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Published on: March 23, 2014
A Mycobacterium leprae Hsp65 mutant as a candidate for mitigating lupus aggravation in mice
Eliana B Marengo1, Luciana V de Moraes, Robson L Melo
1Hospital Israelita Albert Einstein, São Paulo, Brazil.
Abstract:
Hsp60 is an abundant and highly conserved family of intracellular molecules. Increased levels of this family of proteins have been observed in the extracellular compartment in chronic inflammation. Administration of M. leprae Hsp65 [WT] in [NZBxNZW]F(1) mice accelerates the Systemic Lupus Erythematosus [SLE] progression whereas the point mutated K(409)A Hsp65 protein delays the disease. Here, the biological effects of M. leprae Hsp65 Leader pep and K(409)A pep synthetic peptides, which cover residues 352-371, are presented. Peptides had immunomodulatory effects similar to that observed with their respective proteins on survival and the combined administration of K(409)A+Leader pep or K(409)A pep+WT showed that the mutant forms were able to inhibit the deleterious effect of WT on mortality, indicating the neutralizing potential of the mutant molecules in SLE progression. Molecular modeling showed that replacing Lysine by Alanine affects the electrostatic potential of the 352-371 region. The number of interactions observed for WT is much higher than for Hsp65 K(409)A and mouse Hsp60. The immunomodulatory effects of the point-mutated protein and peptide occurred regardless of the catalytic activity. These findings may be related to the lack of effect on survival when F(1) mice were inoculated with Hsp60 or K(409)A pep. Our findings indicate the use of point-mutated Hsp65 molecules, such as the K(409)A protein and its corresponding peptide, that may minimize or delay the onset of SLE, representing a new approach to the treatment of autoimmune diseases.
Insights
Point-mutated Heat Shock Protein 60 (Hsp60) molecules, specifically K(409)A Hsp65, and their peptides can delay Systemic Lupus Erythematosus (SLE) progression. These mutant forms neutralize the detrimental effects of wild-type Hsp65 in autoimmune disease models.
Area of Science:
- Immunology
- Molecular Biology
- Autoimmune Diseases
Background:
- Heat Shock Protein 60 (Hsp60) is found extracellularly during chronic inflammation.
- Wild-type M. leprae Hsp65 accelerates Systemic Lupus Erythematosus (SLE) in [NZBxNZW]F(1) mice, while a K(409)A mutant delays it.
Purpose of the Study:
- To investigate the immunomodulatory effects of M. leprae Hsp65 Leader pep and K(409)A pep synthetic peptides.
- To assess the potential of mutant Hsp65 forms to counteract the disease-accelerating effects of wild-type Hsp65 in SLE.
Main Methods:
- Administration of synthetic peptides (Leader pep and K(409)A pep) and proteins (WT and K(409)A Hsp65) to [NZBxNZW]F(1) mice.
- Molecular modeling to analyze structural and electrostatic differences between WT and mutant Hsp65.
- Evaluation of survival rates and disease progression in mouse models.
Main Results:
- Peptides mimicked the immunomodulatory effects of their respective proteins.
- Combined administration of K(409)A+Leader pep or K(409)A pep+WT inhibited the mortality induced by WT Hsp65.
- Molecular modeling revealed altered electrostatic potential and reduced interactions in the K(409)A mutant.
Conclusions:
- Point-mutated Hsp65 molecules (K(409)A protein and peptide) demonstrate neutralizing potential against SLE progression.
- These findings suggest a novel therapeutic strategy for autoimmune diseases using modified Hsp60 variants.

