Bioorganometallic Safety Assessment of Ferrocene-Based Candidates: Rat Cytotoxicity Benchmarked Against Computational Toxicology

dc.contributor.authorHarizi Monia
dc.contributor.authorNouar Abidatou Errhamane
dc.contributor.authorSadani Amina
dc.contributor.authorTelhig Lina Ouafa
dc.date.accessioned2026-07-13T08:28:45Z
dc.date.issued2026
dc.descriptionApplied Biochemistry
dc.description.abstractThe growing pharmaceutical interest in ferrocene derivatives is attributed to their unique physicochemical and redox properties, which may enhance biological activity and therapeutic potential. However, toxicological safety assessment remains essential prior to their biomedical application. Therefore, the present study aimed to evaluate the acute toxicological profile and biological safety of three ferrocene derivatives: N-Ferrocenylmethylaniline (FMA), NFerrocenylmethyl-N-acetylaniline (FCMphA), and N-Ferrocenylmethyl-N-benzoylaniline (FCMphB), using complementary in vivo and in silico approaches. The in vivo study was performed on adult Wistar rats of both sexes exposed to graded doses (0.1, 1, 10, and 100 mg/kg). Toxicological evaluation was based on clinical observations, body weight evolution, food and water intake, relative organ weights, hematological and biochemical analyses, and histopathological examination of major organs, including the liver, kidneys, and brain, in order to determine dose-dependent toxic effects and organ-specific alterations. In parallel, the in silico investigation involved ADMET prediction and molecular docking analysis to evaluate pharmacokinetic properties, drug-likeness, absorption profile, biological distribution, and toxicity prediction of the tested compounds. Molecular docking was additionally conducted to investigate ligand–protein interactions with selected target proteins, including CYP3A4 and KEAP1, to better understand the relationship between molecular structure and biological behavior. The experimental findings revealed the absence of mortality at all administered doses, indicating relatively low acute toxicity of the tested compounds. Nevertheless, several doserelated clinical, physiological, biochemical, and histopathological alterations were observed. Among the investigated derivatives, FCMphA demonstrated the highest toxicological effect, showing more pronounced organ alterations and biological disturbances. In contrast, FCMphB exhibited the best biological tolerance and a comparatively safer toxicological profile, while FMA induced moderate and mostly reversible effects. Furthermore, the computational analyses supported the experimental observations, revealing differences in absorption, blood–brain barrier permeability, and protein-binding affinity among the compounds. Docking results showed strong molecular interactions, particularly for FCMphB, suggesting a favorable pharmacological profile. In conclusion, the tested ferrocene derivatives demonstrated promising pharmaceutical potential with relatively low acute toxicity; however, structural modifications significantly influenced their toxicological and biological behavior. The integration of experimental and computational findings highlights the importance of comprehensive toxicological evaluation to support the safe development of ferrocene-based therapeutic candidates.
dc.identifier.citationmaster, 2026. DEPARTEMENT DE BIOLOGIE CELLULAIRE ET MOLECULAIRE. Faculté des Sciences de la Nature et de la Vie. Université d'El-Oued .
dc.identifier.urihttps://archives.univ-eloued.dz/handle/123456789/42284
dc.language.isoen
dc.publisherجامعة الوادي university of eloued
dc.relation.ispartofseries572.01.392
dc.subjectFerrocene derivatives
dc.subjectacute toxicity
dc.subjectin vivo study
dc.subjectin silico analysis
dc.subjectmolecular docking
dc.subjectADMET
dc.subjectWistar rats
dc.subjecttoxicological assessment
dc.subjectlipophilicity
dc.subjectbioorganometallic chemistry.
dc.titleBioorganometallic Safety Assessment of Ferrocene-Based Candidates: Rat Cytotoxicity Benchmarked Against Computational Toxicology
dc.typemaster

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
572.01.392.pdf
Size:
4.18 MB
Format:
Adobe Portable Document Format

License bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
license.txt
Size:
1.71 KB
Format:
Item-specific license agreed upon to submission
Description: