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Michael D Forrest

Publications and source records attributed to Michael D Forrest.

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Why cancer cells have a more hyperpolarised mitochondrial membrane potential and emergent prospects for therapy

Cancer cells have a more hyperpolarised mitochondrial membrane potential ({Psi}IM) than normal cells. {Psi}IM = [~]-220 mV in cancer cells as compared to [~]-140 mV in normal cells. Until now it has not been known why. This paper explains this disparity, in a mathematical framework, and identifies molecular targets and operations unique to cancer cells. These are thence prospective cancer drug targets. BMS-199264 is proposed as an anti-cancer drug. It inhibits the reverse, proton-pumping mode of ATP synthase, which this paper identifies as crucial to cancer cells but not to healthy, normal adult cells. In the cancer cell model, the adenine nucleotide exchanger (ANT) is inversely orientated in the mitochondrial inner membrane as compared to normal cells. This predicts it to have a different drug interaction profile, which can be leveraged for cancer therapy. Uncouplers, which dissipate the proton motive force, are proposed as anti-cancer medicines e.g. 2,4-dinitrophenol.

Cancer Biology

NADH as a cancer medicine

We propose that NADH will exert a specific kill action against some cancers. NADH is a natural metabolite. We envisage a low side effect profile and that NADH therapy will, additionally, combat the wastage and weakness of cancer patients, which can be the cause of death in some cases. Significantly, NADH can be administered orally and has already cleared clinical trials, all be it for other pathologies.\n\nBackgroundAerobic respiration consists of glycolysis in the cytoplasm and in the mitochondria: the Krebs cycle and oxidative phosphorylation (OXPHOS) [1, 2]. It requires O2 and net yields 30 ATPs from one glucose molecule. Anaerobic respiration, consisting of glycolysis only, does not require O2 but produces merely 2 ATPs from one glucose molecule. When O2 is available, normal animal cells tend to favour aerobic respiration because of its higher ATP yield.

Cancer Biology