Kerong Chen,Jielei He,Anwei Zhou,Jiayi Zhu,Shiqin Sheng,Zhen Fu,Xinghai Ning
{"title":"超声激活的噬菌体协同声动力疗法和Saltoptosis根除实体肿瘤。","authors":"Kerong Chen,Jielei He,Anwei Zhou,Jiayi Zhu,Shiqin Sheng,Zhen Fu,Xinghai Ning","doi":"10.1002/adma.202508245","DOIUrl":null,"url":null,"abstract":"Sodium overload has emerged as a novel antitumor approach, which is termed as \"saltoptosis,\" due to its significant therapeutic potential. However, its inherent limitations and related solid tumor treatment challenges have impeded clinical translation. A synergistic strategy integrating saltoptosis with sonodynamic therapy (SDT) is proposed to enhance therapeutic efficacy. Specifically, a M1 macrophage extracellular vesicle-liposome hybrid (termed \"Sonophage\"), encapsulating sonosensitizer (Ce6), oxygen-enriched perfluorocarbon (PFC-O2), and salt solution (brine), is engineered. This innovative design enables the simultaneous activation of sonodynamic saltoptosis. Under ultrasound, Sonophage directly damages tumor cells via SDT while inducing immunogenic cell death. Concurrently, sodium overload, paired with the biological functions of M1 macrophage extracellular vesicles, reprograms the immunosuppressive tumor microenvironment by polarizing macrophages to a pro-inflammatory M1 phenotype and enhancing T-cell activation, key drivers of antitumor immunity. Additionally, PFC-O2 alleviates tumor hypoxia, amplifying the combined therapeutic impact. Preclinical studies show that Sonophage selectively targets and penetrates tumors, significantly inhibiting progression, priming systemic immunity to prevent metastasis, and ultimately extending survival. Transcriptomic analysis further confirms its potential to enhance immune responses against tumors. Thus, this combination therapy, where sondynamic waves in a sea of salt orchestrate a synergistic attack on tumors, offers a promising new avenue for advancing cancer treatment.","PeriodicalId":114,"journal":{"name":"Advanced Materials","volume":"89 1","pages":"e08245"},"PeriodicalIF":26.8000,"publicationDate":"2025-10-17","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Ultrasound-Activated Sonophage Synergizes Sonodynamic Therapy and Saltoptosis for Solid Tumor Eradication.\",\"authors\":\"Kerong Chen,Jielei He,Anwei Zhou,Jiayi Zhu,Shiqin Sheng,Zhen Fu,Xinghai Ning\",\"doi\":\"10.1002/adma.202508245\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Sodium overload has emerged as a novel antitumor approach, which is termed as \\\"saltoptosis,\\\" due to its significant therapeutic potential. However, its inherent limitations and related solid tumor treatment challenges have impeded clinical translation. A synergistic strategy integrating saltoptosis with sonodynamic therapy (SDT) is proposed to enhance therapeutic efficacy. Specifically, a M1 macrophage extracellular vesicle-liposome hybrid (termed \\\"Sonophage\\\"), encapsulating sonosensitizer (Ce6), oxygen-enriched perfluorocarbon (PFC-O2), and salt solution (brine), is engineered. This innovative design enables the simultaneous activation of sonodynamic saltoptosis. Under ultrasound, Sonophage directly damages tumor cells via SDT while inducing immunogenic cell death. Concurrently, sodium overload, paired with the biological functions of M1 macrophage extracellular vesicles, reprograms the immunosuppressive tumor microenvironment by polarizing macrophages to a pro-inflammatory M1 phenotype and enhancing T-cell activation, key drivers of antitumor immunity. Additionally, PFC-O2 alleviates tumor hypoxia, amplifying the combined therapeutic impact. Preclinical studies show that Sonophage selectively targets and penetrates tumors, significantly inhibiting progression, priming systemic immunity to prevent metastasis, and ultimately extending survival. Transcriptomic analysis further confirms its potential to enhance immune responses against tumors. 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Ultrasound-Activated Sonophage Synergizes Sonodynamic Therapy and Saltoptosis for Solid Tumor Eradication.
Sodium overload has emerged as a novel antitumor approach, which is termed as "saltoptosis," due to its significant therapeutic potential. However, its inherent limitations and related solid tumor treatment challenges have impeded clinical translation. A synergistic strategy integrating saltoptosis with sonodynamic therapy (SDT) is proposed to enhance therapeutic efficacy. Specifically, a M1 macrophage extracellular vesicle-liposome hybrid (termed "Sonophage"), encapsulating sonosensitizer (Ce6), oxygen-enriched perfluorocarbon (PFC-O2), and salt solution (brine), is engineered. This innovative design enables the simultaneous activation of sonodynamic saltoptosis. Under ultrasound, Sonophage directly damages tumor cells via SDT while inducing immunogenic cell death. Concurrently, sodium overload, paired with the biological functions of M1 macrophage extracellular vesicles, reprograms the immunosuppressive tumor microenvironment by polarizing macrophages to a pro-inflammatory M1 phenotype and enhancing T-cell activation, key drivers of antitumor immunity. Additionally, PFC-O2 alleviates tumor hypoxia, amplifying the combined therapeutic impact. Preclinical studies show that Sonophage selectively targets and penetrates tumors, significantly inhibiting progression, priming systemic immunity to prevent metastasis, and ultimately extending survival. Transcriptomic analysis further confirms its potential to enhance immune responses against tumors. Thus, this combination therapy, where sondynamic waves in a sea of salt orchestrate a synergistic attack on tumors, offers a promising new avenue for advancing cancer treatment.
期刊介绍:
Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.