Carbonic
anhydrase IX (CAIX) is a transmembrane enzyme that regulates
pH in hypoxic tumors and promotes tumor cell survival. Its expression
is associated with the occurrence of metastases and poor prognosis.
Here, we present nine derivatives of the cobalt bis(dicarbollide)(1−)
anion substituted at the boron or carbon sites by alkysulfamide group(s)
as highly specific and selective inhibitors of CAIX. Interactions
of these compounds with the active site of CAIX were explored on the
atomic level using protein crystallography. Two selected derivatives
display subnanomolar or picomolar inhibition constants and high selectivity
for the tumor-specific CAIX over cytosolic isoform CAII. Both derivatives
had a time-dependent effect on the growth of multicellular spheroids
of HT-29 and HCT116 colorectal cancer cells, facilitated penetration
and/or accumulation of doxorubicin into spheroids, and displayed low
toxicity and showed promising pharmacokinetics and a significant inhibitory
effect on tumor growth in syngenic breast 4T1 and colorectal HT-29
cancer xenotransplants.
All four isomeric series of novel 4-substituted pyrido-fused 7-deazapurine ribonucleosides possessing the pyridine nitrogen atom at different positions were designed and synthesized. The total synthesis of each isomeric fused heterocycle through multistep heterocyclizationw as followed by glycosylation and derivatization at position 4b y cross-coupling reactions or nucleophilic substitutions. All compoundsw ere tested for cytostatic and antiviral activity. The most active werep yrido[4',3':4,5]pyrimidine nucleosides bearing MeO, NH 2 ,M eS, or CH 3 groups at position 4, which showed submicromolar cytotoxic effects and good selectivity for cancer cells. The mechanism involved activation by phosphorylation and incorporation to DNA where the presence of the modified ribonucleosides causes double-strand breaksa nd apoptosis.
Here, we have identified the interaction site of the contraceptive drug gamendazole using computational modeling. The drug was previously described as a ligand for eukaryotic translation elongation factor 1-α 1 (eEF1A1) and found to be a potential target site for derivatives of 2-phenyl-3-hydroxy-4(1 H)-quinolinones (3-HQs), which exhibit anticancer activity. The interaction of this class of derivatives of 3-HQs with eEF1A1 inside cancer cells was confirmed via pull-down assay. We designed and synthesized a new family of 3-HQs and subsequently applied isothermal titration calorimetry to show that these compounds strongly bind to eEF1A1. Further, we found that some of these derivatives possess significant in vitro anticancer activity.
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