Please use this identifier to cite or link to this item: https://cir.cenieh.es/handle/20.500.12136/3055
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dc.contributor.authorTheodorescu, Mihail-
dc.contributor.authorBucur, Ruxandra-
dc.contributor.authorBulzu, Paul Adrian-
dc.contributor.authorFaur, Luchiana-
dc.contributor.authorLevei, Erika Andrea-
dc.contributor.authorMirea, Ionuț Cornel-
dc.contributor.authorCadar, Oana-
dc.contributor.authorFerreira, Rodrigo Lopes-
dc.contributor.authorSouza-Silva, Marconi-
dc.contributor.authorMoldovan, Oana Teodora-
dc.date.accessioned2023-09-13T10:28:08Z-
dc.date.issued2023-11-
dc.identifier.citationMicrobial Ecology, 2023, 86, 2847–2857es_ES
dc.identifier.issn1432-184X-
dc.identifier.issn0095-3628-
dc.identifier.urihttps://cir.cenieh.es/handle/20.500.12136/3055-
dc.description.abstractMoonmilk is a cave deposit that was used for medical and cosmetic purposes and has lately raised interest for its antimicrobial potential. We studied five moonmilk samples from four caves with different microclimatic conditions, two temperate in north-western and northern Romania (Ferice, Fața Apei, and Izvorul Tăușoarelor caves) and one tropical in Minas Gerais, Brazil (Nestor Cave). The physicochemical and mineralogical analyses confirmed the presence of calcite and dolomite as the main phase in the moonmilk. A 16S rRNA gene-based metabarcoding approach showed the most abundant bacteria phyla Proteobacteria, GAL15, Actinobacteriota, and Acidobacteriota. The investigated caves differed in the dominant orders of bacteria, with the highest distance between the Romanian and Nestor Cave samples. Climate and, implicitly, the soil microbiome can be responsible for some differences we found between all the samples. However, other factors can be involved in shaping the moonmilk microbiome, as differences were found between samples in the same cave (Ferice). In our five moonmilk samples, 1 phylum, 70 orders (~ 36%), and 252 genera (~ 47%) were unclassified, which hints at the great potential of cave microorganisms for future uses.es_ES
dc.description.sponsorshipThis research was financially supported by the Ministry of Research, Innovation and Digitization grant, CNCS/CCCDI – UEFISCDI, project no. 2/2019 (DARKFOOD), within PNCDI III, and the project EEA 126/2018 (KARSTHIVES2), contract no. 3/2019. ICM was supported by the grant PN-III-P1-1.1-PD-2021-0262 (PALEOTRACE). RLF is grateful to the CNPq (National Council for Scientific and Technological Development) for the grant provided (CNPq n. 302925/2022-8).es_ES
dc.language.isoenes_ES
dc.publisherSpringeres_ES
dc.rightsinfo:eu-repo/semantics/restrictedAccesses_ES
dc.subjectCave deposites_ES
dc.subjectMicrobial communityes_ES
dc.subject16S RNAes_ES
dc.subjectMetabarcodinges_ES
dc.subjectChemical compositiones_ES
dc.subjectXRDes_ES
dc.titleEnvironmental Drivers of the Moonmilk Microbiome Diversity in Some Temperate and Tropical Caveses_ES
dc.typeArticlees_ES
dc.identifier.doi10.1007/s00248-023-02286-8-
dc.relation.publisherversionhttps://doi.org/10.1007/s00248-023-02286-8es_ES
dc.date.available2023-09-13T10:28:08Z-
Appears in Collections:Geocronología y Geología



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