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Published on: March 27, 2019
Sox4 regulates choroid fissure closure by limiting Hedgehog signaling during ocular morphogenesis
Wen Wen1, Lakshmi Pillai-Kastoori1, Stephen G Wilson1
1Department of Biology, University of Kentucky, Lexington, KY 40506-0225, USA.
Abstract:
SoxC transcription factors play critical roles in many developmental processes, including neurogenesis, cardiac formation, and skeletal differentiation. In vitro and in vivo loss-of-function studies have suggested that SoxC genes are required for oculogenesis; however the mechanism was poorly understood. Here, we have explored the function of the SoxC factor Sox4 during zebrafish eye development. We show that sox4a and sox4b are expressed in the forebrain and periocular mesenchyme adjacent to the optic stalk during early eye development. Knockdown of sox4 in zebrafish resulted in coloboma, a structural malformation of the eye that is a significant cause of pediatric visual impairment in humans, in which the choroid fissure fails to close. Sox4 morphants displayed altered proximo-distal patterning of the optic vesicle, including expanded pax2 expression in the optic stalk, as well as ectopic cell proliferation in the retina. We show that the abnormal ocular morphogenesis observed in Sox4-deficient zebrafish is caused by elevated Hedgehog (Hh) signaling, and this is due to increased expression of the Hh pathway ligand Indian Hedgehog b (ihhb). Consistent with these results, coloboma in sox4 morphants could be rescued by pharmacological treatment with the Hh inhibitor cyclopamine, or by co-knockdown of ihhb. Conversely, overexpression of sox4 reduced Hh signaling and ihhb expression, resulting in cyclopia. Finally, we demonstrate that sox4 and sox11 have overlapping, but not completely redundant, functions in regulating ocular morphogenesis. Taken together, our data demonstrate that Sox4 is required to limit the extent of Hh signaling during eye development, and suggest that mutations in SoxC factors could contribute to the development of coloboma.
Insights
Sox4 gene deficiency in zebrafish causes coloboma, a severe eye malformation, by elevating Hedgehog signaling. This research highlights Sox4
Area of Science:
- Developmental Biology
- Ophthalmology
- Genetics
Background:
- SoxC transcription factors are crucial for development.
- SoxC genes' role in eye development (oculogenesis) is poorly understood.
- Sox4 is a key SoxC factor in vertebrate development.
Purpose of the Study:
- Investigate the function of Sox4 in zebrafish eye development.
- Elucidate the molecular mechanisms underlying Sox4's role in oculogenesis.
- Determine the link between Sox4, Hedgehog signaling, and coloboma.
Main Methods:
- Zebrafish model system for eye development studies.
- sox4 gene knockdown (morpholino injection) to assess loss-of-function.
- Analysis of gene expression (pax2, ihhb) and cell proliferation.
- Pharmacological inhibition of Hedgehog signaling (cyclopamine).
Main Results:
- sox4 knockdown in zebrafish leads to coloboma, characterized by choroid fissure non-closure.
- Sox4 deficiency results in altered optic vesicle patterning and ectopic retinal cell proliferation.
- Elevated Hedgehog (Hh) signaling, due to increased Indian Hedgehog b (ihhb) expression, underlies the observed ocular defects.
- Hh pathway inhibition or ihhb knockdown rescues coloboma phenotype.
- Sox4 and Sox11 exhibit overlapping functions in ocular morphogenesis.
Conclusions:
- Sox4 is essential for regulating Hedgehog signaling during zebrafish eye development.
- Dysregulation of Sox4 function and subsequent Hh pathway imbalance may contribute to coloboma.
- SoxC factors, particularly Sox4, are critical for normal ocular morphogenesis.
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