Biological monitoring, also called biomonitoring, is a process to prevent and assess health risk for individuals exposed to chemical products present in environment or through workplace exposure. Biomonitoring is most often a monitoring of exposure or of effect. The exposure monitoring is currently the most widespread in toxicology. It involves the determination in biological fluids of different biomarkers, most of which are biomarkers of internal dose. These biological indicators are typically measured in blood and urine, but other biological samples can be analyzed. They are used to assess the penetration of environmental pollutants into the body. Assay results are interpreted in relation to reference values which are adapted either to occupationally exposed populations, or to general population. This interpretation and the choice of appropriate biomarker of exposure are not always obvious. Biomonitoring has some limitations despite its many advantages. It is complementary to another health prevention approach: the monitoring of ambient air. To illustrate in practice the biomonitoring of exposure, several examples of toxics and their associated biomarkers are reviewed: benzene, toluene, styrene, polycyclic aromatic hydrocarbons, chloroform, 2-hexanone and hydrogen cyanide.
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http://dx.doi.org/10.1684/abc.2013.0820 | DOI Listing |
Anim Cells Syst (Seoul)
December 2024
Department of Chemical, Biological, Pharmaceutical and Environmental Sciences, University of Messina, Messina, Italy.
Insect protein hydrolysates (PH) are emerging as valuable compounds with biological activity. The aim of the present study was to assess the potential cytoprotective effects of PH from the Black Soldier Fly (BPH, in the range 0.1-0.
View Article and Find Full Text PDFItal J Food Saf
November 2024
Plant Pathology and Postharvest Quality Laboratory, Regional Center for Agronomical Research of Kenitra, Morocco.
Biotic stress significantly challenges the global citrus industry. Major post-harvest issues include diseases caused by , and . The negative impact of chemical fungicides on the environment and health necessitates eco-friendly alternatives.
View Article and Find Full Text PDFAnal Sci Adv
June 2025
Department of Chemical, Pharmaceutical, and Agricultural Sciences University of Ferrara Ferrara Italy.
Cannabis inflorescences represent an important source of many high-value bioactive specialized metabolites, among which the family of terpenes or terpenoids that are the largest classes of natural products known. Besides their biological activities either alone or synergistic with other terpenoids and/or cannabinoids, they are responsible for their distinctive flavour. In this study, we exploited the separation power and identification capabilities of comprehensive two-dimensional gas chromatography coupled to mass spectrometry (GC×GC-MS) for the profiling of terpenes and terpenoids in cannabis inflorescences.
View Article and Find Full Text PDFCureus
December 2024
Pathology, BLDE (Deemed to be University) Shri B.M. Patil Medical College, Hospital, and Research Centre, Vijayapura, IND.
Introduction Occupational health hazards are a significant concern for pathologists due to their unique work environment. These professionals face risks from prolonged microscope use, exposure to chemicals such as formalin, and handling sharp instruments, leading to issues such as musculoskeletal disorders and needlestick injuries. Addressing these hazards is crucial for their well-being and the overall efficiency of medical diagnostics.
View Article and Find Full Text PDFChem Sci
December 2024
Advanced Technology Research Institute (Jinan), Beijing Institute of Technology Jinan 250300 China
Elastomers are of great significance in developing smart materials for information encryption, and their unique self-healing and highly flexible properties provide innovative solutions to enhance security and anti-counterfeiting effectiveness. However, challenges remain in the multifunctional combination of mechanical properties, self-healing, degradability, and luminescence of these materials. Herein, a chemodynamic covalent adaptable network (CCAN)-induced robust, self-healing, and degradable fluorescent elastomer is proposed.
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