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Preprint WatchMildAugust 27th, 2026

A PTBP1-CDC42 splicing axis regulates leukemia growth and venetoclax sensitivity in acute myeloid leukemia

Oberling M, Landry M, Aubert Y, Faivre M, Gay A, Boudet A, Granjon A, Sahal A, Bertoli S, Vergez F, Mansat-De Mas V, Recher C, Larrue C, Poillet L, Sarry J, Joffre C, Diaz-Munoz MD, Pancaldi V, Ghisi M.

A PTBP1-driven splicing switch from CDC42-v1 to CDC42-v2 lowers Rho GTPase activity and protein synthesis in acute myeloid leukemia cells, and pharmacological CDC42 inhibition markedly enhances the anti-leukemic efficacy of venetoclax.

Mild contradiction

1 prior failure

One documented clinical failure (Phase 1 or 2) overlaps with the claimed mechanism.

The Claidex graph holds one BCL2 programme in acute myeloid leukemia. Venetoclax plus azacitidine as post-transplant maintenance was terminated on a strategic decision rather than on efficacy or safety (venetoclax-azacitidine-bcl2-aml-post-transplant-maintenance-phase3-strategic-termination), so the record carries no evidence against BCL2 inhibition in this disease. This preprint proposes a combination partner rather than a replacement: PTBP1 depletion drives a CDC42 splicing switch, and CDC42 inhibition enhances venetoclax activity while sparing healthy haematopoietic cells. The flag is mild and is logged for tracking rather than for caution. The relevant question for anyone building on it is which venetoclax setting the combination targets, since the failed programme was maintenance in remission and the preprint's data are cytotoxicity in active disease.

Abstract excerpt

Acute myeloid leukemia (AML) is an aggressive blood cancer characterized by high rates of relapse and poor outcomes, especially in elderly or unfit patients, who cannot tolerate intensive chemotherapy. While the BCL2 inhibitor venetoclax has improved initial responses in this high-risk population, relapses remain nearly universal, highlighting the need for novel therapeutic strategies. Here, we identify the RNA-binding protein PTBP1 as a critical dependency in AML. PTBP1 depletion impairs leukemic growth in vitro and in vivo, and is associated with widespread splicing alterations and global disruption of protein synthesis. Integrative transcriptomic and iCLIP analyses reveal that PTBP1 orchestrates a splicing program centered on Rho GTPase signaling, with CDC42 as a key downstream effector. Mechanistically, PTBP1 loss triggers a splicing switch from CDC42-v1 to CDC42-v2, leading to reduced GTPase activity and impaired protein synthesis. Pharmacological inhibition of CDC42 selectively induces cytotoxicity in AML cells, while sparing healthy hematopoietic cells. Importantly, CDC42 inhibition markedly enhances venetoclax anti-leukemic efficacy. These findings establish PTBP1 as a critical regulator of AML cell fitness and identify a clinically actionable therapeutic combination that exploits AML dependency on PTBP1-CDC42 signaling to enhance the efficacy of venetoclax-based regimens.

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This is an automated contradiction flag, not an editorial judgment on the preprint's quality. Flags identify where the preclinical literature and the clinical failure record diverge.