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An Orthotopic Sciatic Nerve Xenograft for Neurofibromatosis Type 1 Neurofibromas
Published on: October 10, 2025
LIM domain kinases as potential therapeutic targets for neurofibromatosis type 2
A Petrilli1, A Copik1, M Posadas1
1Department of Biomedical Science, College of Medicine, University of Central Florida, Orlando, FL, USA.
Abstract:
Neurofibromatosis type 2 (NF2) is caused by mutations in the NF2 gene that encodes a tumor-suppressor protein called merlin. NF2 is characterized by formation of multiple schwannomas, meningiomas and ependymomas. Merlin loss-of-function is associated with increased activity of Rac and p21-activated kinases (PAKs) and deregulation of cytoskeletal organization. LIM domain kinases (LIMK1 and 2) are substrate for Cdc42/Rac-PAK and modulate actin dynamics by phosphorylating cofilin at serine-3. This modification inactivates the actin severing and depolymerizing activity of cofilin. LIMKs also translocate into the nucleus and regulate cell cycle progression. Significantly, LIMKs are overexpressed in several tumor types, including skin, breast, lung, liver and prostate. Here we report that mouse Schwann cells (MSCs) in which merlin function is lost as a result of Nf2 exon2 deletion (Nf2(ΔEx2)) exhibited increased levels of LIMK1, LIMK2 and active phospho-Thr508/505-LIMK1/2, as well as phospho-Ser3-cofilin, compared with wild-type normal MSCs. Similarly, levels of LIMK1 and 2 total protein and active phosphorylated forms were elevated in human vestibular schwannomas compared with normal human Schwann cells (SCs). Reintroduction of wild-type NF2 into Nf2(ΔEx2) MSC reduced LIMK1 and LIMK2 levels. We show that pharmacological inhibition of LIMK with BMS-5 decreased the viability of Nf2(ΔEx2) MSCs in a dose-dependent manner, but did not affect viability of control MSCs. Similarly, LIMK knockdown decreased viability of Nf2(ΔEx2) MSCs. The decreased viability of Nf2(ΔEx2) MSCs was not due to caspase-dependent or -independent apoptosis, but rather due to inhibition of cell cycle progression as evidenced by accumulation of cells in G2/M phase. Inhibition of LIMKs arrests cells in early mitosis by decreasing aurora A activation. Our results suggest that LIMKs are potential drug targets for NF2 and tumors associated with merlin deficiency.
Insights
Loss of merlin protein in Neurofibromatosis type 2 (NF2) increases LIM domain kinases (LIMKs). Inhibiting LIMKs reduces NF2 tumor cell viability by halting cell cycle progression, suggesting LIMKs as potential drug targets.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Neurofibromatosis type 2 (NF2) results from mutations in the NF2 gene, leading to loss of the tumor suppressor merlin.
- Merlin deficiency disrupts cytoskeletal organization and is linked to increased Rac/PAK activity.
- LIM domain kinases (LIMKs) regulate actin dynamics and cell cycle progression, and are overexpressed in various tumors.
Purpose of the Study:
- To investigate the role of LIM domain kinases (LIMKs) in merlin-deficient cells relevant to Neurofibromatosis type 2 (NF2).
- To determine if LIMKs are potential therapeutic targets for NF2 and related tumors.
Main Methods:
- Analysis of LIMK1, LIMK2, and cofilin phosphorylation in merlin-deficient mouse Schwann cells (Nf2(ΔEx2) MSCs) and human vestibular schwannomas.
- Assessment of cell viability upon pharmacological LIMK inhibition (BMS-5) or knockdown in Nf2(ΔEx2) MSCs.
- Cell cycle analysis and investigation of mitotic regulators (aurora A) following LIMK inhibition.
Main Results:
- Merlin-deficient cells (Nf2(ΔEx2) MSCs) and human vestibular schwannomas show elevated levels of LIMK1, LIMK2, and phosphorylated cofilin.
- Pharmacological inhibition or knockdown of LIMKs significantly reduces the viability of Nf2(ΔEx2) MSCs.
- LIMK inhibition causes cell cycle arrest in G2/M phase by decreasing aurora A activation, not apoptosis.
Conclusions:
- LIM domain kinases (LIMKs) are upregulated in merlin-deficient cells and tumors.
- LIMK inhibition effectively reduces the viability of NF2-associated tumor cells by disrupting cell cycle progression.
- LIMKs represent promising therapeutic targets for Neurofibromatosis type 2 and other merlin-deficient tumors.
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