Li Yuan-Yuan, Ma Bo, Lu Jia-Wei, Zhang Kai-Chao, Ma Chao, Bai Sheng-Feng, Li Yan-Jiao, Ying Si-Qi, Weng Wei-Zong, Zhang Kai, Hu Xi-Wang, Li Rang, Zheng Chen-Xi, Xu Xiao-Ru, Chen Ji, Jin Fang, Xu Hao-Kun, Xie Jian-Wei, Jin Yan, Shuai Yi, Sui Bing-Dong
State Key Laboratory of Oral and Maxillofacial Reconstruction and Regeneration, National Clinical Research Center for Oral Diseases, Shaanxi International Joint Research Center for Oral Diseases, Center for Tissue Engineering, School of Stomatology, The Fourth Military Medical University, Xi'an, Shaanxi, 710032, China.
Department of General Dentistry, Xiamen University Affiliated Chenggong Hospital, Xiamen, Fujian, 361001, China.
Adv Sci (Weinh). 2025 Sep;12(34):e05070. doi: 10.1002/advs.202505070. Epub 2025 Jun 23.
Ferroptosis, a form of regulated cell death driven by iron accumulation and lipid peroxidation, is implicated in various diseases, but effective therapeutic strategies remain limited. Lysosomal impairments cause iron dysregulation and initiate ferroptosis, which potentially contribute to ionizing radiation-induced tissue damages. Here, the role of intercellular lysosomal regulation in governing iron homeostasis and protecting against ferroptosis is investigated in models of stem cell aggregation and mandibular regeneration post-irradiation. Lysosomes are discovered to accumulate in specific regions within multi-stem cell aggregates and regulate cell aggregate formation based on iron control, which is occurred through hypoxic signaling-driven lysosomal redistribution mediated by extracellular vesicles. These vesicles exhibit lysosomal features and possess iron-regulating properties, which rescue lysosomal defects to restore iron homeostasis and mitigate ferroptosis in recipient endothelial cells against the irradiation challenge. Based on lysosomal regulation and anti-ferroptosis, these cell aggregate-released extracellular vesicles (CA-EVs) stimulate the growth of CD31endomucin specialized vessels despite irradiation both in vitro and in vivo, which further promote bone regeneration of post-irradiation mandibular defect. These findings highlight the potential of taking CA-EVs as natural therapeutic agents to safeguard lysosomal function, modulate iron metabolism, and protect against ferroptosis, paving an avenue for combating post-irradiation endothelial injuries and enhancing tissue regeneration.
铁死亡是一种由铁积累和脂质过氧化驱动的程序性细胞死亡形式,与多种疾病有关,但有效的治疗策略仍然有限。溶酶体功能障碍会导致铁调节异常并引发铁死亡,这可能导致电离辐射引起的组织损伤。在此,研究人员在干细胞聚集模型和辐射后下颌骨再生模型中研究了细胞间溶酶体调节在控制铁稳态和防止铁死亡方面的作用。研究发现,溶酶体在多干细胞聚集体的特定区域积累,并基于铁控制调节细胞聚集体的形成,这是通过细胞外囊泡介导的缺氧信号驱动的溶酶体重分布发生的。这些囊泡具有溶酶体特征并具有铁调节特性,可挽救溶酶体缺陷以恢复铁稳态,并减轻受辐照挑战的受体内皮细胞中的铁死亡。基于溶酶体调节和抗铁死亡作用,这些细胞聚集体释放的细胞外囊泡(CA-EVs)在体外和体内均能刺激CD31内皮粘蛋白特异性血管的生长,尽管受到辐射,这进一步促进了辐射后下颌骨缺损的骨再生。这些发现突出了将CA-EVs作为天然治疗剂来保护溶酶体功能、调节铁代谢和防止铁死亡的潜力,为对抗辐射后内皮损伤和促进组织再生开辟了一条途径。