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Schaffner-Reckinger, E.

Publications and source records attributed to Schaffner-Reckinger, E..

4 recordsLinked to original sources

Regulation of de- and reciliation by KRAS during muscle cell differentiation

The primary cilium has been implicated in multiple developmental processes, such as cell migration and asymmetric cell division of stem- and progenitor cells. While most in vitro model systems examine ciliogenesis induced by serum starvation, it is not fully understood how de-and re-ciliation are regulated in proliferating stem- and progenitor cells. Here we employ the hierarchically organized C2C12 skeletal muscle cell line to examine how K-Ras4B participates in de- and re-ciliation processes of ciliated stem- and progenitor cells. We show that MAPK-pathway activation supports ciliogenesis through phosphorylation of centrosomal protein CEP55, which can then no longer stabilize the master regulator of de-ciliation Aurora kinase A. K-Ras4B localizes to the primary cilium aided by the ciliary trafficking chaperone PDE6D, which promotes ciliation. In line with this, depletion of components of the PDE6D machinery, RPGR and RPGRIP1L, decreases ciliation. Activation of the ciliary AMPK-PKG2-pathway increases S181-phosphorylation of K-Ras4B, which negatively regulates its binding to PDE6D, its ciliary abundance and promotes differentiation. Our work integrates a major mediator of mitogenic signaling into the regulation of ciliogenesis of proliferating muscle stem- and progenitor cells.

cell biology↗

K-Ras controls asymmetric cell divisions from the primary cilium

The Ras-MAPK pathway drives central cellular processes, including cell proliferation and differentiation. How exactly Ras controls differentiation is however not understood. Supported by mathematical modelling and single-cell RNA sequencing we show that K-Ras4B sustains ciliation during differentiation thus restricting commitment of skeletal muscle stem and progenitor cells during asymmetric cell divisions. Modulation of K-Ras4B abundance or expression of oncogenic K-Ras4B-G12C perturb normal differentiation. K-Ras4B, but not N-Ras and H-Ras, localizes to the primary cilium and its abundance there depends on the ciliary trafficking chaperone PDE6D. The presence of B-Raf and active MEK at the base of and active ERK inside the cilium suggests that K-Ras4B is active there. Conditions that localize a K-Ras4B mutant only to the cilium are sufficient to sustain ciliation and normal differentiation. Finally, in vivo modulation of K-Ras4B activity during zebrafish embryogenesis perturbs ciliation-dependent heart-looping. Our results thus imply a novel fundamental role of K-Ras4B in controlling ciliation and differentiation and suggest an explanation for the phenotypic similarities between RASopathies and ciliopathies.

cell biology↗

Development of a genetically encoded and potent PDE6D inhibitor

PDE6D is a trafficking chaperone of prenylated proteins, such as small GTPases. Several small molecule inhibitors have been developed against it, given that the oncogene K-Ras is one of the cargo proteins. Inhibitor development suffered from the fact that inhibitors against the hydrophobic pocket of PDE6D were typically poorly water-soluble. Here we describe the development of genetically encoded inhibitors that are inspired by high-affinity natural cargo of PDE6D. Our most potent inhibitor, SNAP-STI, encodes merely a farnesylated tetra-peptide, which efficiently blocks PDE6D binding of farnesylated cargo. Direct comparison with small molecule PDE6D inhibitors suggests its higher potency. We show that inhibition of K-Ras membrane anchorage and K-RasG12C-dependent MAPK-signaling by SNAP-STI is weak, consistent with what is observed after PDE6D knockdown. Our data therefore further support that PDE6D is not a suitable surrogate target for efficient inhibition of K-Ras membrane anchorage and MAPK-activity. Nonetheless, by exploiting contacts at the pocket entry, we established a generalizable strategy to design high-affinity PDE6D inhibitors, providing powerful tools for PDE6D biology and target validation.

biochemistry↗

An improved PDE6D inhibitor combines with Sildenafil to synergistically inhibit KRAS mutant cancer cell growth

The trafficking chaperone PDE6D (or PDE) was proposed as a surrogate target for K-Ras, leading to the development of a series of inhibitors that block its prenyl-binding pocket. These inhibitors suffered from low solubility and intracellular potency, preventing their clinical development. Here we developed a highly soluble PDE6D inhibitor (PDE6Di), Deltaflexin3, which has the currently lowest off-target activity, as we demonstrate in dedicated assays. We further increased the K-Ras focus, by exploiting that PKG2-mediated phosphorylation of Ser181 lowers K-Ras binding to PDE6D. Thus, the combination of Deltaflexin3 with the approved PKG2-activator Sildenafil synergistically inhibits cell- and microtumor growth. However, the overall cancer survival of the high PDE6D/ low PKG2 target population is higher than of the group with the opposite signature. Our results therefore suggest re-examining the interplay between PDE6D and K-Ras in cancer, while recommending the development of PDE6Di that plug, rather than stuff the hydrophobic pocket of PDE6D. SignificanceCombinations of a novel PDE6D inhibitor with Sildenafil synergistically focus the inhibition on K-Ras, however, survival data of the target population suggest an interplay of K-Ras and PDE6D that needs further exploration.

biochemistry↗