Related Experiment Video
Updated: May 4, 2026

A Quick Phenotypic Neurological Scoring System for Evaluating Disease Progression in the SOD1-G93A Mouse Model of ALS
Published on: October 6, 2015
Characterization of early pathogenesis in the SOD1(G93A) mouse model of ALS: part I, background and methods
Sharon Vinsant1, Carol Mansfield1, Ramon Jimenez-Moreno1
1Department of Neurobiology and Anatomy, The Neuroscience Program and The ALS Center Winston-Salem, North Carolina.
Abstract:
Charcot first described amyotrophic lateral sclerosis (ALS) in 1869; however, its causes remain largely unknown and effective, long-term treatment strategies are not available. The first mouse model of ALS was developed after the identification of mutations in the superoxide dismutase 1 (SOD1) gene in 1993, and accordingly most of our knowledge of the etiology and pathogenesis of the disease comes from studies carried out using this animal model. Although numerous preclinical trials have been conducted in the mutant SOD1 mouse models, the results have been disappointing because they did not positively translate to clinical trials. One explanation may be that current understanding of when and where pathogenesis begins is insufficient to accurately guide preclinical trials. Further characterization of these early events may provide insight into disease onset, help in the discovery of presymptomatic diagnostic disease markers, and identify novel therapeutic targets. Here, we describe the rationale, approach, and methods for our extensive analysis of early changes that included an ultrastructural examination of central and peripheral components of the neuromuscular system in the SOD1(G93A) mouse and correlated these alterations with early muscle denervation, motor dysfunction, and motoneuron death. We also provide a discussion of published work to review what is known regarding early pathology in the SOD1 mouse model of ALS. The significance of this work is that we have examined early pathology simultaneously in both the spinal cord and peripheral neuromuscular system, and the results are presented in the companion paper (Part II, Results and Discussion). Our results provide evidence as to why a thorough characterization of animal models throughout the life span is critical for a strong foundation to design preclinical trials that may produce meaningful results.
Insights
Investigating early pathology in SOD1(G93A) mice reveals crucial insights into amyotrophic lateral sclerosis (ALS) onset. Understanding these initial events is vital for developing effective ALS treatments and improving preclinical trial design.
Area of Science:
- Neuroscience
- Genetics
- Pathology
Background:
- Amyotrophic lateral sclerosis (ALS) causes are unknown, with limited effective treatments.
- The SOD1(G93A) mouse model is crucial for ALS research, but preclinical trials have yielded disappointing results.
- Insufficient understanding of early ALS pathogenesis hinders effective preclinical trial design.
Purpose of the Study:
- To extensively analyze early pathological changes in the SOD1(G93A) mouse model.
- To correlate ultrastructural alterations with early denervation, motor dysfunction, and motoneuron death.
- To provide a foundation for improved preclinical trial design in ALS.
Main Methods:
- Ultrastructural examination of central and peripheral neuromuscular systems in SOD1(G93A) mice.
- Correlation of observed alterations with early muscle denervation, motor deficits, and motoneuron loss.
- Review and discussion of existing literature on early SOD1 mouse model pathology.
Main Results:
- Detailed examination of early pathological events in both the spinal cord and peripheral neuromuscular system.
- Identification of critical ultrastructural changes preceding overt symptoms.
- Evidence supporting the need for comprehensive lifespan analysis of animal models.
Conclusions:
- Thorough characterization of early pathology in ALS mouse models is essential.
- Understanding early events can guide the development of presymptomatic diagnostic markers.
- This research provides a basis for designing more effective preclinical trials for amyotrophic lateral sclerosis.

