PubMed HealthSearch

PubMed · 3754361

Menu software for the processing of spectrofluorometry analysis.

Abstract

Menu software is presented for the computer-assisted spectrofluorometric analysis of the 3,4-benzopyrene contents of different samples, determined by a method implying the addition of fluorescent substances in the presence of other fluorochromes. A system consisting of an SPF-500 spectrofluorometer interfaced to a Felix-M18 microcomputer was used for this purpose. The advantages of the computer-assisted processing of spectrofluorometric analyses are discussed.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

O L Hörer, C Enache. Menu software for the processing of spectrofluorometry analysis.. https://pubmed.ncbi.nlm.nih.gov/3754361/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Exploring potential targets and molecular mechanisms of traumatic brain injury exacerbated by Benzo(a)pyrene via network toxicology and molecular dynamics simulation.

Benzo(a)pyrene (BaP) is a common environmental pollutant from combustion sources that promotes oxidative stress, neuroinflammation and disruption of blood-brain barrier (BBB). However, its contribution to worsening traumatic brain injury (TBI) remains unclear. In this study, we aimed to assess the contribution of BaP to secondary injury in TBI. By integrating data from e.g., the Comparative Toxicogenomics Database, GeneCards, and Online Mendelian Inheritance in Man, 121 overlapping core targets were identified between BaP and TBI. Enrichment analyses via Gene Ontology and Kyoto Encyclopedia of Genes and Genomes, combined with protein-protein interaction networks and topological algorithms (degree, closeness centrality, betweenness centrality, average shortest path length, topological coefficient and partner of multi-edged node pairs), highlighted five hub genes (TP53, EGFR, AKT1, ACTB, and TNF) implicated in mitogen-activated protein kinase signaling, oxidative stress, and neuroinflammation. Molecular docking showed strong binding affinities of BaP to these hub proteins, with energies from -9.3 to -12.1&#xa0;kcal/mol, tighter than co-crystal ligands and existing protein-binding drugs. Molecular dynamics simulations confirmed interaction stability through low root-mean-square deviation (<&#x2009;0.5&#xa0;nm), fluctuation, and radius of gyration values. Calculation of binding free energies using MM-PBSA validated the strong binding affinity between BaP and binding pockets of each hub genes. Toxicity prediction analysis revealed an oral LD50 of 316&#xa0;mg/kg for BaP, with high probabilities for neurotoxicity, BBB permeability, carcinogenicity, and mutagenicity, associated with aryl hydrocarbon receptor activation. These findings reveal a "neurovascular homeostasis disruption" network underlying BaP-exacerbated TBI pathology and highlight potential targets to reduce pollution-related risks in TBI management.

Benzo(a)pyrene

Mutagenic activation of benzo[a]pyrene by human red blood cells.

The induction of sister-chromatid exchanges (SCEs) and micronuclei (MN) was used as an endpoint to evaluate the cytogenetic effects of benzo[a]pyrene (B(a)P) activated by human red blood cells and S9 mix. Human erythrocytes can metabolically activate B(a)P. It was shown that both human erythrocytes and S9 mix activate B(a)P and that the resulting excess SCE and MN depend in a linear manner on the B(a)P dose. HPLC analysis suggested that quinone derivatives formed by the red blood cells are responsible for the cytogenetic abnormalities observed.

Benzo(a)pyrene