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Biochemical features and early adhesion of marine Candida parapsilosis strains on high-density polyethylene.
Oliveira, Maiara Monteiro; Proenca, Audrey Menegaz; Moreira-Silva, Eduardo; Dos Santos, Francine Melise; Marconatto, Letícia; de Castro, Aline Machado; Medina-Silva, Renata.
Affiliation
  • Oliveira MM; Geobiology Laboratory, Institute of Petroleum and Natural Resources, Pontifical Catholic University of Rio Grande do Sul, PUCRS, Porto Alegre, Brazil.
  • Proenca AM; Immunology and Microbiology Laboratory, School of Health and Life Sciences, Pontifical Catholic University of Rio Grande do Sul, PUCRS, Porto Alegre, Brazil.
  • Moreira-Silva E; Geobiology Laboratory, Institute of Petroleum and Natural Resources, Pontifical Catholic University of Rio Grande do Sul, PUCRS, Porto Alegre, Brazil.
  • Dos Santos FM; Immunology and Microbiology Laboratory, School of Health and Life Sciences, Pontifical Catholic University of Rio Grande do Sul, PUCRS, Porto Alegre, Brazil.
  • Marconatto L; Immunology and Microbiology Laboratory, School of Health and Life Sciences, Pontifical Catholic University of Rio Grande do Sul, PUCRS, Porto Alegre, Brazil.
  • de Castro AM; Geobiology Laboratory, Institute of Petroleum and Natural Resources, Pontifical Catholic University of Rio Grande do Sul, PUCRS, Porto Alegre, Brazil.
  • Medina-Silva R; Geobiology Laboratory, Institute of Petroleum and Natural Resources, Pontifical Catholic University of Rio Grande do Sul, PUCRS, Porto Alegre, Brazil.
J Appl Microbiol ; 132(3): 1954-1966, 2022 Mar.
Article in En | MEDLINE | ID: mdl-34787949
ABSTRACT

AIMS:

Plastic debris are constantly released into oceans where, due to weathering processes, they suffer fragmentation into micro- and nanoplastics. Diverse microbes often colonize these persisting fragments, contributing to their degradation. However, there are scarce reports regarding the biofilm formation of eukaryotic decomposing microorganisms on plastics. Here, we evaluated five yeast isolates from deep-sea sediment for catabolic properties and early adhesion ability on high-density polyethylene (HDPE). METHODS AND

RESULTS:

We assessed yeast catabolic features and adhesion ability on HDPE fragments subjected to abiotic weathering. Adhered cells were evaluated through Crystal Violet Assay, Scanning Electron Microscopy, Atomic Force Microscopy and Infrared Spectroscopy. Isolates were identified as Candida parapsilosis and exhibited wide catabolic capacity. Two isolates showed high adhesion ability on HDPE, consistently higher than the reference C. parapsilosis strain, despite an increase in fragment roughness due to weathering. Isolate Y5 displayed the most efficient colonization, with production of polysaccharides and lipids after 48 h of incubation.

CONCLUSION:

This work provides insights on catabolic metabolism and initial yeast-HDPE interactions of marine C. parapsilosis strains. SIGNIFICANCE AND IMPACT OF THE STUDY Our findings represent an essential contribution to the characterization of early interactions between deep-sea undescribed yeast strains and plastic pollutants found in oceans.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Polyethylene / Candida parapsilosis Type of study: Prognostic_studies Language: En Journal: J Appl Microbiol Journal subject: MICROBIOLOGIA Year: 2022 Type: Article Affiliation country: Brazil

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Polyethylene / Candida parapsilosis Type of study: Prognostic_studies Language: En Journal: J Appl Microbiol Journal subject: MICROBIOLOGIA Year: 2022 Type: Article Affiliation country: Brazil