Effects of Radiation ExposureRadiation Therapy and DosimetryNanoplatforms for cancer theranostics

Ruotong Deng, Hanjie Zhu, Xinyue Zhang, Ziwei Zhang, Rui Duan, Wei Chen, Yining Ou, Fengrui Liu, Wei Cao

2026.1.1Supramolecular Materials

DOI: 10.1016/j.supmat.2026.100134

Abstract

The most life-threatening injury induced by radiation is acute radiation syndrome (ARS), which is featured by damage to the hematopoietic system and vital organs. However, most efforts focus on scavenging radiation-induced reactive oxygen species (ROS). Designing more direct strategies like in vivo radiation shielding remains in its infancy. Here we propose a supramolecularly orchestrated high-atomic number ( Z ) strategy, designing a bismuth-coordinated melanin-based radioprotectant for achieving physical shielding in vivo. The supramolecular coordination of bismuth endows the biomaterial with superior photon-shielding capacity, while maintaining melanin’s inherent ROS-scavenging function. In animal experiments, this strategy effectively alleviated ARS, maintained normal hematopoietic function and protected the gastrointestinal tract, resulting in improved long-term survival from 20% to 60%. This radioprotectant also exhibited excellent biocompatibility and metabolism. High- Z nanomaterials for in vivo applications utilize supramolecular coordination to combine metals with natural macromolecules, offering an effective strategy for developing radioprotectants. Moreover, Bi-coordinated poly L -3,4-dihydroxyphenylalanine melanin outperforms its polydopamine analogue, revealing that side-chain subtleties dictate radioprotective potency.

Citation format

DENG, Ruotong, et al. Coordination chemistry enabled in vivo radioprotective material for alleviating acute radiation syndrome. Supramolecular Materials, 2026, 5: 100134.