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Bartolewska M., Kosik-Kozioł A., Krysiak Z., Nakielski P., Liguori A.♦, He L. L.♦, Voyer A.♦, Focarete M. L.♦, Schiffman J. D.♦, Pierini F., Kombucha Bacterial Cellulose Obtained from Tea Fermentation for Biomedical Applications,
ACS Applied Engineering Materials, ISSN: 2771-9545, DOI: 10.1021/acsaenm.6c00708, pp.A-T, 2026 Abstract: The symbiotic culture of bacteria and yeast (SCOBY) driving kombucha tea fermentation produces a cellulose pellicle with remarkable promise for biomedical applications. Unlike well-studied bacterial cellulose (BC), which is produced by single-strain cultures, the underexplored kombucha-derived bacterial cellulose (KBC) can be produced from agro-industrial waste streams and at low capital cost. This review provides an overview of the great potential of KBC for biomedical applications. First, discussions on the cooperative interactions between bacterial and yeast species within the SCOBY consortium that drive the self-assembled production of cellulose at an air-liquid interface are provided. This is followed by an examination of the influence of carbon source, fermentation conditions, and post-processing on KBC yield, crystallinity, porosity, mechanical properties, and water retention. Physical and chemical modification strategies used to tune KBC behavior are then summarized, including silver (Ag) and gold (Au) functionalization, diisocyanate crosslinking, and incorporation as a nanofiller in biodegradable polymer composites. The applications section focuses on wound dressings and antimicrobial platforms, followed by tissue engineering scaffolds suitable for 3D printing and KBC’s role as a drug delivery vehicle. The main barriers to clinical translation are discussed, including limitations in reproducibility linked to undefined SCOBY composition, limited long-term in vivo studies, and the absence of a clear regulatory pathway for functionalized KBC and composites. Keywords: kombucha, bacterial cellulose, SCOBY, tea fermentation, biomedical applications, sustainable biomaterials Affiliations:
| Bartolewska M. | - | IPPT PAN | | Kosik-Kozioł A. | - | IPPT PAN | | Krysiak Z. | - | IPPT PAN | | Nakielski P. | - | IPPT PAN | | Liguori A. | - | University of Bologna (IT) | | He L. L. | - | other affiliation | | Voyer A. | - | other affiliation | | Focarete M. L. | - | University of Bologna (IT) | | Schiffman J. D. | - | other affiliation | | Pierini F. | - | IPPT PAN |
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| 2. |
Liguori A.♦, Pandini S.♦, Rinoldi C., Zaccheroni N.♦, Pierini F., Focarete M.L.♦, Gualandi C.♦, Thermoactive smart electrospun nanofibers,
Macromolecular Rapid Communications, ISSN: 1022-1336, DOI: 10.1002/marc.202100694, Vol.43, No.5, pp.2100694-1-35, 2022 Abstract: The recent burst of research on smart materials is a clear evidence of the growing interest of the scientific community, industry, and society in the field. The exploitation of the great potential of stimuli-responsive materials for sensing, actuation, logic, and control applications is favored and supported by new manufacturing technologies, such as electrospinning, that allows to endow smart materials with micro- and nanostructuration, thus opening up additional and unprecedented prospects. In this wide and lively scenario, this article systematically reviews the current advances in the development of thermoactive electrospun fibers and textiles, sorting them, according to their response to the thermal stimulus. Hence, several platforms including thermoresponsive systems, shape memory polymers, thermo-optically responsive systems, phase change materials, thermoelectric materials, and pyroelectric materials, are described and critically discussed. The difference in active species and outputs of the aforementioned categories is highlighted, evidencing the transversal nature of temperature stimulus. Moreover, the potential of novel thermoactive materials are pointed out, revealing how their development could take to utmost interesting achievements. Keywords: electrospinning, phase change materials, pyroelectric materials, shape memory polymers, thermoelectric materials, thermo-optically responsive materials, thermoresponsive materials Affiliations:
| Liguori A. | - | University of Bologna (IT) | | Pandini S. | - | University of Brescia (IT) | | Rinoldi C. | - | IPPT PAN | | Zaccheroni N. | - | University of Bologna (IT) | | Pierini F. | - | IPPT PAN | | Focarete M.L. | - | University of Bologna (IT) | | Gualandi C. | - | University of Bologna (IT) |
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