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Biocontamination and Diversity of Epilithic Bacteria and Fungi Colonising Outdoor Stone and Mortar Sculptures

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Abstract

Microbial communities colonising outdoor sculptures form intricate and dynamic ecosystems, which can accelerate the deterioration processes of the artworks and pose challenges to their conservation. In this study, the bacterial and fungal communities colonising the surfaces of five contemporary outdoor sculptures were characterised by high-throughput sequencing. The sculptures, made of marble, granite, Ançã limestone and mortar, are in urban parks and squares in the district of Porto, Portugal. The analysis of the microbial populations revealed great taxonomic diversity and species richness, including in well-preserved sculptures showing few visible traces of contamination. Proteobacteria, namely the genera Pseudomonas and Sphingomonas, were the core taxa common to all the sculptures, while Massilia and Aureobasidium were dominant only in granite. An abundance of pigment-producing microorganisms, such as Deinococcus, Methylobacterium, Rhodotorula and Sporobolomyces, was also found in granite. These are relevant taxonomic groups that can negatively impact stone and mortar artworks. The study was complemented with colourimetric analyses and bioluminescence assays to measure the adenosine triphosphate (ATP) content of samples collected from specific contaminated areas of the sculptures. The characterisation of the microbiomes of sculptures can provide further knowledge on the deterioration risks of this type of artwork in the region and help outline future targeted conservation strategies. KEY POINTS: • Rich and abundant microbiomes expose sculptures' vulnerability to deterioration. • Well-preserved sculptures are at risk of deterioration by pigment-producing taxa. • ATP and colourimetry quickly identified the most relevant contaminated areas.

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References
1.
Abarenkov K, Nilsson R, Larsson K, Alexander I, Eberhardt U, Erland S . The UNITE database for molecular identification of fungi--recent updates and future perspectives. New Phytol. 2010; 186(2):281-5. DOI: 10.1111/j.1469-8137.2009.03160.x. View

2.
Bolyen E, Rideout J, Dillon M, Bokulich N, Abnet C, Al-Ghalith G . Reproducible, interactive, scalable and extensible microbiome data science using QIIME 2. Nat Biotechnol. 2019; 37(8):852-857. PMC: 7015180. DOI: 10.1038/s41587-019-0209-9. View

3.
Camara B, de Los Rios A, Urizal M, Alvarez de Buergo M, Varas M, Fort R . Characterizing the microbial colonization of a dolostone quarry: implications for stone biodeterioration and response to biocide treatments. Microb Ecol. 2011; 62(2):299-313. DOI: 10.1007/s00248-011-9815-x. View

4.
Cappitelli F, Nosanchuk J, Casadevall A, Toniolo L, Brusetti L, Florio S . Synthetic consolidants attacked by melanin-producing fungi: case study of the biodeterioration of Milan (Italy) cathedral marble treated with acrylics. Appl Environ Microbiol. 2006; 73(1):271-7. PMC: 1797126. DOI: 10.1128/AEM.02220-06. View

5.
Chimienti G, Piredda R, Pepe G, van der Werf I, Sabbatini L, Crecchio C . Profile of microbial communities on carbonate stones of the medieval church of San Leonardo di Siponto (Italy) by Illumina-based deep sequencing. Appl Microbiol Biotechnol. 2016; 100(19):8537-48. DOI: 10.1007/s00253-016-7656-8. View