Skip to content

Author

C. Van den Haute

2 papers indexed here

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Open access Aug 2026

ATP13A4 gates extracellular polyamine levels to control excitatory synaptogenesis

Polyamines, such as spermidine, are essential regulators of brain development, yet how cells control their uptake and extracellular levels remains unclear. Here we show that ATP13A4, a transport protein enriched in glia and prominently expressed in astrocytes, governs brain polyamine balance. Using biochemical, cellular, and animal models, we find that ATP13A4 imports polyamines into cells and thereby limits their availability outside cells. Loss of ATP13A4 simplifies astrocyte morphology and increases the excitatory connections, or synapses, that astrocytes promote between neurons; adding spermidine reproduces these effects, identifying extracellular spermidine as a synapse-promoting signal. In mice lacking Atp13a4, brain polyamines are redistributed, with reduced levels in the cortex and accumulation in cerebrospinal fluid. This is accompanied by excess excitatory synapses, delayed early development, and mild, female-biased behavioral changes in adulthood. Rare ATP13A4 variants linked to neurodevelopmental disorders disrupt its function. Thus, astrocytic polyamine clearance via ATP13A4 tunes extracellular spermidine to shape synapse formation during development. Polyamines help shape brain development, but how brain extracellular levels are controlled has remained unclear. Here, the authors show that astrocytic ATP13A4 clears extracellular spermidine to regulate excitatory synapse formation and neurodevelopment.

S. van Veen, Emily Meeus, D. Irala et al. · 1 citation
Open access Aug 2026

Fluorescence-Gated Flow Cytometry Approach for Measuring Lipid Flippase Activity in Mammalian Cells

P4‑ATPase lipid flippases establish transbilayer lipid asymmetry in eukaryotic membranes, with increasing evidence indicating a role for interacting partners in regulating flippase activity. However, assessing interactor‑dependent effects on flippase activity in mammalian cells is complicated by heterogeneous protein expression and background lipid transport. Here, we introduce an expression‑based gating strategy for in‑cell NBD‑lipid uptake assays that improves sensitivity and interpretability under transient expression conditions. Using this approach, we examined the influence of the putative interactors VAMP3 and TMEM230 on the ability of ATP11C to transport phosphatidylserine (PS). VAMP3 exhibited no detectable effect on NBD‑PS uptake, whereas TMEM230 produced a strong inhibitory phenotype. The expression‑based strategy increased resolution between ATP11C variants and substantially reduced the number of events required for reliable analysis. Together, these advances provide a framework for systematic, cell‑based investigation of regulatory interactions governing mammalian P4‑ATPase function.

Klara T. Scholtissek, C. Van den Haute, F. Pamula et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.