TY - JOUR
T1 - Porous Baicalin-Fe(III) ICP@Propofol nanocomposites for enhanced anesthetic efficacy and reduced toxicity via neuroprotection and ultrasound assistance
AU - Zhang, Shuo
AU - Shi, Lei
AU - He, Jiansheng
AU - Xia, Ji
AU - Li, Shunlian
AU - Wang, Rong
AU - Ma, Qingyan
AU - Zhu, Mingting
AU - Tang, Peng
AU - Tian, Hao
AU - Wang, Feiqian
AU - Wan, Mingxi
AU - Wu, Daocheng
AU - Gao, Wei
AU - Ma, Xiancang
AU - Zhu, Feng
N1 - Publisher Copyright:
© 2026 Shenyang Pharmaceutical University.
PY - 2026/2
Y1 - 2026/2
N2 - To enhance the anesthetic efficacy of propofol while mitigating its systemic toxicity and irreversible developmental neurotoxicity, we developed a strategy leveraging the neuroprotective effects of baicalin in combination with propofol anesthesia via baicalin-based nanocomposites. High propofol-loaded porous Baicalin-Fe(III) infinite coordination polymer@propofol nanocomposites were synthesized, wherein baicalin coordinates with Fe3+ ions to form porous nanoparticles that encapsulate propofol within a core-shell structure. These nanocomposites exhibited an average diameter of 92.3 ± 10.2 nm and a pore volume of 0.322 cm3/g, achieving ultra-high propofol loading (∼62%) with no detectable leakage over 100 d, attributed to their large surface area and strong molecular interactions. When combined with focused ultrasound (FUS) and microbubbles, the effective dose (ED50) of propofol decreased from 10 to 4.3 mg/kg, doubling the duration of anesthesia and extending the therapeutic window by 200%. Importantly, the therapeutic index improved 1.66-fold while vital physiological parameters remained stable. Histological analyses revealed an 80% reduction in neuronal injury compared to free propofol, and behavioral tests demonstrated significant enhancements in motor and cognitive performance, alongside recovery from propofol-induced irreversible developmental neurotoxicity, indicating effective neuroprotection. Collectively, this baicalin-propofol nanocomposite, coupled with FUS-mediated delivery, represents a promising approach for safe and long-term anesthesia in clinical applications.
AB - To enhance the anesthetic efficacy of propofol while mitigating its systemic toxicity and irreversible developmental neurotoxicity, we developed a strategy leveraging the neuroprotective effects of baicalin in combination with propofol anesthesia via baicalin-based nanocomposites. High propofol-loaded porous Baicalin-Fe(III) infinite coordination polymer@propofol nanocomposites were synthesized, wherein baicalin coordinates with Fe3+ ions to form porous nanoparticles that encapsulate propofol within a core-shell structure. These nanocomposites exhibited an average diameter of 92.3 ± 10.2 nm and a pore volume of 0.322 cm3/g, achieving ultra-high propofol loading (∼62%) with no detectable leakage over 100 d, attributed to their large surface area and strong molecular interactions. When combined with focused ultrasound (FUS) and microbubbles, the effective dose (ED50) of propofol decreased from 10 to 4.3 mg/kg, doubling the duration of anesthesia and extending the therapeutic window by 200%. Importantly, the therapeutic index improved 1.66-fold while vital physiological parameters remained stable. Histological analyses revealed an 80% reduction in neuronal injury compared to free propofol, and behavioral tests demonstrated significant enhancements in motor and cognitive performance, alongside recovery from propofol-induced irreversible developmental neurotoxicity, indicating effective neuroprotection. Collectively, this baicalin-propofol nanocomposite, coupled with FUS-mediated delivery, represents a promising approach for safe and long-term anesthesia in clinical applications.
KW - Baicalin
KW - Infinite coordination polymer
KW - Neuroprotection
KW - Propofol
KW - Ultrasound
UR - https://www.scopus.com/pages/publications/105029289286
U2 - 10.1016/j.ajps.2026.101117
DO - 10.1016/j.ajps.2026.101117
M3 - 文章
AN - SCOPUS:105029289286
SN - 1818-0876
VL - 21
JO - Asian Journal of Pharmaceutical Sciences
JF - Asian Journal of Pharmaceutical Sciences
IS - 1
M1 - 101117
ER -