanning electron microscopy. Structural features of ITEs were examined using light and electron microscopy. ITEs connected to each other by pit pairs with complete pit membranes contributed to water transport, while cells showing pit membranes with perforations up to 2 µm were hydraulically not functional. A close relationship was found between pit diameter and pit density, with both characters significantly higher in conductive than in non-conductive cells. In species with both conductive and non-conductive ITEs, a larger diameter was characteristic of the conductive cells. Water transport showed no apparent relationship with the length of ITEs and vessel grouping. The structure and density of pits between ITEs represent the main anatomical characters determining water transport. The pit membrane structure of ITEs provides a reliable, but practically challenging, criterion to determine their conductive status. It is suggested that the term tracheids should strictly be used for conductive ITEs, while fibre-tracheids and libriform fibres are non-conductive.Keywords
This publication has 42 references indexed in Scilit:
- Do quantitative vessel and pit characters account for ion‐mediated changes in the hydraulic conductance of angiosperm xylem?New Phytologist, 2010
- Xylem water-conducting patterns of 34 broadleaved evergreen trees in southern JapanTrees, 2010
- The evolution of water transport in plants: an integrated approachGeobiology, 2010
- The Impact of Vessel Size on Vulnerability Curves: Data and Models for Within-Species Variability in Saplings of Aspen,Populus tremuloidesMichxPlant, Cell & Environment, 2010
- Vessel grouping patterns in subfamilies Apocynoideae and Periplocoideae confirm phylogenetic value of wood structure within ApocynaceaeAmerican Journal of Botany, 2009
- Functional repair of embolized vessels in maize roots after temporal drought stress, as demonstrated by magnetic resonance imagingNew Phytologist, 2009
- Logistic regression in comparative wood anatomy: tracheid types, wood anatomical terminology, and new inferences from the Carlquist and Hoekman southern Californian data setBotanical Journal of the Linnean Society, 2007
- Inter‐ and intraspecific structural variations among intervascular pit membranes, as revealed by field‐emission scanning electron microscopyAmerican Journal of Botany, 2005
- Intervascular pit membranes with a torus in the wood of Ulmus (Ulmaceae) and related generaNew Phytologist, 2004
- Preparation of Thin Sections of Synthetic Resins and Wood-Resin Composites, and a New Macerating Method for WoodNature, 1945