Logo image
Structural and mechanistic insights into the transport of aristolochic acids and their active metabolites by human serum albumin
Journal article   Open access   Peer reviewed

Structural and mechanistic insights into the transport of aristolochic acids and their active metabolites by human serum albumin

Sergei Pomyalov, Conceição A. Minetti, David P. Remeta, Radha Bonala, Francis Johnson, Irina Zaitseva, Charles Iden, Urszula Golebiewska, Kenneth Breslauer, Gil Shoham, …
The Journal of biological chemistry, pp.107358-107358
05/21/2024
PMID: 38782206

Abstract

aristolochic acids bioactivation DNA adducts environmental carcinogens fluorescence spectroscopy HSA-ligand interactions isothermal titration calorimetry X-ray crystallography
Aristolochic acids I and II (AA-I/II) are carcinogenic principles of Aristolochia plants, which have been employed in traditional medicinal practices and discovered as food contaminants. While the deleterious effects of AAs are broadly acknowledged, there is a dearth of information to define the mechanisms underlying their carcinogenicity. Following bioactivation in the liver, N-hydroxyaristolactam and N-sulfonyloxyaristolactam metabolites are transported via circulation and elicit carcinogenic effects by reacting with cellular DNA. In this study, we apply DNA adduct analysis, X-ray crystallography, isothermal titration calorimetry (ITC) and fluorescence quenching to investigate the role of human serum albumin (HSA) in modulating AA carcinogenicity. We find that HSA extends the half-life and reactivity of N-sulfonyloxyaristolactam-I with DNA, thereby protecting activated AAs from heterolysis. Applying novel pooled plasma HSA crystallization methods, we report high-resolution structures of myristic acid-enriched HSA (HSAMYR) and its AA complexes (HSAMYR/AA-I and HSAMYR/AA-II) at 1.9 Å resolution. Whereas AA-I is located within HSA subdomain IB, AA-II occupies subdomains IIA and IB. ITC binding profiles reveal two distinct AA sites in both complexes with association constants of 1.5 and 0.5 · 106 M-1 for HSA/AA-I versus 8.4 and 9.0 · 105 M-1 for HSA/AA-II. Fluorescence quenching of the HSA Trp214 suggests variable impacts of fatty acids on ligand binding affinities. Collectively, our structural and thermodynamic characterizations yield significant insights into AA binding, transport, toxicity, and potential allostery, critical determinants for elucidating the mechanistic roles of HSA in modulating AA carcinogenicity.
pdf
PIIS00219258240185933.37 MBDownloadView
Version of Record (VoR) Open Access CC BY-NC-ND V4.0
url
https://doi.org/10.1016/j.jbc.2024.107358View
Version of Record (VoR) Journal of Biological Chemistry Open
url
Report an accessibility issueView
Please complete a content remediation request to report an accessibility issue with a library electronic resource, website, or service.

Metrics

2 File downloads
31 Record Views

Details

Logo image