Wnt responsive SUMOylation regulates ZIC protein activity to promote murine neural crest specification
Abstract
Neural crest cells are a transient population of
multipotent cells which arise at the border of the neural and
non-neural ectoderm (known as the neural plate border) during
neurulation. These cells migrate through the embryo and
differentiate into a range of cell types so diverse that the
neural crest is sometimes termed the fourth germ layer. Neural
crest cell formation and differentiation is driven by a cascade
of transcription factor activity at the neural plate border in
response to the combinatorial action of several major signal
transduction pathways, including canonical Wnt signalling.
Canonical Wnt signalling culminates in the conversion of TCF
transcription factors from repressors to activators and TCF
consensus DNA binding sites are known as Wnt responsive elements
(WREs). The zinc finger of the cerebellum (ZIC) proteins are a
family of transcriptional regulators that promote neural crest
cell specification in a variety of vertebrate organisms. The ZIC
proteins, however, are known to bind TCF proteins and repress Wnt
mediated transcription at WREs, implying a role in preventing
neural crest cell differentiation. The work presented in this
thesis resolves the apparent paradox of ZIC behaviour. Cell-based
reporter assays demonstrate a bi-phasic response of ZIC proteins
to Wnt signalling. In a low Wnt environment ZIC proteins repress
transcription at WREs but this repression is lost in a high Wnt
environment. Wnt signalling promotes post-translational
modification of ZIC proteins, via SUMOylation at the highly
conserved but hitherto functionally uncharacterised Zinc Finger
N-terminally Conserved (ZF-NC) domain. SUMOylated ZIC proteins
exhibit decreased TCF interaction and decreased inhibition at
WREs. Simultaneously, SUMOylated ZIC proteins exhibit increased
transactivation activity of an enhancer element known to drive
expression of the neural crest specifier gene Foxd3 in the
specified trunk neural crest cells. These in vitro findings have
a direct in vivo correlate as a mouse strain in which ZIC5
protein is refractory to SUMOylation exhibits decreased Foxd3
expression in trunk neural crest and decreased numbers of
differentiated neural crest cells. Canonical Wnt signalling
controls the activation of the ZIC proteins and impacts gene
expression not only at classical WREs but also at ZIC responsive
elements. Neural crest cell specification can therefore be
restricted to the neural plate border despite a broad
neurectodermal domain of ZIC expression. High concentration Wnt
signals at the neural plate border will simultaneously convert
ZIC and TCF proteins into transactivators, whereas in the future
lateral neurectoderm repression at WREs will persist.
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