TY - JOUR
T1 - Degradation pathway of plant complex-type n-glycans
T2 - Identification and characterization of a key α1,3-fucosidase from glycoside hydrolase family 29
AU - Kato, Shun
AU - Hayashi, Megumi
AU - Kitagawa, Mai
AU - Kajiura, Hiroyuki
AU - Maeda, Megumi
AU - Kimura, Yoshinobu
AU - Igarashi, Kiyohiko
AU - Kasahara, Masahiro
AU - Ishimizu, Takeshi
N1 - Funding Information:
This work was supported by a Grant-in-Aid for Scientific Research (C) [no. 23570163 to T.I.] and by a Grant-in-Aid for Scientific Research on Innovative Areas [no. 24114001 and 24114008 to K.I., and 15H01241 to T.I.] from the Ministry of Education, Culture, Sports, Science and Technology. It was also supported by the Program for the Third-Phase R-GIRO Research from the Ritsumeikan Global Innovation Research Organization, Ritsumeikan University (to T.I.).
Funding Information:
This work was supported by a Grant-in-Aid for Scientific Research (C) [no. 23570163 to T.I.] and by a Grant-in-Aid for Scientific Research on Innovative Areas [no. 24114001 and 24114008 to K.I., and 15H01241 to T.I.] from the Ministry of Education, Culture, Sports, Science and Technology. It was also supported by the Program for the Third-Phase R-GIRO Research from the Ritsumeikan Global Innovation Research Organization, Ritsumeikan University (to T.I.). We thank Prof. Yuji Moriyasu and Dr Yuko Inoue of Saitama University for valuable discussion. We also thank Yutaro Kawahara, Syunya Inomata, Naoki Matsumoto, and Takaaki Ishiguro of Ritsumeikan University for technical support.
Publisher Copyright:
© 2018 The Author(s).
PY - 2018/1/15
Y1 - 2018/1/15
N2 - Plant complex-type N-glycans are characterized by the presence of α1,3-linked fucose towards the proximal N-acetylglucosamine residue and β1,2-linked xylose towards the β-mannose residue. These glycans are ultimately degraded by the activity of several glycoside hydrolases. However, the degradation pathway of plant complex-type N-glycans has not been entirely elucidated because the gene encoding α1,3-fucosidase, a glycoside hydrolase acting on plant complex-type N-glycans, has not yet been identified, and its substrate specificity remains to be determined. In the present study, we found that AtFUC1 (an Arabidopsis GH29 α-fucosidase) is an α1,3-fucosidase acting on plant complex-type N-glycans. This fucosidase has been known to act on α1,4-fucoside linkage in the Lewis A epitope of plant complex-type N-glycans. We found that this glycoside hydrolase specifically acted on GlcNAcβ1–4(Fucα1–3)GlcNAc, a degradation product of plant complex-type N-glycans, by sequential actions of vacuolar α-mannosi-dase, β1,2-xylosidase, and endo-β-mannosidase. The AtFUC1-deficient mutant showed no distinct phenotypic plant growth features; however, it accumulated GlcNAcβ1–4 (Fucα1–3)GlcNAc, a substrate of AtFUC1. These results showed that AtFUC1 is an α1,3-fucosidase acting on plant complex-type N-glycans and elucidated the degradation pathway of plant complex-type N-glycans.
AB - Plant complex-type N-glycans are characterized by the presence of α1,3-linked fucose towards the proximal N-acetylglucosamine residue and β1,2-linked xylose towards the β-mannose residue. These glycans are ultimately degraded by the activity of several glycoside hydrolases. However, the degradation pathway of plant complex-type N-glycans has not been entirely elucidated because the gene encoding α1,3-fucosidase, a glycoside hydrolase acting on plant complex-type N-glycans, has not yet been identified, and its substrate specificity remains to be determined. In the present study, we found that AtFUC1 (an Arabidopsis GH29 α-fucosidase) is an α1,3-fucosidase acting on plant complex-type N-glycans. This fucosidase has been known to act on α1,4-fucoside linkage in the Lewis A epitope of plant complex-type N-glycans. We found that this glycoside hydrolase specifically acted on GlcNAcβ1–4(Fucα1–3)GlcNAc, a degradation product of plant complex-type N-glycans, by sequential actions of vacuolar α-mannosi-dase, β1,2-xylosidase, and endo-β-mannosidase. The AtFUC1-deficient mutant showed no distinct phenotypic plant growth features; however, it accumulated GlcNAcβ1–4 (Fucα1–3)GlcNAc, a substrate of AtFUC1. These results showed that AtFUC1 is an α1,3-fucosidase acting on plant complex-type N-glycans and elucidated the degradation pathway of plant complex-type N-glycans.
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U2 - 10.1042/BCJ20170106
DO - 10.1042/BCJ20170106
M3 - Article
C2 - 29212795
AN - SCOPUS:85046677831
SN - 0264-6021
VL - 475
SP - 305
EP - 317
JO - Biochemical Journal
JF - Biochemical Journal
IS - 1
ER -