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Linking microbial slime community structure with abiotic factors and antifouling strategy in hydroelectric cooling systems
Linking microbial slime community structure with abiotic factors and antifouling strategy in hydroelectric cooling systems
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Linking microbial slime community structure with abiotic factors and antifouling strategy in hydroelectric cooling systems
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Linking microbial slime community structure with abiotic factors and antifouling strategy in hydroelectric cooling systems
Linking microbial slime community structure with abiotic factors and antifouling strategy in hydroelectric cooling systems

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Linking microbial slime community structure with abiotic factors and antifouling strategy in hydroelectric cooling systems
Linking microbial slime community structure with abiotic factors and antifouling strategy in hydroelectric cooling systems
Journal Article

Linking microbial slime community structure with abiotic factors and antifouling strategy in hydroelectric cooling systems

2023
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Overview
Microfouling can have significant economic impacts for hydroelectric power plants. However, knowledge concerning the composition and metabolism of microbial biofilm in cooling systems remains scarce. We examined the metagenome present in a cooling system, comprising a filter (F) and heat exchanger (HE), in the Nova Ponte hydroelectric power plant in Brazil, to identify bacteria and pathways that could be targeted to monitor and control biofilm formation. Our data revealed that the microfouling sample from heat exchanger 1 (HEM1), with porous consistency, presented enriched bacterial members not frequently described as biofilm formers in cooling systems, besides it has been shown to be an autoinducer repression pathway. Furthermore, the microfouling sample from heat exchanger 2 (HEM2), with gelatinous consistency, seemed to be an established biofilm, containing enriched bacterial groups such as Desulfotomaculum and Crenothrix and autoinducers, with biotechnological relevance in industrial biofilms. The results demonstrate that biofilm composition will vary depending on different abiotic conditions and the antifouling strategy used, including type of compound, concentration, and frequency of use. Therefore, all these variables must be evaluated when a power plant is affected by microbial slime in the cooling system. Our findings could help to define strategies for efficient and ecofriendly measures to contain microfouling in power plants.