Rapid Colonisation of Plastic Surfaces by Marine Alcanivorax Bacteria Is Flagellum-Dependent and Influenced by Polymer Type and Photo-Weathering State.

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Hauptverfasser: Davidov, Keren, Itzahri, Sheli, Kartha, Aiswarya, Orr, Gilad, Lang, Ziv, Navon-Venezia, Shiri, Oren, Matan
Format: Artículo científico
Sprache:en
Veröffentlicht: Environmental microbiology 2025
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author Davidov, Keren
Itzahri, Sheli
Kartha, Aiswarya
Orr, Gilad
Lang, Ziv
Navon-Venezia, Shiri
Oren, Matan
author_facet Davidov, Keren
Itzahri, Sheli
Kartha, Aiswarya
Orr, Gilad
Lang, Ziv
Navon-Venezia, Shiri
Oren, Matan
Davidov, Keren
Itzahri, Sheli
Kartha, Aiswarya
Orr, Gilad
Lang, Ziv
Navon-Venezia, Shiri
Oren, Matan
collection PubMed - marine biology
contents Rapid Colonisation of Plastic Surfaces by Marine Alcanivorax Bacteria Is Flagellum-Dependent and Influenced by Polymer Type and Photo-Weathering State. Davidov, Keren Itzahri, Sheli Kartha, Aiswarya Orr, Gilad Lang, Ziv Navon-Venezia, Shiri Oren, Matan Plastics Flagella Alcanivoraceae Bacterial Adhesion Seawater Ultraviolet Rays Polymers Hydrophobic and Hydrophilic Interactions Biodegradation, Environmental Marine plastic debris provides stable surfaces for microbial colonisation, forming a unique ecosystem known as the plastisphere. Among the early colonisers are Alcanivorax bacteria, hydrocarbon degraders commonly found in oil-polluted seawater and on marine plastic surfaces. This study examined factors influencing the adhesion and colonisation dynamics of six Alcanivorax species. Flagellated species-A. balearicus, A. dieselolei and A. xenomutans-rapidly colonised plastics, particularly polyethylene and polypropylene, while non-flagellated species did not. Notably, plastic photo-weathering treatments led to the elongation of A. dieselolei cells, secretion of extracellular polymeric substance in some cases, and increased colonisation on UVB-treated polyethylene terephthalate. These changes may be linked to the reduced plastic surface hydrophobicity recorded following photo-weathering. To confirm the role of flagella in Alcanivorax adhesion, we disrupted flagellar activity using sub-concentrations of polymyxin B sulfate, resulting in inhibition of swarming motility and complete disruption of colonisation. These results contribute to our understanding of the interactions between hydrocarbon-degrading Alcanivorax bacteria and their plastic substrate, which in turn contributes to the understanding of the ecological impact of plastic pollution in marine environments.
format Artículo científico
id pubmed_40317824
institution PubMed
language en
publishDate 2025
publisher Environmental microbiology
record_format pubmed
spellingShingle Rapid Colonisation of Plastic Surfaces by Marine Alcanivorax Bacteria Is Flagellum-Dependent and Influenced by Polymer Type and Photo-Weathering State.
Davidov, Keren
Itzahri, Sheli
Kartha, Aiswarya
Orr, Gilad
Lang, Ziv
Navon-Venezia, Shiri
Oren, Matan
Plastics
Flagella
Alcanivoraceae
Bacterial Adhesion
Seawater
Ultraviolet Rays
Polymers
Hydrophobic and Hydrophilic Interactions
Biodegradation, Environmental
Rapid Colonisation of Plastic Surfaces by Marine Alcanivorax Bacteria Is Flagellum-Dependent and Influenced by Polymer Type and Photo-Weathering State. Davidov, Keren Itzahri, Sheli Kartha, Aiswarya Orr, Gilad Lang, Ziv Navon-Venezia, Shiri Oren, Matan Plastics Flagella Alcanivoraceae Bacterial Adhesion Seawater Ultraviolet Rays Polymers Hydrophobic and Hydrophilic Interactions Biodegradation, Environmental Marine plastic debris provides stable surfaces for microbial colonisation, forming a unique ecosystem known as the plastisphere. Among the early colonisers are Alcanivorax bacteria, hydrocarbon degraders commonly found in oil-polluted seawater and on marine plastic surfaces. This study examined factors influencing the adhesion and colonisation dynamics of six Alcanivorax species. Flagellated species-A. balearicus, A. dieselolei and A. xenomutans-rapidly colonised plastics, particularly polyethylene and polypropylene, while non-flagellated species did not. Notably, plastic photo-weathering treatments led to the elongation of A. dieselolei cells, secretion of extracellular polymeric substance in some cases, and increased colonisation on UVB-treated polyethylene terephthalate. These changes may be linked to the reduced plastic surface hydrophobicity recorded following photo-weathering. To confirm the role of flagella in Alcanivorax adhesion, we disrupted flagellar activity using sub-concentrations of polymyxin B sulfate, resulting in inhibition of swarming motility and complete disruption of colonisation. These results contribute to our understanding of the interactions between hydrocarbon-degrading Alcanivorax bacteria and their plastic substrate, which in turn contributes to the understanding of the ecological impact of plastic pollution in marine environments.
title Rapid Colonisation of Plastic Surfaces by Marine Alcanivorax Bacteria Is Flagellum-Dependent and Influenced by Polymer Type and Photo-Weathering State.
topic Plastics
Flagella
Alcanivoraceae
Bacterial Adhesion
Seawater
Ultraviolet Rays
Polymers
Hydrophobic and Hydrophilic Interactions
Biodegradation, Environmental
url https://pubmed.ncbi.nlm.nih.gov/40317824/