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Biology subjects

Saba, J. D.

Publications and source records attributed to Saba, J. D..

2 recordsLinked to original sources

Disrupted Sphingosine-1-Phosphate Homeostasis Drives Nephrotoxicity in Sphingosine-1-Phosphate Lyase Insufficiency Syndrome (SPLIS)

Sphingosine-1-phosphate lyase insufficiency syndrome (SPLIS), also known as nephrotic syndrome type 14 (NPHS14), is an autosomal recessive disorder characterized by renal, neurological, dermatological, endocrine, and immunological symptoms. This condition is caused by loss-of-function mutations in the SGPL1 gene, which encodes sphingosine-1-phosphate lyase (SGPL1p/SPL), the enzyme responsible for the terminal degradation of sphingosine-1-phosphate (S1P) in sphingolipid catabolism. We investigated a novel case of SPLIS associated with a recently reported SGPL1 mutation (c.1084T>A; p.Ser362Thr). Using stable isotope flux analyses, we demonstrated in patient-derived fibroblasts and HEK293T SGPL1 knockout models that SGPL1p deficiency does not consistently result in pathological S1P accumulation. Instead, SPL-deficient cells are able to maintain steady-state S1P levels through two compensatory mechanisms: O_LIRegulation of de novo sphingolipid synthesis via the ORMDL-ceramide axis. C_LIO_LIIncreased conversion of excess ceramides into glycosphingolipids. C_LI However, when steady-state conditions are disrupted--either by external sphingolipid supplementation or by impairing homeostatic control--a pathological increase in intracellular S1P occurs in SPL-deficient cells. In vivo, Sgpl1-/-mice exhibited significant urinary excretion of S1P and marked S1P enrichment in the kidneys. This pathological accumulation of S1P dysregulates cytoskeletal homeostasis, impairing renal epithelial formation. Based on these findings, we hypothesize that the reabsorption of urinary S1P contributes to toxic renal accumulation, providing an explanation for the nephrotoxicity observed in SPLIS and its association with nephrotic syndrome. Importantly, we found that the cytoskeletal disruptions could be mitigated by inhibiting the Rho-ROCK signaling pathway using the clinically approved inhibitor Fasudil. These findings illuminate the pathophysiological basis of SPLIS nephrotoxicity and propose a promising pharmacological intervention strategy. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=144 SRC="FIGDIR/small/634100v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@e70e68org.highwire.dtl.DTLVardef@1630198org.highwire.dtl.DTLVardef@fde277org.highwire.dtl.DTLVardef@1f2b8e_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗

Super-enhancer profiling reveals ThPOK/ZBTB7B, a CD4+ cell lineage commitment factor, as a master regulator that restricts breast cancer cells to a luminal non-migratory phenotype

Despite efforts to understand breast cancer biology, metastatic disease remains a clinical challenge. Identifying suppressors of breast cancer progression and mechanisms of transition to more invasive phenotypes could provide game changing therapeutic opportunities. Transcriptional deregulation is central to all malignancies, highlighted by the extensive reprogramming of regulatory elements that underlie oncogenic programs. Among these, super-enhancers (SEs) stand out due to their enrichment in genes controlling cancer hallmarks. To reveal novel breast cancer dependencies, we integrated the analysis of the SE landscape with master regulator activity inference for a series of breast cancer cell lines. As a result, we identified T-helper-inducing Poxviruses and Zinc-finger (POZ)/Kruppel-like factor (ThPOK, ZBTB7B), a CD4+ cell lineage commitment factor, as a breast cancer master regulator that is recurrently associated with a SE. ThPOK expression is highest in luminal breast cancer but is significantly reduced in the basal subtype. Manipulation of ThPOK levels in cell lines shows that its repressive function restricts breast cancer cells to an epithelial phenotype by suppressing the expression of genes involved in the epithelial-mesenchymal transition (EMT), WNT/{beta}-catenin target genes, and the pro-metastatic TGF{beta} pathway. Our study reveals ThPOK as a master transcription factor that restricts the acquisition of metastatic features in breast cancer cells.

cancer biology↗