Marra, Daniele (2025) Role of gravity and shear stress on bacterial motility and biofilm morphology. [Tesi di dottorato]
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| Tipologia del documento: | Tesi di dottorato |
|---|---|
| Lingua: | English |
| Titolo: | Role of gravity and shear stress on bacterial motility and biofilm morphology |
| Autori: | Autore Email Marra, Daniele daniele.marra2@unina.it |
| Data: | 10 Febbraio 2025 |
| Numero di pagine: | 222 |
| Istituzione: | Università degli Studi di Napoli Federico II |
| Dipartimento: | Ingegneria Chimica, dei Materiali e della Produzione Industriale |
| Dottorato: | Biotecnologie |
| Ciclo di dottorato: | 37 |
| Coordinatore del Corso di dottorato: | nome email Moracci, Marco marco.moracci@unina.it |
| Tutor: | nome email Caserta, Sergio [non definito] Marzocchella, Antonio [non definito] |
| Data: | 10 Febbraio 2025 |
| Numero di pagine: | 222 |
| Parole chiave: | Biofilm, Flow, Gravity |
| Settori scientifico-disciplinari del MIUR: | Area 05 - Scienze biologiche > BIO/11 - Biologia molecolare Area 05 - Scienze biologiche > BIO/19 - Microbiologia generale Area 09 - Ingegneria industriale e dell'informazione > ING-IND/24 - Principi di ingegneria chimica |
| Informazioni aggiuntive: | Appartengo al ciclo 37 |
| Depositato il: | 21 Ott 2025 09:25 |
| Ultima modifica: | 09 Ago 2026 06:05 |
| URI: | https://www.fedoa.unina.it/id/eprint/16698 |
Abstract
Biofilm proliferation in confined environments poses significant challenges across various fields, from contamination of biomedical devices to fouling of industrial equipment. Evidence of biofilm growth has also been documented beyond Earth, aboard the International Space Station (ISS), under unique microgravity conditions. A notable example, of biofilms negative implication on ISS, is the Water Recovery System (WRS), where surfaces in contact with flowing liquids have experienced biofilm-related fouling, leading to functional failures. Microgravity introduces additional challenges, with contradictory studies reporting altered bacterial growth, gene expression, and biofilm morphology. These findings remain inconclusive, with contrasting behaviours observed between motile and non-motile bacterial strains, suggesting an intricate interplay between gravity and motility in shaping biofilms. This doctoral thesis systematically investigates the combined effects of shear stresses and gravity vector on bacterial motility and biofilm formation. A microfluidic approach, combined with advanced image analysis techniques, was employed to characterize bacterial trajectories and biofilm development in confined environments under controlled laminar flow. Results reveal a measurable impact of gravity on bacterial spatial organization, motility, and biofilm morphology. Additionally, space-relevant variables such as nanoparticle coatings and Relative Humidity control were investigated to develop strategies for controlling microbial adhesion and facilitating biofilm removal from surfaces. To deepen the understanding between motility and biofilm, the CRISPR/Cas9 interference was implemented to silence flagellar genes in two bacterial strains: Pseudomonas fluorescens and Bacillus subtilis. This research not only advances our understanding of biofilm development under mechanical stresses but also lays the groundwork for designing sustainable solutions to support long-term space exploration.
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