Flexibility‐Aided Orientational Self‐Sorting and Transformations of Bioactive Homochiral Cuboctahedron Pd <sub>12</sub> L <sub>16</sub>

S Subhasis Chattopadhyay (Department of Chemistry Faculty of Science Masaryk University Kamenice 5 Brno CZ‐62500 Czechia) R Robin Durník (Department of Natural Drugs Faculty of Pharmacy Masaryk University Palackého 1946/1 Brno CZ‐61200 Czechia) A Anniina Kiesilä (Department of Chemistry University of Jyvaskyla P. O. Box 35 Jyväskylä FI‐40014 Finland) E Elina Kalenius (Department of Chemistry University of Jyvaskyla P. O. Box 35 Jyväskylä FI‐40014 Finland) J Juha M. Linnanto (Institute of Physics University of Tartu W. Ostwald Street 1 Tartu 50411 Estonia) P Pavel Babica (RECETOX Faculty of Science Masaryk University Kotlarska 2 Brno CZ‐61137 Czechia) J Jan Kuta R Radek Marek (Department of Chemistry Faculty of Science Masaryk University Kamenice 5 Brno CZ‐62500 Czechia) O Ondřej Jurček (Department of Natural Drugs Faculty of Pharmacy Masaryk University Palackého 1946/1 Brno CZ‐61200 Czechia)

Abstract

Abstract The rational design and selective self‐assembly of flexible and unsymmetric ligands into large coordination complexes is an eminent challenge in supramolecular coordination chemistry. Here, we present the coordination‐driven self‐assembly of natural ursodeoxycholic‐bile‐acid‐derived unsymmetric tris ‐pyridyl ligand ( L ) resulting in the selective and switchable formation of chiral stellated Pd 6 L 8 and Pd 12 L 16 cages. The selectivity of the cage originates in the adaptivity and flexibility of the arms of the ligand bearing pyridyl moieties. The interspecific transformations can be controlled by changes in the reaction conditions. The orientational self‐sorting of L into a single constitutional isomer of each cage, i.e., homochiral quadruple and octuple right‐handed helical species, was confirmed by a combination of molecular modelling and circular dichroism. The cages, derived from natural amphiphilic transport molecules, mediate the higher cellular uptake and increase the anticancer activity of bioactive palladium cations as determined in studies using in vitro 3D spheroids of the human hepatic cells HepG2.

Article Details

Volume / Issue Vol. 64, Issue 37
Published September 08, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

S

Subhasis Chattopadhyay

Department of Chemistry Faculty of Science Masaryk University Kamenice 5 Brno CZ‐62500 Czechia

R

Robin Durník

Department of Natural Drugs Faculty of Pharmacy Masaryk University Palackého 1946/1 Brno CZ‐61200 Czechia

A

Anniina Kiesilä

Department of Chemistry University of Jyvaskyla P. O. Box 35 Jyväskylä FI‐40014 Finland

E

Elina Kalenius

Department of Chemistry University of Jyvaskyla P. O. Box 35 Jyväskylä FI‐40014 Finland

J

Juha M. Linnanto

Institute of Physics University of Tartu W. Ostwald Street 1 Tartu 50411 Estonia

P

Pavel Babica

RECETOX Faculty of Science Masaryk University Kotlarska 2 Brno CZ‐61137 Czechia

J

Jan Kuta

R

Radek Marek

Department of Chemistry Faculty of Science Masaryk University Kamenice 5 Brno CZ‐62500 Czechia

O

Ondřej Jurček

Department of Natural Drugs Faculty of Pharmacy Masaryk University Palackého 1946/1 Brno CZ‐61200 Czechia