Related Experiment Video
Updated: Jul 5, 2026

Transconjunctival Approach for Injection into the Rat Optic Nerve
Published on: April 4, 2025
Promoting optic nerve regeneration in adult mice with pharmaceutical approach
1Schepens Eye Research Institute, Harvard Medical School, 20 Staniford Street, Boston, MA 02114, USA.
Abstract:
Our previous research has suggested that lack of Bcl-2-supported axonal growth mechanisms and the presence of glial scarring following injury are major impediments of optic nerve regeneration in postnatal mice. Mice overexpressing Bcl-2 and simultaneously carrying impairment in glial scar formation supported robust optic nerve regeneration in the postnatal stage. To develop a therapeutic strategy for optic nerve damage, the combined effects of chemicals that induce Bcl-2 expression and selectively eliminate mature astrocytes--scar forming cells--were examined in mice. Mood-stabilizer, lithium, has been shown to induce Bcl-2 expression and stimulate axonal outgrowth in retinal ganglion cells in culture and in vivo. Moreover, astrotoxin (alpha-aminoadipate), a glutamate analogue, selectively kills astrocytes while has minimal effects on surrounding neurons. In the present study, we sought to determine whether concurrent applications of lithium and astrotoxin were sufficient to induce optic nerve regeneration in mice. Induction of Bcl-2 expression was detected in the ganglion cell layer (GCL) of mice that received a lithium diet in compared with control-treated group. Moreover, efficient elimination of astrocytes and glial scarring was observed in the optic nerve of mice treated with astrotoxin. Simultaneous application of lithium and astrotoxin, but not any of the drugs alone, induced robust optic nerve regeneration in adult mice. These findings further support that a combinatorial approach of concurrent activation of Bcl-2-supported growth mechanism and suppression of glial scarring is required for successful regeneration of the severed optic nerve in adult mice. They suggest a potential therapeutic strategy for treating optic nerve and CNS damage.
Insights
Combining lithium and astrotoxin promotes optic nerve regeneration in adult mice by boosting Bcl-2 expression and reducing glial scarring. This dual approach offers a potential therapy for optic nerve and central nervous system damage.
Area of Science:
- Neuroscience
- Regenerative Medicine
- Ophthalmology
Background:
- Optic nerve regeneration is hindered by insufficient Bcl-2-supported axonal growth and glial scarring.
- Previous studies showed that overexpressing Bcl-2 and reducing glial scars promote regeneration in postnatal mice.
Purpose of the Study:
- To investigate the combined therapeutic potential of lithium (induces Bcl-2) and astrotoxin (eliminates astrocytes) for optic nerve regeneration in adult mice.
- To determine if this combinatorial approach can overcome major impediments to central nervous system repair.
Main Methods:
- Adult mice were treated with lithium (to induce Bcl-2) and/or astrotoxin (to eliminate astrocytes).
- Bcl-2 expression, astrocyte elimination, glial scar formation, and axonal regeneration were assessed.
- The effects of individual drugs versus the combined treatment were compared.
Main Results:
- Lithium treatment increased Bcl-2 expression in the ganglion cell layer.
- Astrotoxin treatment effectively eliminated astrocytes and reduced glial scarring in the optic nerve.
- Simultaneous administration of lithium and astrotoxin, but not either drug alone, induced robust optic nerve regeneration.
Conclusions:
- Concurrent activation of Bcl-2-supported growth and suppression of glial scarring is essential for successful optic nerve regeneration in adult mice.
- This combinatorial strategy presents a promising therapeutic avenue for optic nerve and other central nervous system injuries.
