TY - JOUR
T1 - Structure–Activity Relationships in Salinomycin
T2 - Cytotoxicity and Phenotype Selectivity of Semi-synthetic Derivatives
AU - Borgström, Björn
AU - Huang, Xiaoli
AU - Hegardt, Cecilia
AU - Oredsson, Stina
AU - Strand, Daniel
PY - 2017/2/10
Y1 - 2017/2/10
N2 - The ionophore salinomycin has attracted attention for its exceptional ability to selectively reduce the proportion of cells with stem-like properties in cancer cell populations of varying origin. Targeting the tumorigenicity of such cells is of interest as they are implicated in recurrence, metastasis, and drug resistance. Structural derivatives of salinomycin are thus sought after, both as tools for probing the molecular mechanism(s) underlying the observed phenotype effects, and for improving selectivity and activity against cancer stem cells. Synthetic strategies for modification of each of the directly accessible functional groups of salinomycin are presented and the resulting library of analogues was investigated to establish structure–activity relationships, both with respect to cytotoxicity and phenotype selectivity in breast cancer cells. 20-O-Acylated derivatives stand out by exhibiting both improved selectivity and activity. Mechanistically, the importance of the ionophore properties of salinomycin is highlighted by a significant loss of activity by modifications directly interfering with either of the two primary ion coordinating motifs in salinomycin, the C11 ketone and the C1 carboxylate.
AB - The ionophore salinomycin has attracted attention for its exceptional ability to selectively reduce the proportion of cells with stem-like properties in cancer cell populations of varying origin. Targeting the tumorigenicity of such cells is of interest as they are implicated in recurrence, metastasis, and drug resistance. Structural derivatives of salinomycin are thus sought after, both as tools for probing the molecular mechanism(s) underlying the observed phenotype effects, and for improving selectivity and activity against cancer stem cells. Synthetic strategies for modification of each of the directly accessible functional groups of salinomycin are presented and the resulting library of analogues was investigated to establish structure–activity relationships, both with respect to cytotoxicity and phenotype selectivity in breast cancer cells. 20-O-Acylated derivatives stand out by exhibiting both improved selectivity and activity. Mechanistically, the importance of the ionophore properties of salinomycin is highlighted by a significant loss of activity by modifications directly interfering with either of the two primary ion coordinating motifs in salinomycin, the C11 ketone and the C1 carboxylate.
KW - cancer treatment
KW - ionophores
KW - phenotype selectivity
KW - salinomycin
KW - structure–activity relationships
UR - http://www.scopus.com/inward/record.url?scp=85002654584&partnerID=8YFLogxK
U2 - 10.1002/chem.201603621
DO - 10.1002/chem.201603621
M3 - Article
C2 - 27740704
AN - SCOPUS:85002654584
SN - 0947-6539
VL - 23
SP - 2077
EP - 2083
JO - Chemistry - A European Journal
JF - Chemistry - A European Journal
IS - 9
ER -