Li Xiangji, Li Yangmei, Xu Junxuan, Lu Xinlian, Ma Shixiang, Sun Lan, Chang Chao, Min Li, Fan Chunhai
Department of Gastroenterology, State Key Laboratory of Digestive Health, National Clinical Research Center for Digestive Diseases, Beijing Friendship Hospital, Capital Medical University, Beijing 100050, P. R. China.
Innovation Laboratory of Terahertz Biophysics, National Innovation Institute of Defense Technology, Beijing 100071, P. R. China.
ACS Nano. 2025 Feb 25;19(7):6876-6889. doi: 10.1021/acsnano.4c13075. Epub 2025 Jan 3.
Ferroptosis is a classic type of programmed cell death characterized by iron dependence, which is closely associated with many diseases such as cancer, intestinal ischemic diseases, and nervous system diseases. Transferrin (Tf) is responsible for ferric-ion delivery owing to its natural Fe binding ability and plays a crucial role in ferroptosis. However, Tf is not considered as a classic druggable target for ferroptosis-associated diseases since systemic perturbation of Tf would dramatically disrupt blood iron homeostasis. Here, we reported a nonpharmaceutical, noninvasive, and Tf-targeted electromagnetic intervention technique capable of desensitizing ferroptosis with directivity. First, we revealed that the THz radiation had the ability to significantly decrease binding affinity between the Fe and Tf via molecular dynamics simulations, and the modulation was strongly wavelength-dependent. This result provides theoretical feasibility for the THz modulation-based ferroptosis intervention. Subsequent extracellular and cellular chromogenic activity assays indicated that the THz field at 8.7 μm (i.e., 34.5 THz) inhibited the most Fe bound to the Tf, and the wavelength was in good agreement with the simulated one. Then, functional assays demonstrated that levels of intracellular Fe, lipid peroxidation, malondialdehyde (MDA) and cell death were all significantly reduced in cells treated with this 34.5 THz wave. Furthermore, the iron deposition, lipid peroxidation, and MDA in the ferroptosis disease model induced by ischemia-reperfusion injury could be nearly eliminated by the same radiation, validating THz wave-induced desensitization of ferroptosis . Together, this work provides a preclinical exemplar for electromagnetic irradiation-stimulated desensitization of ferroptosis and predicts an innovative, THz wave-based therapeutic method for ferroptosis-associated diseases in the future.
铁死亡是一种典型的程序性细胞死亡类型,其特征为铁依赖性,与癌症、肠道缺血性疾病和神经系统疾病等多种疾病密切相关。转铁蛋白(Tf)因其天然的铁结合能力而负责铁离子的输送,在铁死亡中起着关键作用。然而,由于Tf的全身扰动会显著破坏血液铁稳态,因此它不被视为铁死亡相关疾病的经典可成药靶点。在此,我们报道了一种非药物、非侵入性且靶向Tf的电磁干预技术,能够定向使铁死亡脱敏。首先,我们通过分子动力学模拟揭示太赫兹辐射有能力显著降低铁与Tf之间的结合亲和力,且这种调节强烈依赖波长。这一结果为基于太赫兹调制的铁死亡干预提供了理论可行性。随后的细胞外和细胞显色活性测定表明,8.7μm(即34.5太赫兹)的太赫兹场抑制了与Tf结合的最多铁,且该波长与模拟结果吻合良好。然后,功能测定表明,用这种34.5太赫兹波处理的细胞中,细胞内铁、脂质过氧化、丙二醛(MDA)水平以及细胞死亡均显著降低。此外,缺血再灌注损伤诱导的铁死亡疾病模型中的铁沉积、脂质过氧化和MDA可通过相同辐射几乎消除,验证了太赫兹波诱导的铁死亡脱敏作用。总之,这项工作为电磁辐射刺激的铁死亡脱敏提供了一个临床前范例,并预测了未来一种基于太赫兹波的针对铁死亡相关疾病的创新治疗方法。