Loss of maturity and homeostatic functions in Tuberous Sclerosis Complex-derived astrocytes

Publication date

2023

Authors

Luinenburg, Mark J
Scheper, Mirte
Sørensen, Frederik N F
Anink, Jasper J
Van Hecke, Wim
Korshunova, Irina
Jansen, FloorISNI 0000000387760135
Riney, Kate
van Eijsden, PieterISNI 0000000395119700
Gosselaar, PeterISNI 0000000388690634

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Supervisors

Document Type

Article

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Abstract

INTRODUCTION: Constitutive activation of the mTOR pathway, as observed in Tuberous Sclerosis Complex (TSC), leads to glial dysfunction and subsequent epileptogenesis. Although astrocytes are considered important mediators for synaptic clearance and phagocytosis, little is known on how astrocytes contribute to the epileptogenic network. METHODS: We employed singlenuclei RNA sequencing and a hybrid fetal calf serum (FCS)/FCS-free cell culture model to explore the capacity of TSC-derived astrocytes to maintain glutamate homeostasis and clear debris in their environment. RESULTS: We found that TSC astrocytes show reduced maturity on RNA and protein level as well as the inability to clear excess glutamate through the loss of both enzymes and transporters complementary to a reduction of phagocytic capabilities. DISCUSSION: Our study provides evidence of mechanistic alterations in TSC astrocytes, underscoring the significant impairment of their supportive functions. These insights enhance our understanding of TSC pathophysiology and hold potential implications for future therapeutic interventions.

Keywords

TSC, astrocytes, epilepsy, glutamate buffering, inflammation, phagocytosis, Cellular and Molecular Neuroscience

Citation

Luinenburg, M J, Scheper, M, Sørensen, F N F, Anink, J J, Van Hecke, W, Korshunova, I, Jansen, F E, Riney, K, van Eijsden, P, Gosselaar, P, Mills, J D, Kalf, R S, Zimmer, T S, Broekaart, D W M, Khodosevich, K, Aronica, E & Mühlebner, A 2023, 'Loss of maturity and homeostatic functions in Tuberous Sclerosis Complex-derived astrocytes', Frontiers in Cellular Neuroscience, vol. 17, 1284394. https://doi.org/10.3389/fncel.2023.1284394