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Article

Sulfated Chitosan Induces Membrane Disruption, Aggregation, and Antibiofilm Activity in Piscirickettsia salmonis: A Biomimetic Strategy as an Antimicrobial Alternative in Aquaculture

by
Darwuin Arrieta-Mendoza
1,2,3,
Alejandro A. Hidalgo
4,
Andrónico Neira-Carrillo
5,* and
Sergio A. Bucarey
1,*
1
Centro Biotecnológico Veterinario, Biovetec, Departamento de Ciencias Biológicas Animales, Facultad de Ciencias Veterinarias y Pecuarias, Universidad de Chile, Santa Rosa 11735, La Pintana, Santiago 8820000, Chile
2
Programa de Doctorado en Ciencias Silvoagropecuarias y Veterinarias, Facultad de Ciencias Agronómicas, Campus Sur, Universidad de Chile, Santa Rosa 11315, La Pintana, Santiago 8820808, Chile
3
Catedra de Farmacología y Toxicología, Departamento de Ciencias Biomédicas, Facultad de Ciencias Veterinarias, Universidad Central de Venezuela, Avenida Universidad, vía El Limón, Campus Maracay, Maracay 2105, Venezuela
4
Escuela de Química y Farmacia, Facultad de Medicina, Universidad Andres Bello, Sazié 2320, Santiago 8360000, Chile
5
Laboratorio Polyforms, Departamento de Ciencias Biológicas Animales, Facultad de Ciencias Veterinarias y Pecuarias, Universidad de Chile, Santa Rosa 11735, La Pintana, Santiago 8820000, Chile
*
Authors to whom correspondence should be addressed.
Antibiotics 2026, 15(5), 435; https://doi.org/10.3390/antibiotics15050435
Submission received: 30 March 2026 / Revised: 19 April 2026 / Accepted: 22 April 2026 / Published: 27 April 2026

Abstract

Background: Sulfated chitosan (ChS) is a chemically modified polysaccharide derived from chitin that mimics heparan sulfate (HS) structures and has emerged as a promising antimicrobial biomaterial. Piscirickettsia salmonis, the etiological agent of Salmonid Rickettsial Septicemia (SRS), represents the main driver of antibiotic use in Chilean aquaculture. Objective: In this study, the in vitro antibacterial activity of ChS against P. salmonis was evaluated. Methods: Elemental characterization by SEM-EDS and FTIR analysis confirmed successful sulfation of the polymer, with a degree of sulfation ranging from 0.92 to 0.95. Additionally, X-ray diffraction (XRD) analysis revealed a reduction in polymer crystallinity, indicating a transition toward a more amorphous structure associated with increased molecular flexibility and functional group accessibility. Results: Antibacterial assays revealed a minimum inhibitory concentration (MIC) of 1500 µg/mL and a minimum bactericidal concentration (MBC ≥ 1500 µg/mL). LIVE/DEAD™ fluorescence imaging showed the formation of bacterial aggregates with increasing size, frequency, and red fluorescence compared to controls over the exposure to ChS, indicating progressive membrane damage. This was supported by a reduction (p < 0.05) in the Green/Red fluorescence ratio of 37–46% between 5 h and 96 h of exposure, corresponding to alteration of the cell membrane. Scanning electron microscopy revealed pronounced morphological alterations by ChS, including surface disruption and loss of cellular integrity. This was more severe compared to commercial chitosan (ChC). Also, ChS reduced (p < 0.05) biofilm formation (>50% at day 6 and 34.8% at day 8). Conclusions: These results demonstrated that ChS disrupts the cell membrane and reduces biofilm formation in P. salmonis, thereby affecting viability. This is the first report of the antibacterial effect of ChS, an HS analogue, against P. salmonis.
Keywords: sulfated chitosan; Piscirickettsia salmonis; antibiofilm activity; antimicrobial alternative; heparan sulfate mimetic; bacterial membrane disruption; bacterial aggregates sulfated chitosan; Piscirickettsia salmonis; antibiofilm activity; antimicrobial alternative; heparan sulfate mimetic; bacterial membrane disruption; bacterial aggregates

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MDPI and ACS Style

Arrieta-Mendoza, D.; Hidalgo, A.A.; Neira-Carrillo, A.; Bucarey, S.A. Sulfated Chitosan Induces Membrane Disruption, Aggregation, and Antibiofilm Activity in Piscirickettsia salmonis: A Biomimetic Strategy as an Antimicrobial Alternative in Aquaculture. Antibiotics 2026, 15, 435. https://doi.org/10.3390/antibiotics15050435

AMA Style

Arrieta-Mendoza D, Hidalgo AA, Neira-Carrillo A, Bucarey SA. Sulfated Chitosan Induces Membrane Disruption, Aggregation, and Antibiofilm Activity in Piscirickettsia salmonis: A Biomimetic Strategy as an Antimicrobial Alternative in Aquaculture. Antibiotics. 2026; 15(5):435. https://doi.org/10.3390/antibiotics15050435

Chicago/Turabian Style

Arrieta-Mendoza, Darwuin, Alejandro A. Hidalgo, Andrónico Neira-Carrillo, and Sergio A. Bucarey. 2026. "Sulfated Chitosan Induces Membrane Disruption, Aggregation, and Antibiofilm Activity in Piscirickettsia salmonis: A Biomimetic Strategy as an Antimicrobial Alternative in Aquaculture" Antibiotics 15, no. 5: 435. https://doi.org/10.3390/antibiotics15050435

APA Style

Arrieta-Mendoza, D., Hidalgo, A. A., Neira-Carrillo, A., & Bucarey, S. A. (2026). Sulfated Chitosan Induces Membrane Disruption, Aggregation, and Antibiofilm Activity in Piscirickettsia salmonis: A Biomimetic Strategy as an Antimicrobial Alternative in Aquaculture. Antibiotics, 15(5), 435. https://doi.org/10.3390/antibiotics15050435

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