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Updated: May 16, 2026

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
Wnt signaling promotes Müller cell proliferation and survival after injury
Bo Liu1, Daniel J Hunter, Scott Rooker
1Department of Surgery, Division of Plastic and Reconstructive Surgery, and Stanford Institute for Stem Cell Biology and Regenerative Medicine, Stanford School of Medicine, Stanford, California 94305, USA.
Purpose:
Müller glia respond to retinal injury by a reactive gliosis, but only rarely do mammalian glial cells re-enter the cell cycle and generate new neurons. In the nonmammalian retina, however, Müller glia act as stem/progenitor cells. Here, we tested the function of Wnt signaling in the postinjury retina, focusing on its ability to influence mammalian Müller cell dedifferentiation, proliferation, and neurogenesis.
Methods:
A 532 nm frequency doubled neodymium-doped yttrium aluminum garnet (ND:YAG) laser was used to create light burns on the retina of Axin2(LacZ/+) Wnt reporter mice. At various time points after injury, retinas were analyzed for evidence of Wnt signaling as well as glial cell response, proliferation, and apoptosis. Laser injuries also were created in Axin2(LacZ/LacZ) mice, and the effect of potentiated Wnt signaling on retinal repair was assessed.
Results:
A subpopulation of mammalian Müller cells are Wnt responsive and, when Wnt signaling is increased, these cells showed enhanced proliferation in response to injury. In an environment of heightened Wnt signaling, caused by the loss of the Wnt negative regulator Axin2, Müller cells proliferated after injury and adopted the expression patterns of retinal progenitor cells (RPCs). The Wnt-responsive Müller cells also exhibited long-term survival and, in some cases, expressed the rod photoreceptor marker, rhodopsin.
Conclusions:
The Wnt pathway is activated by retinal injury, and prolonging the endogenous Wnt signal causes a subset of Müller cells to proliferate and dedifferentiate into RPCs. These data raised the possibility that transient amplification of Wnt signaling after retinal damage may unlock the latent regenerative capacity long speculated to reside in mammalian neural tissues.
Insights
In mammalian retinas, increasing Wnt signaling after injury prompts Müller glial cells to proliferate and become retinal progenitor cells (RPCs), suggesting a latent regenerative capacity.
Area of Science:
- Neuroscience
- Ophthalmology
- Regenerative Medicine
Background:
- Müller glial cells in mammals typically undergo reactive gliosis after retinal injury, with limited capacity for neurogenesis.
- Unlike mammalian Müller glia, those in non-mammalian retinas function as stem/progenitor cells capable of generating new neurons.
Purpose of the Study:
- To investigate the role of Wnt signaling in the post-injury mammalian retina.
- To determine if Wnt signaling can influence Müller cell dedifferentiation, proliferation, and neurogenesis.
Main Methods:
- Light-induced retinal injury in Axin2(LacZ/+) Wnt reporter mice.
- Analysis of Wnt signaling, glial cell response, proliferation, and apoptosis post-injury.
- Assessment of potentiated Wnt signaling effects using Axin2(LacZ/LacZ) mice with impaired Wnt negative regulation.
Main Results:
- A subset of mammalian Müller cells are responsive to Wnt signaling.
- Elevated Wnt signaling, particularly through loss of Axin2, enhanced Müller cell proliferation post-injury.
- Proliferating Müller cells adopted retinal progenitor cell (RPC) expression patterns and some expressed rhodopsin, a rod photoreceptor marker.
Conclusions:
- Retinal injury activates the Wnt pathway.
- Sustained Wnt signaling promotes Müller cell proliferation and dedifferentiation into RPCs.
- Transient amplification of Wnt signaling may unlock latent regenerative potential in mammalian neural tissues.
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