TY - JOUR
T1 - Disruption of ATCSLD5 results in reduced growth, reduced xylan and homogalacturonan synthase activity and altered xylan occurrence in Arabidopsis
AU - Bernal, Adriana Jimena
AU - Jensen, Jakob Krüger
AU - Harholt, Jesper
AU - Sørensen, Susanne
AU - Moller, Isabel
AU - Blaukopf, Claudia
AU - Johansen, Bo
AU - de Lotto, Robert
AU - Pauly, Markus
AU - Scheller, Henrik Vibe
AU - Willats, William G T
PY - 2007/12
Y1 - 2007/12
N2 - Members of a large family of cellulose synthase-like genes (CSLs) are predicted to encode glycosyl transferases (GTs) involved in the biosynthesis of plant cell walls. The CSLA and CSLF families are known to contain mannan and glucan synthases, respectively, but the products of other CSLs are unknown. Here we report the effects of disrupting ATCSLD5 expression in Arabidopsis. Both stem and root growth were significantly reduced in ATCSLD5 knock-out plants, and these plants also had increased susceptibility to the cellulose synthase inhibitor isoxaben. Antibody and carbohydrate-binding module labelling indicated a reduction in the level of xylan in stems, and in vitro GT assays using microsomes from stems revealed that ATCSLD5 knock-out plants also had reduced xylan and homogalacturonan synthase activity. Expression in Nicotiana benthamiana of ATCSLD5 and ATCSLD3, fluorescently tagged at either the C- or the N-terminal, indicated that these GTs are likely to be localized in the Golgi apparatus. However, the position of the fluorescent tag affected the subcellular localization of both proteins. The work presented provides a comprehensive analysis of the effects of disrupting ATCSLD5 in planta, and the possible role(s) of this gene and other ATCSLDs in cell wall biosynthesis are discussed.
AB - Members of a large family of cellulose synthase-like genes (CSLs) are predicted to encode glycosyl transferases (GTs) involved in the biosynthesis of plant cell walls. The CSLA and CSLF families are known to contain mannan and glucan synthases, respectively, but the products of other CSLs are unknown. Here we report the effects of disrupting ATCSLD5 expression in Arabidopsis. Both stem and root growth were significantly reduced in ATCSLD5 knock-out plants, and these plants also had increased susceptibility to the cellulose synthase inhibitor isoxaben. Antibody and carbohydrate-binding module labelling indicated a reduction in the level of xylan in stems, and in vitro GT assays using microsomes from stems revealed that ATCSLD5 knock-out plants also had reduced xylan and homogalacturonan synthase activity. Expression in Nicotiana benthamiana of ATCSLD5 and ATCSLD3, fluorescently tagged at either the C- or the N-terminal, indicated that these GTs are likely to be localized in the Golgi apparatus. However, the position of the fluorescent tag affected the subcellular localization of both proteins. The work presented provides a comprehensive analysis of the effects of disrupting ATCSLD5 in planta, and the possible role(s) of this gene and other ATCSLDs in cell wall biosynthesis are discussed.
KW - Arabidopsis
KW - Arabidopsis Proteins
KW - Benzamides
KW - Glucosyltransferases
KW - Glucuronidase
KW - Pectins
KW - Pentosyltransferases
KW - Plants, Genetically Modified
KW - Tobacco
KW - Xylans
U2 - 10.1111/j.1365-313X.2007.03281.x
DO - 10.1111/j.1365-313X.2007.03281.x
M3 - Journal article
C2 - 17892446
SN - 0960-7412
VL - 52
SP - 791
EP - 802
JO - The Plant Journal
JF - The Plant Journal
IS - 5
ER -