Carbohydrate-Active Enzymes Involved in the Secondary Cell Wall Biogenesis in Hybrid Aspen

Author:

Aspeborg Henrik1,Schrader Jarmo1,Coutinho Pedro M.1,Stam Mark1,Kallas Åsa1,Djerbi Soraya1,Nilsson Peter1,Denman Stuart1,Amini Bahram1,Sterky Fredrik1,Master Emma1,Sandberg Göran1,Mellerowicz Ewa1,Sundberg Björn1,Henrissat Bernard1,Teeri Tuula T.1

Affiliation:

1. Royal Institute of Technology, Department of Biotechnology, AlbaNova University Center, SE–10691 Stockholm, Sweden (H.A., A.K., S. Djerbi, P.N., S. Denman, B.A., F.S., E. Master, T.T.T.); Umea Plant Science Center, Department of Forest Genetics and Plant Physiology, SE–90183 Umea, Sweden (J.S., G.S., E. Mellerowicz, B.S.); and Architecture et Fonction des Macromolécules Biologiques, Unité Mixte

Abstract

Abstract Wood formation is a fundamental biological process with significant economic interest. While lignin biosynthesis is currently relatively well understood, the pathways leading to the synthesis of the key structural carbohydrates in wood fibers remain obscure. We have used a functional genomics approach to identify enzymes involved in carbohydrate biosynthesis and remodeling during xylem development in the hybrid aspen Populus tremula × tremuloides. Microarrays containing cDNA clones from different tissue-specific libraries were hybridized with probes obtained from narrow tissue sections prepared by cryosectioning of the developing xylem. Bioinformatic analyses using the sensitive tools developed for carbohydrate-active enzymes allowed the identification of 25 xylem-specific glycosyltransferases belonging to the Carbohydrate-Active EnZYme families GT2, GT8, GT14, GT31, GT43, GT47, and GT61 and nine glycosidases (or transglycosidases) belonging to the Carbohydrate-Active EnZYme families GH9, GH10, GH16, GH17, GH19, GH28, GH35, and GH51. While no genes encoding either polysaccharide lyases or carbohydrate esterases were found among the secondary wall-specific genes, one putative O-acetyltransferase was identified. These wood-specific enzyme genes constitute a valuable resource for future development of engineered fibers with improved performance in different applications.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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