alpha 1,3-fucosyltransferase IX (Fut9) determines Lewis X expression in brain
GLYCOBIOLOGY
Authors: Nishihara, S; Iwasaki, H; Nakajima, K; Togayachi, A; Ikehara, Y; Kudo, T; Kushi, Y; Furuya, A; Shitara, K; Narimatsu, H
Abstract
The expression of the Lewis X (Le(x)) carbohydrate structure in brain is developmentally regulated and is thought to play a role in cell-cell interaction during neuronal development. Mice possess three functional alpha1,3-fucosyltransferase genes: Fut4, Fut7, and Fut9. Fut7 is known to have no activity to synthesize Le(x). In the present study, the relative activities of Fut4 and Fut9 for Le(x) synthesis were determined using recombinant enzymes. Fut9 exhibited very strong activity for oligosaccharide acceptors and glycolipid acceptors, that is, more than 10- and 100-fold, respectively, than that of Fut4. Furthermore, both cerebrum and cerebellum at various stages of development (E17, P0, P7, P30, P100) expressed 15-100 times more Fut9 transcript than Fut4 transcript. Neurons and astrocytes in primary culture also expressed 10-15 times more Fut9 than Fut4 transcript. Moreover, alpha1,3-Fut activity toward a polylactosamine chain in homogenates of brain tissues and primary cultured cells showed a pattern typical of Fut9, not Fut4. The developmental profile of activity for the synthesis of Le(x) was well correlated with that of Fut9 transcript. Immunohistochemistry with anti-Fut9 monoclonal antibody revealed the distribution of the Le(x) structure. These results showed that Fut9 is the most responsible enzyme for the synthesis of Le(x) in brain.
Baicalin promotes embryo adhesion and implantation by upregulating fucosyltransferase IV (FUT4) via Wnt/beta-catenin signaling pathway
FEBS LETTERS
Authors: Zhang, Yu-Mei; Zhang, Yuan-Yuan; Bulbul, Ahmmed; Shan, Xiu; Wang, Xiao-Qi; Yan, Qiu
Abstract
Glycosylation plays a significant role in determining the receptivity of the uterine endometrium to embryo. Fucosyltransferase IV (FUT4) is expressed stage-specifically in the uterine endometrium of mammalians, and considered as a marker of the endometrial receptivity. Baicalin, a monomer of flavonoids, is known to have functions in improving reproduction. However, the mechanism by which baicalin regulates the expression of FUT4 in embryo-endometrium adhesion remains unclear. Our results showed that baicalin significantly increased FUT4 mRNA and protein expression levels both in human endometrial cells and mouse endometrial tissue, and consistently elevated embryo adhesion rate during implantation in vitro and embryonic implantation competence in pregnant mouse. This study suggests that baicalin facilitates endometrial reproduction via elevating FUT4 expression through Wnt/beta-catenin signaling pathway. (C) 2015 Federation of European Biochemical Societies. Published by Elsevier B.V. All rights reserved.