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Updated: Jun 1, 2026

Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
The metabolic advantage of tumor cells
Maurice Israël1, Laurent Schwartz
1Ecole Polytechnique Palaiseau 91128 and Hôpital Raymond Poincaré, 104 Bd Raymond Poincaré Garches 92380m, France. mauisrael@wanadoo.fr
Abstract:
1- Oncogenes express proteins of "Tyrosine kinase receptor pathways", a receptor family including insulin or IGF-Growth Hormone receptors. Other oncogenes alter the PP2A phosphatase brake over these kinases. 2- Experiments on pancreatectomized animals; treated with pure insulin or total pancreatic extracts, showed that choline in the extract, preserved them from hepatomas. Since choline is a methyle donor, and since methylation regulates PP2A, the choline protection may result from PP2A methylation, which then attenuates kinases. 3- Moreover, kinases activated by the boosted signaling pathway inactivate pyruvate kinase and pyruvate dehydrogenase. In addition, demethylated PP2A would no longer dephosphorylate these enzymes. A "bottleneck" between glycolysis and the oxidative-citrate cycle interrupts the glycolytic pyruvate supply now provided via proteolysis and alanine transamination. This pyruvate forms lactate (Warburg effect) and NAD+ for glycolysis. Lipolysis and fatty acids provide acetyl CoA; the citrate condensation increases, unusual oxaloacetate sources are available. ATP citrate lyase follows, supporting aberrant transaminations with glutaminolysis and tumor lipogenesis. Truncated urea cycles, increased polyamine synthesis, consume the methyl donor SAM favoring carcinogenesis. 4- The decrease of butyrate, a histone deacetylase inhibitor, elicits epigenic changes (PETEN, P53, IGFBP decrease; hexokinase, fetal-genes-M2, increase). 5- IGFBP stops binding the IGF - IGFR complex, it is perhaps no longer inherited by a single mitotic daughter cell; leading to two daughter cells with a mitotic capability. 6- An excess of IGF induces a decrease of the major histocompatibility complex MHC1, Natural killer lymphocytes should eliminate such cells that start the tumor, unless the fever prostaglandin PGE2 or inflammation, inhibit them...
Insights
Choline protects against hepatomas by regulating tyrosine kinase pathways and influencing cellular metabolism. This research explores oncogene-driven cancer mechanisms and potential therapeutic targets.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Oncogenes activate tyrosine kinase receptor pathways (e.g., insulin, IGF-Growth Hormone receptors) and can alter PP2A phosphatase activity.
- Metabolic dysregulation, including the Warburg effect and altered nutrient utilization, is a hallmark of cancer.
- Epigenetic modifications and immune evasion strategies contribute to tumor development.
Purpose of the Study:
- To investigate the role of choline in preventing hepatomas by modulating oncogene-driven pathways.
- To elucidate the metabolic alterations and epigenetic changes associated with cancer development.
- To explore the interplay between growth factor signaling, immune surveillance, and tumor initiation.
Main Methods:
- Experiments on pancreatectomized animals treated with insulin or pancreatic extracts.
- Analysis of cellular metabolism, including glycolysis, the citrate cycle, and lipogenesis.
- Examination of epigenetic modifications (histone deacetylase inhibition) and immune evasion mechanisms (MHC1 downregulation).
Main Results:
- Choline in pancreatic extracts protected against hepatomas, likely through PP2A methylation and kinase attenuation.
- Activated kinases and altered PP2A activity lead to metabolic bottlenecks, promoting lactate production (Warburg effect) and aberrant biosynthesis.
- Decreased butyrate induces epigenetic changes, while IGF excess and MHC1 downregulation facilitate immune evasion.
Conclusions:
- Choline's methyl-donating properties offer protection against hepatomas by regulating key oncogenic signaling and metabolic pathways.
- Dysregulated cellular metabolism and epigenetic alterations driven by oncogenes create a pro-tumorigenic environment.
- Tumor cells employ strategies like immune evasion to escape host defenses, highlighting complex cancer development mechanisms.
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