Gram-Negative Bacteria Targeting AIE Photosensitizer for Selective Photodynamic Killing of Vibrio vulnificus

Hao-Tian Xin , Qiao-Wen Lin , Simin Sun , Yu-Ying Wang , Bing Liu , Wen-Jin Wang , Zong-Wan Mao , Kang-Nan Wang

Aggregate ›› 2025, Vol. 6 ›› Issue (3) : e709

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Aggregate ›› 2025, Vol. 6 ›› Issue (3) : e709 DOI: 10.1002/agt2.709
RESEARCH ARTICLE

Gram-Negative Bacteria Targeting AIE Photosensitizer for Selective Photodynamic Killing of Vibrio vulnificus

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Abstract

Vibrio vulnificus is a highly virulent Gram-negative bacterium exhibiting extensive resistance to various antibiotics, presenting significant challenges for efficient and selective eradication. Recently, photosensitizer (PS)-based photodynamic therapy has emerged as an effective strategy against bacteria and biofilms. However, traditional PS struggles to penetrate the unique membrane structure of Gram-negative bacteria such as V. vulnificus, while avoiding traversal of the membrane barrier of eukaryotic cells. To address this issue, herein, a PS named BDTP with aggregation-induced emission properties was developed. BDTP can specifically target the DNA of V. vulnificus, but integrate into the cell membrane, preventing damage to the contents in eukaryotic cells due to its hydrophilic/lipophilic “Y-shaped” structural characteristics. In dark conditions, BDTP functions as an antibiotic, inhibiting bacterial proliferation. Upon white light stimulation, BDTP can induce phototoxic damage to the DNA of V. vulnificus and effectively inhibit/clear V. vulnificus biofilms. Additionally, the eukaryotic cell membrane barrier significantly reduces PS-induced damage to its nucleic acids. This strategy significantly promotes the healing of infected wounds in V. vulnificus-infected mice. Our work introduces the first PS targeting V. vulnificus-associated infections, demonstrating efficacy both in vitro and in vivo.

Keywords

aggregation-induced emission / antibacterial / photodynamic therapy / photosensitizer / Vibrio vulnificus

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Hao-Tian Xin, Qiao-Wen Lin, Simin Sun, Yu-Ying Wang, Bing Liu, Wen-Jin Wang, Zong-Wan Mao, Kang-Nan Wang. Gram-Negative Bacteria Targeting AIE Photosensitizer for Selective Photodynamic Killing of Vibrio vulnificus. Aggregate, 2025, 6(3): e709 DOI:10.1002/agt2.709

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References

[1]

W. Lee, S. H. Lee, M. Kim, et al., “Vibrio vulnificus Quorum-Sensing Molecule Cyclo(Phe-Pro) Inhibits RIG-I-mediated Antiviral Innate Immunity,” Nature Communications 9 (2018): 1606.

[2]

M. K. Jones and J. D. Oliver, “Vibrio vulnificus: Disease and Pathogenesis,” Infection and Immunity 77 (2009): 1723.

[3]

C. Baker-Austin and J. D. Oliver, “Vibrio vulnificus: New Insights Into a Deadly Opportunistic Pathogen,” Environmental Microbiology 20 (2018): 423.

[4]

M. H. Bross, K. Soch, R. Morales, and R. B. Mitchell, “Vibrio Vulnificus Infection: Diagnosis and Treatment,” American Family Physician 76 (2007): 539.

[5]

K. M. Coerdt and A. Khachemoune, “Vibrio vulnificus: Review of Mild to Life-threatening Skin Infections,” Cutis; Cutaneous Medicine for the Practitioner 107 (2021): E12.

[6]

J. D. Oliver, “The Biology of Vibrio vulnificus,” Microbiology Spectrum 3 (2015): 10.

[7]

A. Briet, N. Helsens, S. Delannoy, et al., “NDM-1-Producing Vibrio Parahaemolyticus Isolated From Imported Seafood,” Journal of Antimicrobial Chemotherapy 73 (2018): 2578.

[8]

H. J. Tang, M. C. Chang, W. C. Ko, K. Y. Huang, C. L. Lee, and Y. C. Chuang, “In Vitro and In Vivo Activities of Newer Fluoroquinolones Against Vibrio vulnificus,” Antimicrobial Agents and Chemotherapy 46 (2002): 3580.

[9]

P. Bhat, M. Bhaskar, S. Sistla, and T. Kadhiravan, “Fatal Case of Necrotising Fasciitis Due to Vibrio vulnificus in a Patient With Alcoholic Liver Disease and Diabetes Mellitus,” BMJ Case Reports 12 (2019): e227851.

[10]

H. M. Zowawi, P. N. Harris, M. J. Roberts, et al., “The Emerging Threat of Multidrug-Resistant Gram-Negative Bacteria in Urology,” Nature Reviews Urology 12 (2015): 570.

[11]

J. K. Martin, J. P. Sheehan, B. P. Bratton, G. M. Moore, et al., “A Dual-Mechanism Antibiotic Kills Gram-Negative Bacteria and Avoids Drug Resistance,” Cell 181 (2020): 1518.

[12]

K. Sands, M. J. Carvalho, E. Portal, et al., “Characterization of Antimicrobial-Resistant Gram-Negative Bacteria That Cause Neonatal Sepsis in Seven Low- and Middle-Income Countries,” Nature microbiology 6 (2021): 512.

[13]

Q. Kan, Y. Song, Y. Yao, et al., “A Core-Shell-Structured Zeolitic Imidazolate Framework@Cationic Antimicrobial Agent Templated Silica Nanocomposite for Tackling Antibiotic Resistant Bacteria Infection,” Aggregate 5 (2024): e523.

[14]

B. H. Gan, J. Gaynord, S. M. Rowe, T. Deingruber, and D. R. Spring, “The Multifaceted Nature of Antimicrobial Peptides: Current Synthetic Chemistry Approaches and Future Directions,” Chemical Society Reviews 50 (2021): 7820.

[15]

S. M. Schrader, J. Vaubourgeix, and C. Nathan, “Biology of Antimicrobial Resistance and Approaches to Combat It,” Science Translational Medicine 12 (2020): eaaz6992.

[16]

M. M. S. Lee, W. Xu, L. Zheng, et al., “Ultrafast Discrimination of Gram-Positive Bacteria and Highly Efficient Photodynamic Antibacterial Therapy Using Near-Infrared Photosensitizer With Aggregation-Induced Emission Characteristics,” Biomaterials 230 (2020): 119582.

[17]

J. Lu, Q. Liu, Y. Zhang, Y. Zhou, and Y. Zhou, “Antibacterial Performance of Cationic Quaternary Phosphonium-Modified Chitosan Polymer in Water,” Chinese Chemical Letters 35 (2024): 109406.

[18]

P. P. Kalelkar, M. Riddick, and A. J. Garcia, “Biomaterial-Based Antimicrobial Therapies for the Treatment of Bacterial Infections,” Nature Reviews Materials 7 (2022): 39.

[19]

A. Frei, A. D. Verderosa, A. G. Elliott, J. Zuegg, and M. A. T. Blaskovich, “Metals to Combat Antimicrobial Resistance,” Nature Reviews Chemistry 7 (2023): 202.

[20]

B. Wang, M. Wang, A. Mikhailovsky, S. Wang, and G. C. Bazan, “A Membrane-Intercalating Conjugated Oligoelectrolyte With High-Efficiency Photodynamic Antimicrobial Activity,” Angewandte Chemie International Edition 56 (2017): 5031.

[21]

H. Yuan, Z. Liu, L. Liu, F. Lv, Y. Wang, and S. Wang, “Cationic Conjugated Polymers for Discrimination of Microbial Pathogens,” Advanced Materials 26 (2014): 4333.

[22]

H. H. Buzza, F. Alves, A. J. B. Tome, et al., “Porphyrin Nanoemulsion for Antimicrobial Photodynamic Therapy: Effective Delivery to Inactivate Biofilm-Related Infections,” Proceedings of the National Academy of Sciences 119 (2022): e2216239119.

[23]

M. Piksa, C. Lian, I. C. Samuel, K. J. Pawlik, I. D. W. Samuel, and K. Matczyszyn, “The Role of the Light Source in Antimicrobial Photodynamic Therapy,” Chemical Society Reviews 52 (2023): 1697.

[24]

J. M. Oh, C. C. Venters, C. Di, et al., “U1 snRNP Regulates Cancer Cell Migration and Invasion In Vitro,” Nature Communications 11 (2020): 1.

[25]

S. Deng, Z. Peng, F. Zhou, et al., “Elaborately Engineered Au(I)-Based AIEgens: Robust and Broad-Spectrum Elimination Abilities toward Drug-Resistant Bacteria,” Aggregate 5 (2024): e575.

[26]

Y. Zou, H. X. Liu, L. Cai, et al., “Strategy to Efficient Photodynamic Therapy for Antibacterium: Donor-Acceptor Structure in Hydrogen-Bonded Organic Framework,” Advanced Materials 36 (2024): e2406026.

[27]

X. Wu, M. Yang, J. S. Kim, et al., “Reactivity Differences Enable ROS for Selective Ablation of Bacteria,” Angewandte Chemie International Edition 61 (2022): e202200808.

[28]

L. Zheng, Y. Zhu, Y. Sun, et al., “Flexible Modulation of Cellular Activities With Cationic Photosensitizers: Insights of Alkyl Chain Length on Reactive Oxygen Species Antimicrobial Mechanisms,” Advanced Materials 35 (2023): e2302943.

[29]

G. Wei, G. Yang, Y. Wang, et al., “Phototherapy-Based Combination Strategies for Bacterial Infection Treatment,” Theranostics 10 (2020): 12241.

[30]

S. Wu, C. Xu, Y. Zhu, et al., “Biofilm-Sensitive Photodynamic Nanoparticles for Enhanced Penetration and Antibacterial Efficiency,” Advanced Functional Materials 31 (2021): 2103591.

[31]

H. Huang, D. Yu, F. Hu, et al., “Clusters Induced Electron Redistribution to Tune Oxygen Reduction Activity of Transition Metal Single-Atom for Metal-Air Batteries,” Angewandte Chemie International Edition 61 (2022): e202116068.

[32]

Q. Borjihan, H. Wu, A. Dong, H. Gao, and Y. W. Yang, “AIEgens for Bacterial Imaging and Ablation,” Advanced Healthcare Materials 10 (2021): e2100877.

[33]

L. Han, Y. Zhang, B. Huang, X. Bian, and B. Z. Tang, “Aggregation-Induced Emission Artificial Enzyme (AIEzyme) With DNase-Like Activity: Imaging and Matrix Cleavage for Combating Bacterial Biofilm,” Aggregate 4 (2023): e360.

[34]

C. Li, C. Zong, Y. Liu, Z. Liu, K.-N. Wang, and X. Yu, “Probing Mitochondrial Damage Using a Fluorescent Probe With Mitochondria-to-Nucleolus Translocation,” Chinese Chemical Letters 35 (2024): 108323.

[35]

D. Wang and B. Z. Tang, “Aggregation-Induced Emission Luminogens for Activity-Based Sensing,” Accounts of Chemical Research 52 (2019): 2559.

[36]

X. Cai and B. Liu, “Aggregation-Induced Emission: Recent Advances in Materials and Biomedical Applications,” Angewandte Chemie International Edition 59 (2020): 9868.

[37]

K. N. Wang, L. Y. Liu, D. Mao, et al., “A Nuclear-Targeted AIE Photosensitizer for Enzyme Inhibition and Photosensitization in Cancer Cell Ablation,” Angewandte Chemie International Edition 61 (2022): e202114600.

[38]

K.-N. Wang, G. Qi, H. Chu, et al., “Probing Cell Membrane Damage Using a Molecular Rotor Probe With Membrane-to-Nucleus Translocation,” Materials Horizons 7 (2020): 3226.

[39]

F. W. Xia, B. W. Guo, Y. Zhao, et al., “Type I Photosensitizer Targeting Glycans: Overcoming Biofilm Resistance by Inhibiting the Two-Component System, Quorum Sensing, and Multidrug Efflux,” Advanced Materials 35 (2023): e2309797.

[40]

K. N. Wang, L. Y. Liu, D. Mao, et al., “A Nuclear-Targeted AIE Photosensitizer for Enzyme Inhibition and Photosensitization in Cancer Cell Ablation,” Angewandte Chemie International Edition 61 (2022): e202114600.

[41]

L. Y. Liu, W. Liu, K. N. Wang, et al., “Quantitative Detection of G-Quadruplex DNA in Live Cells Based on Photon Counts and Complex Structure Discrimination,” Angewandte Chemie International Edition 59 (2020): 9719.

[42]

W. J. Wang, X. Mu, C. P. Tan, et al., “Induction and Monitoring of DNA Phase Separation in Living Cells by a Light-Switching Ruthenium Complex,” Journal of the American Chemical Society 143 (2021): 11370.

[43]

Z. R. Li, J. Li, W. Cai, et al., “Macrocyclic Colibactin Induces DNA Double-Strand Breaks via Copper-Mediated Oxidative Cleavage,” Nature Chemistry 11 (2019): 880.

[44]

J. H. Lee, J. B. Rho, K. J. Park, et al., “Role of Flagellum and Motility in Pathogenesis of Vibrio vulnificus,” Infection and Immunity 72 (2004): 4905.

[45]

J. Mei, D. Xu, L. Wang, et al., “Biofilm Microenvironment-Responsive Self-Assembly Nanoreactors for All-Stage Biofilm Associated Infection Through Bacterial Cuproptosis-Like Death and Macrophage Re-Rousing,” Advanced Materials 35 (2023): e2303432.

[46]

S. M. Faruque, K. Biswas, S. M. Udden, et al., “Transmissibility of Cholera: In Vivo -Formed Biofilms and Their Relationship to Infectivity and Persistence in the Environment,” Proceedings of the National Academy of Sciences 103 (2006): 6350.

[47]

Y. Gao, Z. He, X. He, et al., “Dual-Color Emissive AIEgen for Specific and Label-Free Double-Stranded DNA Recognition and Single-Nucleotide Polymorphisms Detection,” Journal of the American Chemical Society 141 (2019): 20097.

[48]

K.-N. Wang, G. Qi, H. Chu, et al., “Probing Cell Membrane Damage Using a Molecular Rotor Probe With Membrane-to-Nucleus Translocation,” Materials Horizons 7 (2020): 3226.

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2024 The Author(s). Aggregate published by SCUT, AIEI, and John Wiley & Sons Australia, Ltd.

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