Advanced lipoxidation end products (ALEs) as RAGE binders: Mass spectrometric and computational studies to explain
Marco Mol1, Genny Degani2, Crescenzo Coppa1
1Department of Pharmaceutical Sciences, Via Mangiagalli 25, Università degli Studi di Milano, 20133 Milano, Italy.
Abstract:
Advanced Lipoxidation End-products (ALEs) are modified proteins that can act as pathogenic factors in several chronic diseases. Several molecular mechanisms have so far been considered to explain the damaging action of ALEs and among these a pathway involving the receptor for advanced glycation end products (RAGE) should be considered. The aim of the present work is to understand if ALEs formed from lipid peroxidation derived reactive carbonyl species (RCS) are able to act as RAGE binders and also to gain a deeper insight into the molecular mechanisms involved in the protein-protein engagement. ALEs were produced in vitro, by incubating human serum albumin (HSA) with 4-hydroxy-trans- 2-nonenal (HNE), acrolein (ACR) and malondialdehyde (MDA). The identification of ALEs was performed by MS. ALEs were then subjected to the VC1 Pull-Down assay (VC1 is the ligand binding domain of RAGE) and the enrichment factor (the difference between the relative abundance in the enriched sample minus the amount in the untreated one) as an index of affinity, was determined. Computation studies were then carried out to explain the factors governing the affinity of the adducted moieties and the site of interaction on adducted HSA for VC1-binding. The in silico analyses revealed the key role played by those adducts which strongly reduce the basicity of the modified residues and thus occur at their neutral state at physiological conditions (e.g. the MDA adducts, dihydropyridine-Lysine (DHPK) and N-2-pyrimidyl-ornithine (NPO), and acrolein derivatives, N-(3-formyl-3,4-dehydro-piperidinyl) lysine, FDPK). These neutral adducts become unable to stabilize ion-pairs with the surrounding negative residues which thus can contact the RAGE positive residues. In conclusion, ALEs derived from lipid peroxidation-RCS are binders of RAGE and this affinity depends on the effect of the adduct moiety to reduce the basicity of the target amino acid and on the acid moieties surrounding the aminoacidic target.
Insights
Advanced Lipoxidation End-products (ALEs) bind to the receptor for advanced glycation end products (RAGE). This binding is influenced by how ALEs alter amino acid basicity, impacting chronic disease pathways.
Area of Science:
- Biochemistry
- Molecular Biology
- Pathophysiology
Background:
- Advanced Lipoxidation End-products (ALEs) are implicated in chronic disease pathogenesis.
- The receptor for advanced glycation end products (RAGE) is a key mediator in ALE-related damage.
- Understanding ALE-RAGE interactions is crucial for elucidating disease mechanisms.
Purpose of the Study:
- To determine if ALEs generated from lipid peroxidation-derived reactive carbonyl species (RCS) bind to RAGE.
- To investigate the molecular mechanisms underlying ALE-RAGE protein-protein engagement.
- To identify specific ALE adducts and their binding characteristics to RAGE.
Main Methods:
- In vitro production of ALEs by incubating human serum albumin (HSA) with HNE, ACR, and MDA.
- Mass spectrometry (MS) for ALE identification.
- VC1 Pull-Down assay to assess ALE-RAGE binding affinity.
- In silico computational studies to analyze binding interactions.
Main Results:
- ALEs formed from lipid peroxidation-RCS demonstrate binding affinity for RAGE.
- Specific adducts, such as MDA-derived DHPK/NPO and ACR-derived FDPK, significantly reduce residue basicity.
- Neutralized adducts facilitate RAGE interaction by disrupting stabilizing ion-pairs.
Conclusions:
- ALEs derived from lipid peroxidation-RCS are confirmed RAGE binders.
- ALE-RAGE affinity is modulated by the adduct's impact on amino acid basicity.
- The surrounding acidic residues also play a role in the binding interaction.
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