Dissolution Reaction and Surface Modification of UICC Amosite in Mimicked Gamble’s Solution: A Step towards Filling the Gap between Asbestos Toxicity and Its Crystal Chemical Features

Author:

Pacella Alessandro1ORCID,Ballirano Paolo12ORCID,Di Carlo Maria Cristina1,Fantauzzi Marzia3ORCID,Rossi Antonella3ORCID,Nardi Elisa4,Viti Cecilia5,Arrizza Lorenzo6,Campopiano Antonella7,Cannizzaro Annapaola7,Bloise Andrea8ORCID,Montereali Maria Rita9

Affiliation:

1. Department of Earth Sciences, Sapienza University of Rome, Piazzale Aldo Moro 5, 00185 Rome, Italy

2. Rectoral Laboratory Fibres and Inorganic Particulate, Sapienza University of Rome, Piazzale Aldo Moro 5, 00185 Rome, Italy

3. INSTM Research Unit, Department of Chemical and Geological Sciences, University of Cagliari, 09042 Monserrato, Italy

4. Institute for Environmental Protection and Research, ISPRA, Via Vitaliano Brancati 48, 00144 Rome, Italy

5. Department of Physical, Earth and Environmental Sciences, University of Siena, Via Laterina 8, 53100 Siena, Italy

6. Microscopy Center, University of L’ Aquila, Via Vetoio, Locality Coppito, 67100 L’Aquila, Italy

7. Department of Medicine, Epidemiology, Occupational and Environmental Hygiene, National Institute for Insurance against Accidents at Work (INAIL), Via Fontana Candida 1, 00078 Rome, Italy

8. Department of Biology, Ecology and Earth Sciences, University of Calabria, V. P. Bucci, 87036 Arcavacata di Rende, Italy

9. Italian National Agency for New Technologies, ENEA, Casaccia Research Centre, Via Anguillarese 301, 00123 Rome, Italy

Abstract

This study focuses on the dissolution process and surface characterization of amosite fibres following interaction with a mimicked Gamble’s solution at a pH of 4.5 and T = 37 °C, up to 720 h. To achieve this, a multi-analytical approach was adopted, and the results were compared to those previously obtained on a sample of asbestos tremolite and UICC crocidolite, which were investigated under the same experimental conditions. Combining surface chemical data obtained by XPS with cation release quantified by ICP-OES, an incongruent behaviour of the fibre dissolution was highlighted for amosite fibres, similarly to asbestos tremolite and UICC crocidolite. In particular, a preferential release of Mg and Ca from the amphibole structure was observed, in agreement with their Madelung site energies. Notably, no Fe release from amosite fibres was detected in our experimental conditions (pH of 4.5 and atmospheric pO2), despite the occurrence of Fe(II) at the M(4) site of the amphibole structure, where cations are expected to be rapidly leached out during mineral dissolution. Moreover, the oxidation of both the Fe centres initially present on the fibre surface and those promoted from the bulk, because of the erosion of the outmost layers, was observed. Since biodurability (i.e., the resistance to dissolution) is one of the most important toxicity parameters, the knowledge of the surface alteration of asbestos possibly occurring in vivo may help to understand the mechanisms at the basis of its long-term toxicity.

Funder

European Union Next-GenerationEU

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

Reference49 articles.

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