Ling-Cui Meng, Jie Chen, Lu-Yao Xu, Jun Wang, Zhan‐Guo Jiang, Zhigang Jin, Cai‐Hong Zhan
Hierarchical chiral structures have wide applications in materials science and biomedicine. The synthesis of multilevel chiral structures with specific functions is a key issue. In this work, we have successfully designed and synthesized R/S-Co 4 Zn 5 L 10 (L = C 16 H 15 O 3 N) quinary chiral helix, in which the chirality transfers from the chiral carbon atoms of ligands to octahedral stereochirality, then to a single helix, further to a supramolecular helical chain, and ultimately to the chiral crystal structure. R/S-Co 4 Zn 5 L 10 consists of two chiral building units, R/S-Zn 3 L 2 and R/S-CoL 2 . R/S-CoL 2 can also agglomerate into R/S-Co 4 L 6 . The evaluation of the biocompatibility and bioactivity for three pairs of enantiomers reveals that R-Co 4 Zn 5 L 10 and R-CoL 2 effectively restore dopaminergic neuron loss and improve dopamine-dependent locomotion deficits in nematodes. Additionally, these compounds inhibit α-synuclein aggregation during nematode development. These findings suggest that elaborately designed cobalt-based chiral structures have potential as novel therapeutic candidates for Parkinson’s disease.