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Tissue inhibitor of metalloproteinase-2(TIMP-2)-deficient mice display motor deficits
Diane M Jaworski1, Paul Soloway, John Caterina
1Department of Anatomy & Neurobiology, University of Vermont College of Medicine, Burlington, 05405, USA. diane.jaworski@uvm.edu
Abstract:
The degradation of the extracellular matrix is regulated by matrix metalloproteinases (MMPs) and tissue inhibitors of metalloproteinases (TIMPs). Matrix components of the basement membrane play critical roles in the development and maintenance of the neuromuscular junction (NMJ), yet almost nothing is known about the regulation of MMP and TIMP expression in either the pre- or postsynaptic compartments. Here, we demonstrate that TIMP-2 is expressed by both spinal motor neurons and skeletal muscle. To determine whether motor function is altered in the absence of TIMP-2, motor behavior was assessed using a battery of tests (e.g., RotaRod, balance beam, hindlimb extension, grip strength, loaded grid, and gait analysis). TIMP-2(-/-) mice fall off the RotaRod significantly faster than wild-type littermates. In addition, hindlimb extension is reduced and gait is both splayed and lengthened in TIMP-2(-/-) mice. Motor dysfunction is more pronounced during early postnatal development. A preliminary analysis revealed NMJ alterations in TIMP-2(-/-) mice. Juvenile TIMP-2(-/-) mice have increased nerve branching and acetylcholine receptor expression. Adult TIMP-2(-/-) endplates are enlarged and more complex. This suggests a role for TIMP-2 in NMJ sculpting during development. In contrast to the increased NMJ nerve branching, cerebellar Purkinje cells have decreased neurite outgrowth. Thus, the TIMP-2(-/-) motor phenotype is likely due to both peripheral and central defects. The tissue specificity of the nerve branching phenotype suggests the involvement of different MMPs and/or extracellular matrix molecules underlying the TIMP-2(-/-) motor phenotype.
Insights
Mice lacking tissue inhibitor of metalloproteinases-2 (TIMP-2) exhibit motor deficits and neuromuscular junction (NMJ) abnormalities. TIMP-2 is crucial for NMJ development and motor function.
Area of Science:
- Neuroscience
- Developmental Biology
- Biochemistry
Background:
- Extracellular matrix (ECM) degradation is regulated by matrix metalloproteinases (MMPs) and tissue inhibitors of metalloproteinases (TIMPs).
- Neuromuscular junction (NMJ) development and maintenance rely on ECM components, but MMP/TIMP regulation at the NMJ is poorly understood.
- TIMP-2 is expressed in spinal motor neurons and skeletal muscle.
Purpose of the Study:
- To investigate the role of TIMP-2 in motor function and NMJ development.
- To characterize the motor phenotype of TIMP-2 knockout mice.
Main Methods:
- Assessment of motor behavior in TIMP-2(-/-) mice using tests like RotaRod, balance beam, and gait analysis.
- Histological analysis of neuromuscular junctions and cerebellar Purkinje cells.
- Evaluation of nerve branching and acetylcholine receptor expression.
Main Results:
- TIMP-2(-/-) mice display significant motor impairments, including faster RotaRod falls, reduced hindlimb extension, and altered gait.
- Juvenile TIMP-2(-/-) mice show increased NMJ nerve branching and acetylcholine receptor expression.
- Adult TIMP-2(-/-) mice exhibit enlarged and more complex endplates, alongside decreased cerebellar Purkinje cell neurite outgrowth.
Conclusions:
- TIMP-2 plays a critical role in NMJ sculpting during development.
- The observed motor phenotype in TIMP-2(-/-) mice results from both peripheral (NMJ) and central (cerebellar) defects.
- Tissue-specific phenotypes suggest involvement of various MMPs and ECM molecules in TIMP-2's function.
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