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SPHK1 promotes bladder cancer metastasis via PD-L2/c-Src/FAK signaling cascade.

SPHK1 (sphingosine kinase type 1) is characterized as a rate-limiting enzyme in sphingolipid metabolism to phosphorylate sphingosine into sphingosine-1-phosphate (S1P) that can bind to S1P receptors (S1PRs) to initiate several signal transductions leading to cell proliferation and survival of normal cell. Many studies have indicated that SPHK1 is involved in several types of cancer development, however, a little is known in bladder cancer. The TCGA database analysis was utilized for analyzing the clinical relevance of SPHK1 in bladder cancer. Through CRISPR/Cas9 knockout (KO) and constitutive activation (CA) strategies on SPHK1 in the bladder cancer cells, we demonstrated the potential downstream target could be programmed cell death 1 ligand 2 (PD-L2). On the other hand, we demonstrated that FDA-approved SPHK1 inhibitor Gilenya® (FTY720) can successfully suppress bladder cancer metastasis by in vitro and in vivo approaches. This finding indicated that SPHK1 as a potent therapeutic target for metastatic bladder cancer by dissecting the mechanism of action, SPHK1/S1P-elicited Akt/β-catenin activation promoted the induction of PD-L2 that is a downstream effector in facilitating bladder cancer invasion and migration. Notably, PD-L2 interacted with c-Src that further activates FAK. Here, we unveil the clinical relevance of SPHK1 in bladder cancer progression and the driver role in bladder cancer metastasis. Moreover, we demonstrated the inhibitory effect of FDA-approved SPHK1 inhibitor FTY720 on bladder cancer metastasis from both in vitro and in vivo models.

Urinary Bladder Neoplasms

Profiling of drug resistance in Src kinase at scale uncovers a regulatory network coupling autoinhibition and catalytic domain dynamics.

Kinase inhibitors are effective cancer therapies, but resistance often limits clinical efficacy. Despite the cataloging of numerous resistance mutations, our understanding of kinase inhibitor resistance is still incomplete. Here, we comprehensively profiled the resistance of ∼3,500 Src tyrosine kinase mutants to four different ATP-competitive inhibitors. We found that ATP-competitive inhibitor resistance mutations are distributed throughout Src's catalytic domain. In addition to inhibitor contact residues, residues that participate in regulating Src's phosphotransferase activity were prone to the development of resistance. Unexpectedly, we found that a resistance-prone cluster of residues located on the top face of the N-terminal lobe of Src's catalytic domain contributes to autoinhibition by reducing catalytic domain dynamics, and mutations in this cluster led to resistance by lowering inhibitor affinity and promoting kinase hyperactivation. Together, our studies demonstrate how drug resistance profiling can be used to define potential resistance pathways and uncover new mechanisms of kinase regulation.

src-Family Kinases

UNC5B regulates epithelial-to-mesenchymal transition through a SRC-ZEB1 signaling axis to facilitate pancreatic cancer metastasis.

Metastatic dissemination is the principal cause of death in pancreatic ductal adenocarcinoma (PDAC), yet the molecular determinants that enable this process remain poorly understood. Here, we identify the axon guidance receptor UNC5B as a central regulator of PDAC metastasis. Using both genetically engineered KPCU and orthotopic mouse models, we demonstrate that loss of UNC5B completely abolishes metastatic spread, reduces tumor proliferative capacity, increases intratumoral necrosis, confining tumors to the pancreas with no invasion into adjacent tissues or lymph nodes and preserving epithelial morphology. Mechanistically, UNC5B drives epithelial-to-mesenchymal transition (EMT) and invasion through activation of the SRC-ZEB1 axis. Notably, UNC5B specifically engages ZEB1 to drive EMT, without altering other canonical EMT transcription factors such as SNAIL or TWIST1. Pharmacological degradation of exogenous UNC5B using a targeted protein degrader (degron) modulated EMT and invasive behavior in PDAC cells. Acute depletion of UNC5B resulted in a marked reduction in EMT scores, accompanied by decreased ZEB1 and SRC levels. Together, these findings identify UNC5B as a central molecular hub governing metastatic competence in PDAC by promoting EMT and invasion.

Epithelial-Mesenchymal Transition