TY - JOUR
T1 - Molecular Engineering of Aggregation-induced Emission Peroxynitrite Generators for Biofilm Eradication via Bilayer Microneedles
AU - Gao, Xueli
AU - Ni, Junjun
AU - Yao, Tianyu
AU - Guo, Liang
AU - Yu, Xueqing
AU - Jin, Guorui
AU - Zhao, Jing
AU - Fan, Daidi
N1 - Publisher Copyright:
© 2025 The Author(s). Aggregate published by SCUT, AIEI, and John Wiley & Sons Australia, Ltd.
PY - 2025/11
Y1 - 2025/11
N2 - Photoactivatable peroxynitrite (ONOO−), with prolonged half-life, enhanced diffusion, and precise spatiotemporal control, has emerged as a potent anti-biofilm and antimicrobial agent. However, conventional ONOO− generators are usually designed using planar molecular skeletons, which suffer from aggregate-caused reactive oxygen species reduction, thereby restricting ONOO− production. Herein, we present the series of photoactivatable ONOO− generators with aggregation-induced emission (AIE) characteristics—PyTP-NO, PyPTP-NO, and +PyPTP-NO—among which +PyPTP-NO enables efficient ONOO− production. Enhancing electron-withdrawing capability and extending π-conjugation has proven to be an effective strategy for designing ONOO−-generating AIEgens, as the resulting increases in excitation coefficients and intersystem crossing promote both superoxide anion generation and nitric oxide (NO) release, thereby boosting ONOO− production. To overcome the biofilm barrier, +PyPTP-NO was further incorporated into the fast-dissolving tips of a bilayer microneedle patch (+PyPTP-NO@DMN) to enable rapid release of the +PyPTP-NO for efficient biofilm eradication, while the base layer was loaded with recombinant collagen (CF-1552) to facilitate wound healing. Post-activation, +PyPTP-NO converts to the non-toxic product +PyPTP-NH, minimizing photo-toxicity to ensure biosafety during wound healing. This study not only provides a generalizable molecular design strategy for developing efficient ONOO− generators but also establishes a versatile therapeutic platform that enables effective biofilm eradication and safe tissue regeneration.
AB - Photoactivatable peroxynitrite (ONOO−), with prolonged half-life, enhanced diffusion, and precise spatiotemporal control, has emerged as a potent anti-biofilm and antimicrobial agent. However, conventional ONOO− generators are usually designed using planar molecular skeletons, which suffer from aggregate-caused reactive oxygen species reduction, thereby restricting ONOO− production. Herein, we present the series of photoactivatable ONOO− generators with aggregation-induced emission (AIE) characteristics—PyTP-NO, PyPTP-NO, and +PyPTP-NO—among which +PyPTP-NO enables efficient ONOO− production. Enhancing electron-withdrawing capability and extending π-conjugation has proven to be an effective strategy for designing ONOO−-generating AIEgens, as the resulting increases in excitation coefficients and intersystem crossing promote both superoxide anion generation and nitric oxide (NO) release, thereby boosting ONOO− production. To overcome the biofilm barrier, +PyPTP-NO was further incorporated into the fast-dissolving tips of a bilayer microneedle patch (+PyPTP-NO@DMN) to enable rapid release of the +PyPTP-NO for efficient biofilm eradication, while the base layer was loaded with recombinant collagen (CF-1552) to facilitate wound healing. Post-activation, +PyPTP-NO converts to the non-toxic product +PyPTP-NH, minimizing photo-toxicity to ensure biosafety during wound healing. This study not only provides a generalizable molecular design strategy for developing efficient ONOO− generators but also establishes a versatile therapeutic platform that enables effective biofilm eradication and safe tissue regeneration.
KW - aggregation-induced emission
KW - bacterial imaging
KW - microneedles
KW - peroxynitrite generators
KW - phototoxicity
UR - https://www.scopus.com/pages/publications/105019210806
U2 - 10.1002/agt2.70181
DO - 10.1002/agt2.70181
M3 - 文章
AN - SCOPUS:105019210806
SN - 2766-8541
VL - 6
JO - Aggregate
JF - Aggregate
IS - 11
M1 - e70181
ER -