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Redirection of sphingolipid metabolism drives cytoskeletal defects in SPLIS and reveals ROCK inhibition as therapy
Adam Majcher, Ranjha Khan, Kathrin Buder, Florence Bourquin, Julie D. Saba, Thorsten Hornemann
Adam Majcher, Ranjha Khan, Kathrin Buder, Florence Bourquin, Julie D. Saba, Thorsten Hornemann
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Research Article Genetics Metabolism Nephrology

Redirection of sphingolipid metabolism drives cytoskeletal defects in SPLIS and reveals ROCK inhibition as therapy

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Abstract

Sphingosine-1-phosphate lyase (SPL) insufficiency syndrome (SPLIS), also known as nephrotic syndrome type 14, is an autosomal recessive multisystem disorder caused by loss-of-function mutations in SGPL1, encoding the enzyme responsible for the terminal degradation of sphingosine-1-phosphate (S1P). We investigated a patient carrying a previously undescribed c.1084T>A (p.Ser362Thr) SGPL1 variant and analyzed the metabolic and cellular consequences of SPL deficiency, using patient fibroblasts, SGPL1-KO HEK293T cells, and Sgpl1–/– and Sgpl1rosa+fl/fl mice. Metabolic stable isotope labeling revealed that SPL deficiency does not invariably result in S1P accumulation. Instead, SPL-deficient cells maintain near-normal S1P levels through (a) feedback regulation of de novo sphingolipid synthesis via the ORMDL–ceramide axis and (b) increased diversion of excess ceramides into glycosphingolipids. However, perturbation of sphingolipid homeostasis, either by exogenous sphingolipid load or disruption of compensatory regulation, induces pathological intracellular S1P accumulation. In vivo, Sgpl1–/– mice had pronounced urinary S1P excretion and renal S1P enrichment, accompanied by cytoskeletal disorganization and impaired epithelial morphogenesis. Mechanistically, we identify aberrant Rho/ROCK signaling as a key mediator of S1P-driven cytoskeletal dysregulation. Pharmacological ROCK inhibition with fasudil mitigated renal cytoskeletal defects in Sgpl1–/– and Sgpl1rosa+fl/fl mice and partially restored epithelial architecture. These findings redefine the metabolic consequences of SPL deficiency and identify S1P-driven Rho/ROCK hyperactivation as a tractable therapeutic target in SPLIS.

Authors

Adam Majcher, Ranjha Khan, Kathrin Buder, Florence Bourquin, Julie D. Saba, Thorsten Hornemann

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Figure 3

Synthesis of higher-order SLs acts as an “escape” mechanism to prevent toxic S1P accumulation in SPLIS.

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Synthesis of higher-order SLs acts as an “escape” mechanism to prevent t...
(A) d7-SL profiles following supplementation with d7-Sa (0.5 μM or 2.5 μM) in HEK293T SGPL1 KO and WT cells. (B) d7-SL levels in primary SPLIS fibroblasts and control fibroblasts after treatment with vehicle, d7-So (0.5 μM), or d7-S1P (0.5 μM) for 24 hours. (C–E) Total SL levels in 3 different SGPL1-deficient cell lines — primary fibroblasts (C), HK2 cells (D), and HEK293T cells (E) — compared with corresponding controls after 24-hour supplementation with vehicle (MeOH) or d7-So (2.0 μM). Total SL levels were calculated as the sum of d7-labeled and unlabeled SL species. Bar and stacked plots represent mean ± SD (n = 3) for the indicated SL classes. Galactosylceramides and glucosylceramides are cumulatively represented as HexCers. SL levels were quantified via LC-MS/MS following lipid extraction. (F) ATP-based So toxicity assay in HEK293T SGPL1 KO and WT cells. Glucosylceramide synthesis was inhibited using the GCS inhibitor Genz-123346 (Genz). Cells were exposed to increasing concentrations of So for 72 hours, and total ATP levels were quantified using the CellTiter-Glo assay. Data from the toxicity assay were normalized to the average of vehicle-treated cells (n = 4).

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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