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Biology subjects

Wittmer, M. D.

Publications and source records attributed to Wittmer, M. D..

2 recordsLinked to original sources

Silylation of hydroxychloroquine enhances autophagy inhibition and antiproliferative activity in breast and pancreatic cancer cells

IntroductionAutophagy is a key survival mechanism in cancer, and chloroquine (CQ) and hydroxychloroquine (HCQ) are widely used late-stage autophagy inhibitors. However, their low potency and the need for high doses limit antitumor efficacy and raise concerns about off-target toxicity. We therefore designed hydroxychloroquine silyl derivatives based on the hypothesis that increasing lipophilicity at the terminal 2-hydroxyethyl moiety enhances lysosomal accumulation and autophagy inhibition while preserving the 4-aminoquinoline pharmacophore. MethodsThree HCQ silyl ethers-OTBS (2), OTIPS (3), and ODPS (4) have been synthesized by silylating the terminal hydroxyl of HCQ. Antiproliferative activity and autophagic flux along with apoptosis have been assessed for LC3B-II, p62/SQSTM1, and caspase-3-mediated PARP-1 cleavage. Results and DiscussionThe HCQ silyl derivatives retain the core pharmacophore and display improved or comparable antiproliferative activity relative to HCQ, achieving low-micromolar IC50 values. Candidate compounds 2 and 3 strongly induce LC3B-II and p62 accumulation than HCQ, consistent with enhanced blockade of autophagic flux. This autophagy disruption is accompanied by increased PARP-1 cleavage, particularly in aggressive 4T1 and MIAPaCa-2 cells, linking reinforced lysosomal/autophagy inhibition to apoptotic signaling. ConclusionThese findings show that silylation of HCQ enhances autophagy inhibition and pro-apoptotic activity while maintaining pharmacology, identifying HCQ silyl derivatives as promising leads for autophagy-targeting antitumor agents.

cancer biology↗

Nitroxoline-O-protected derivatives inhibit MetAP2 and activate ATF4 through mTORC1 to inhibit cancer cell growth

Reprogrammed cancer cell proliferation requires high levels of protein synthesis and concomitant folding and processing. N-terminal methionine amino peptidases (MetAP) are a class of enzymes that cleave the initiator methionine amino acids to allow for peptide maturation and co-translational processing. Specifically, based on its role in protein synthesis, MetAP2 has been found to be upregulated in cancer cells and has been explored as a potential anticancer target. Cellular perturbations that impinge on protein synthesis activate cellular stress pathways, including the integrated stress response and mTORC1. Nitroxoline, a MetAP2 inhibitor has been explored as an anticancer agent but is hampered by poor pharmacokinetic properties. Here, we synthesize a few O-substituted silyl and nonsilyl nitroxoline analogs to diversify the nitroxoline template to reduce metabolic vulnerability. In vitro MetAP2 and cancer cell proliferation inhibition assays demonstrate that synthesized analogs retain potency when compared to the parent nitroxoline. Mechanistically, we show that the lead candidate compound 3 and nitroxoline activate ATF4 mediated stress responses through non-canonical mTORC1. These results further implicate MetAP2 protein processing in mTORC1 nutrient sensing pathways and provide novel synthetic analogs of nitroxoline for potential cancer treatment.

cancer biology↗