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A Genomic Approach to Suberin Biosynthesis and Cork Differentiation

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Journal Plant Physiol
Specialty Physiology
Date 2007 Mar 14
PMID 17351057
Citations 54
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Abstract

Cork (phellem) is a multilayered dead tissue protecting plant mature stems and roots and plant healing tissues from water loss and injuries. Cork cells are made impervious by the deposition of suberin onto cell walls. Although suberin deposition and cork formation are essential for survival of land plants, molecular studies have rarely been conducted on this tissue. Here, we address this question by combining suppression subtractive hybridization together with cDNA microarrays, using as a model the external bark of the cork tree (Quercus suber), from which bottle cork is obtained. A suppression subtractive hybridization library from cork tree bark was prepared containing 236 independent sequences; 69% showed significant homology to database sequences and they corresponded to 135 unique genes. Out of these genes, 43.5% were classified as the main pathways needed for cork biosynthesis. Furthermore, 19% could be related to regulatory functions. To identify genes more specifically required for suberin biosynthesis, cork expressed sequence tags were printed on a microarray and subsequently used to compare cork (phellem) to a non-suberin-producing tissue such as wood (xylem). Based on the results, a list of candidate genes relevant for cork was obtained. This list includes genes for the synthesis, transport, and polymerization of suberin monomers such as components of the fatty acid elongase complexes, ATP-binding cassette transporters, and acyltransferases, among others. Moreover, a number of regulatory genes induced in cork have been identified, including MYB, No-Apical-Meristem, and WRKY transcription factors with putative functions in meristem identity and cork differentiation.

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References
1.
Abdulrazzak N, Pollet B, Ehlting J, Larsen K, Asnaghi C, Ronseau S . A coumaroyl-ester-3-hydroxylase insertion mutant reveals the existence of nonredundant meta-hydroxylation pathways and essential roles for phenolic precursors in cell expansion and plant growth. Plant Physiol. 2005; 140(1):30-48. PMC: 1326029. DOI: 10.1104/pp.105.069690. View

2.
Agrawal V, Kolattukudy P . Biochemistry of Suberization: omega-Hydroxyacid Oxidation in Enzyme Preparations from Suberizing Potato Tuber Disks. Plant Physiol. 1977; 59(4):667-72. PMC: 542470. DOI: 10.1104/pp.59.4.667. View

3.
Sabba R, Lulai E . Histological analysis of the maturation of native and wound periderm in potato (Solanum tuberosum L.) Tuber. Ann Bot. 2002; 90(1):1-10. PMC: 4233851. DOI: 10.1093/aob/mcf147. View

4.
Quiroga M, Guerrero C, Botella M, Barcelo A, Amaya I, Medina M . A tomato peroxidase involved in the synthesis of lignin and suberin. Plant Physiol. 2000; 122(4):1119-27. PMC: 58946. DOI: 10.1104/pp.122.4.1119. View

5.
Gorecka K, Konopka-Postupolska D, Hennig J, Buchet R, Pikula S . Peroxidase activity of annexin 1 from Arabidopsis thaliana. Biochem Biophys Res Commun. 2005; 336(3):868-75. DOI: 10.1016/j.bbrc.2005.08.181. View