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Biology subjects

bernard, c.

Publications and source records attributed to bernard, c..

2 recordsLinked to original sources

Degeneracy in Astrocytic Potassium Buffering: A Minimal Model Capturing the Interplay Between Local and Long-Range Mechanisms

Maintaining extracellular potassium (K+) homeostasis is critical for neuronal function, and astrocytes achieve this through a combination of local uptake and long-range spatial buffering. While degeneracy--the ability of different mechanisms to achieve the same function--is a fundamental property of biological systems, its role in astrocytic potassium buffering has remained unexplored. We present a minimal mathematical model that identifies essential buffering mechanisms while ensuring tractability and interpretability. Incorporating Kir channels and gap junction coupling, the model reproduces experimentally observed astrocyte membrane dynamics under various pharmacological conditions Parameter exploration reveals two levels of degeneracy. At the single-cell level, multiple parameter configurations yield similar membrane potential dynamics, indicating flexibility in local and spatial buffering contributions. At the functional level, despite variations in astrocyte morphology and buffering efficiency, homeostasis of extracellular K+ is restored, demonstrating homeostatic degeneracy. These findings highlight the robustness of astrocytic potassium regulation, showing that diverse buffering strategies ensure stability. Our work establishes a theoretical framework for understanding how astrocytic heterogeneity contributes to robust ionic homeostasis and offers perspectives for studying pathological conditions where buffering mechanisms are impaired.

neuroscience↗

A receptor-independent signaling pathway for BDNF

In addition to its well-known receptor-mediated function in cell survival, differentiation and growth, we report that the extracellular brain-derived neurotrophic factor (BDNF) also controls the intracellular KEAP1-NRF2 cytoprotective system by a receptor-independent pathway. Extracellular BDNF can cross the cell membrane as it possesses a protein-translocation domain, also known as cell-penetrating peptide. This membrane crossing process is energy-independent, ruling out endocytosis and receptor-dependent mechanisms. Once in the cytosol, BDNF binds to KEAP1 with a nanomolar affinity, enabling nuclear translocation of NRF2 and transcription of NRF2-target genes. BDNF is thus a major regulator of NRF2 activation. A dysfunction of this BDNF-KEAP1-NRF2 pathway may be involved in most diseases where antioxidant and cytoprotective functions are altered. This novel form of communication, whereby a receptor ligand protein exerts a biological activity by crossing the cell membrane, opens new avenues for cell signaling.

cell biology↗