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Biology subjects

Piergentili, A.

Publications and source records attributed to Piergentili, A..

2 recordsLinked to original sources

PDE3A-SLFN12 Molecular Glues Target Multiple KIT D816V Cell Types in Preclinical Models of Mast Cell Malignancies

A drug discovery approach was used to specifically target malignant cells with KIT D816V mutation, which is the predominant disease-causing mutation in clonal mast cell malignancies. To this end, KIT D816V cells derived from induced pluripotent stem cells (iPS cells) of KIT D816V patients were employed to screen a library of FDA approved and experimental drugs for specific killing of KIT D816V cells. We discovered the novel compound LDC 3416, which targets multiple malignant KIT D816V cell types, including hematopoietic stem/progenitor cells and mast cells. Importantly, by exploring the LDC 3416 targeting profile, we identified the phosphodiesterase 3A-Schlafen 12 (PDE3A-SLFN12) molecular glue pathway as a novel approach for specific targeting of malignant KIT D816V cells. We found that the KIT D816V mutant protein leads to increased expression of PDE3A and SLFN12 and thus confers a selective molecular vulnerability to PDE3A-SLFN12 molecular glues. Primary malignant mast cells of KIT D816V patients with indolent and advanced systemic mastocytosis also exhibit increased expression of PDE3A and SLFN12. We extended our study to include additional PDE3A-SLFN12 molecular glues and demonstrate their synergistic action with KIT D816V selective tyrosine kinase inhibitors (TKIs) in killing KIT D816V cells. Furthermore, the PDE3A-SLFN12 molecular glues also target KIT D816V megakaryocytes, a cell type that has been underestimated in malignant mast cell pathophysiology and molecular targeting. The identified molecular glues, along with their synergy with TKIs and their simultaneous targeting of multiple KIT D816V cell types, open novel treatment options for KIT D816V mast cell malignancies and other KIT D816V associated diseases.

cancer biology↗

Cholesterol modifies Nav1.7 - an in-silico and in-vitro analysis

Cholesterol is a major component of plasma membranes and unsurprisingly plays a significant role in actively regulating the functioning of several membrane proteins in humans. Notably, recent studies have shown that cholesterol depletion can also impact transmission of potentially painful signals in the context of peripheral inflammation, via hyperexcitability of the voltage-gated sodium channel (Nav) subtype 1.9, but the structural mechanisms underlying this regulation remain to be elucidated. In this study, we focus on the role of cholesterol depletion on Nav1.7, which is primarily expressed in the peripheral sensory neurons and linked to various chronic inherited pain syndromes. Coarse-grained molecular dynamics simulations shed light on the dynamic changes of the geometry of Nav1.7 upon membrane cholesterol depletion: A loss of rigidity at key structural motifs linked to activation and fast-inactivation is observed, as well as changes in the geometry of drug-binding regions in the channel. Loss of rigidity in cholesterol depleted conditions should allow the channel to transition between different gating states more easily. In-vitro whole-cell patch clamp experiments on HEK293t cells expressing Nav1.7 validated these predictions made in silico at the functional level. Hyperpolarizing shifts in the voltage-dependence of activation and fast-inactivation were observed along with an acceleration of the time to peak and onset kinetics of fast inactivation. These results underline the critical role of membrane composition, and of cholesterol in particular, in influencing Nav1.7 gating characteristics. Furthermore, our results hint to a key role of the membrane environment in affecting drug effects and in pathophysiological dysregulation, sharpening our approaches for analgesics design. Supplementary datahttps://doi.org/10.5281/zenodo.10829175

physiology↗