TY - JOUR
T1 - Negative feedback regulation of Wnt signaling via N-linked fucosylation in zebrafish
AU - Feng, Lei
AU - Jiang, Hao
AU - Wu, Peng
AU - Marlow, Florence L.
N1 - Funding Information:
We are grateful to Lilianna Solnica-Krezel, William S. Talbot, David Vocadlo, Pamela Stanley, and members of the Marlow lab for discussions and manuscript evaluation. We thank S. Kalinin and C. Depaolo for fish care and Dr. P. Guo for technical assistance with confocal imaging. Confocal images were acquired using the Einstein Analytical Imaging Facility. This work was supported in part by NIHRO1GM089979 and start-up funds to FLM and NIHR01GM093282 and The Mizutani Foundation for Glycoscience funds to PW.
Publisher Copyright:
© 2014 Elsevier Inc.
PY - 2014/11/15
Y1 - 2014/11/15
N2 - L-fucose, a monosaccharide widely distributed in eukaryotes and certain bacteria, is a determinant of many functional glycans that play central roles in numerous biological processes. The molecular mechanism, however, by which fucosylation mediates these processes remains largely elusive. To study how changes in fucosylation impact embryonic development, we up-regulated N-linked fucosylation via over-expression of a key GDP-Fucose transporter, Slc35c1, in zebrafish. We show that Slc35c1 overexpression causes elevated N-linked fucosylation and disrupts embryonic patterning in a transporter activity dependent manner. We demonstrate that patterning defects associated with enhanced N-linked fucosylation are due to diminished canonical Wnt signaling. Chimeric analyses demonstrate that elevated Slc35c1 expression in receiving cells decreases the signaling range of Wnt8a during zebrafish embryogenesis. Moreover, we provide biochemical evidence that this decrease is associated with reduced Wnt8 ligand and elevated Lrp6 coreceptor, which we show are both substrates for N-linked fucosylation in zebrafish embryos. Strikingly, slc35c1 expression is regulated by canonical Wnt signaling. These results suggest that Wnt limits its own signaling activity in part via up-regulation of a transporter, slc35c1 that promotes terminal fucosylation and thereby limits Wnt activity.
AB - L-fucose, a monosaccharide widely distributed in eukaryotes and certain bacteria, is a determinant of many functional glycans that play central roles in numerous biological processes. The molecular mechanism, however, by which fucosylation mediates these processes remains largely elusive. To study how changes in fucosylation impact embryonic development, we up-regulated N-linked fucosylation via over-expression of a key GDP-Fucose transporter, Slc35c1, in zebrafish. We show that Slc35c1 overexpression causes elevated N-linked fucosylation and disrupts embryonic patterning in a transporter activity dependent manner. We demonstrate that patterning defects associated with enhanced N-linked fucosylation are due to diminished canonical Wnt signaling. Chimeric analyses demonstrate that elevated Slc35c1 expression in receiving cells decreases the signaling range of Wnt8a during zebrafish embryogenesis. Moreover, we provide biochemical evidence that this decrease is associated with reduced Wnt8 ligand and elevated Lrp6 coreceptor, which we show are both substrates for N-linked fucosylation in zebrafish embryos. Strikingly, slc35c1 expression is regulated by canonical Wnt signaling. These results suggest that Wnt limits its own signaling activity in part via up-regulation of a transporter, slc35c1 that promotes terminal fucosylation and thereby limits Wnt activity.
KW - Fucosylation
KW - GDP-Fucose transporter
KW - Slc35c1
KW - Wnt signaling
KW - Zebrafish patterning
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U2 - 10.1016/j.ydbio.2014.09.010
DO - 10.1016/j.ydbio.2014.09.010
M3 - Article
C2 - 25238963
AN - SCOPUS:84908121828
SN - 0012-1606
VL - 395
SP - 268
EP - 286
JO - Developmental Biology
JF - Developmental Biology
IS - 2
ER -