Related Experiment Video
Updated: Mar 16, 2026

Removal and Replacement of Endogenous Ligands from Lipid-Bound Proteins and Allergens
Published on: February 24, 2021
The allergen Mus m 1.0102: Dissecting the relationship between molecular conformation and allergenic potency
Elena Ferrari1, Emanuela Casali1, Samuele E Burastero2
1Dept. of Biomedical, Biotechnological and Translational Sciences, University of Parma, Parma, Italy.
Background:
The species Mus musculus experiences an obligate proteinuria: predominant are the Major Urinary Proteins (MUPs), that, collectively known as the major mouse allergen Mus m 1, are among the most important aeroallergens for mouse allergic patients. The production of a soluble and stable hypoallergenic form of Mus m 1 is essential for the development of immunotherapeutic protocols to treat allergic symptoms.
Methods:
We introduced the substitution C138S in recombinant Mus m 1.0102, an allergenic isoform of Mus m 1. Solubility, conformation, stability and ability to refold after chemical denaturation were investigated with dynamic light scattering, circular dichroism, fluorescence and NMR spectroscopy. An in vitro degranulation assay was used to evaluate the protein allergenic potential, and compare it with Mus m 1.0102 and with an hypoallergenic variant bearing the substitution Y120A.
Results:
Mus m 1.0102-C138S retains a native-like fold revealing, however, local conformational alterations that influence some of its physical and allergenic properties: it is monodispersed, thermostable up to 56°C, able to reversibly unfold and it exhibits an enhanced allergenicity.
Conclusions:
The unique free thiol group affects the solution structural stability of the native protein. Because the mutant C138S does not aggregate over time it is a good lead protein to develop diagnostic and therapeutic applications.
General Significance:
We elucidated the relationship between unfolding reversibility and sulphydryl reactivity. We ascribed the enhanced allergenicity of the mutant C138S to an increased accessibility of its allergenic determinants, an enticing feature to further investigate the structural elements of the allergen-IgE interface.
Insights
A new C138S mutation in the major mouse allergen Mus m 1 (Major Urinary Proteins) creates a stable, hypoallergenic protein. This variant shows enhanced allergenicity, making it a promising candidate for developing new allergy diagnostics and therapeutics.
Area of Science:
- Biochemistry
- Allergology
- Structural Biology
Background:
- Major mouse allergen Mus m 1, a form of Major Urinary Proteins (MUPs), is a significant aeroallergen.
- Developing a stable, hypoallergenic Mus m 1 is crucial for effective allergy immunotherapy.
Purpose of the Study:
- To investigate the structural and allergenic properties of a C138S mutant of the Mus m 1.0102 isoform.
- To assess the potential of this mutant for diagnostic and therapeutic applications in allergy treatment.
Main Methods:
- Site-directed mutagenesis (C138S) was performed on recombinant Mus m 1.0102.
- Protein properties were analyzed using dynamic light scattering, circular dichroism, fluorescence, and NMR spectroscopy.
- Allergenic potential was evaluated via an in vitro degranulation assay.
Main Results:
- The C138S mutant retained a native-like fold with local conformational changes.
- It exhibited enhanced thermostability (up to 56°C) and reversible unfolding.
- The mutant displayed increased allergenicity compared to the wild-type and a previously identified hypoallergenic variant.
Conclusions:
- The C138S mutation enhances the structural stability and allergenicity of Mus m 1.
- The non-aggregating nature of the C138S mutant makes it a promising lead for developing allergy diagnostics and therapeutics.
Related Concept Videos
Mass Spectrum: Interpretation
Molar Mass
Antigens Involved in Adaptive Immunity
Complete Antigens
Complete antigens possess both immunogenicity and...
Cholinergic Receptors: Muscarinic
The subtypes M1, M3, and M5 couple with the Gq subunit and activate the phospholipase C (PLC) activity, mobilizing intracellular Ca2+....
Formula Mass and Mole Concepts of Compounds

