4.7 Article

Inhibitory control in neuronal networks relies on the extracellular matrix integrity

期刊

CELLULAR AND MOLECULAR LIFE SCIENCES
卷 78, 期 14, 页码 5647-5663

出版社

SPRINGER BASEL AG
DOI: 10.1007/s00018-021-03861-3

关键词

Neuronal network activity; ECM; Inhibitory synapse; E-I balance; Electrophysiology

资金

  1. German Research Foundation (DFG) [259317790, 389030878, 405358801, 290189690]

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Our study shows that the brain's ECM maintains E-I balance by supporting inhibitory control through the retention of inhibitory connectivity. Depletion of the ECM in mature neuronal networks leads to a decrease in inhibitory synapse density and individual postsynaptic scaffolds, which is partially compensated by an increase in synaptic strength.
Inhibitory control is essential for the regulation of neuronal network activity, where excitatory and inhibitory synapses can act synergistically, reciprocally, and antagonistically. Sustained excitation-inhibition (E-I) balance, therefore, relies on the orchestrated adjustment of excitatory and inhibitory synaptic strength. While growing evidence indicates that the brain's extracellular matrix (ECM) is a crucial regulator of excitatory synapse plasticity, it remains unclear whether and how the ECM contributes to inhibitory control in neuronal networks. Here we studied the simultaneous changes in excitatory and inhibitory connectivity after ECM depletion. We demonstrate that the ECM supports the maintenance of E-I balance by retaining inhibitory connectivity. Quantification of synapses and super-resolution microscopy showed that depletion of the ECM in mature neuronal networks preferentially decreases the density of inhibitory synapses and the size of individual inhibitory postsynaptic scaffolds. The reduction of inhibitory synapse density is partially compensated by the homeostatically increasing synaptic strength via the reduction of presynaptic GABA(B) receptors, as indicated by patch-clamp measurements and GABA(B) receptor expression quantifications. However, both spiking and bursting activity in neuronal networks is increased after ECM depletion, as indicated by multi-electrode recordings. With computational modelling, we determined that ECM depletion reduces the inhibitory connectivity to an extent that the inhibitory synapse scaling does not fully compensate for the reduced inhibitory synapse density. Our results indicate that the brain's ECM preserves the balanced state of neuronal networks by supporting inhibitory control via inhibitory synapse stabilization, which expands the current understanding of brain activity regulation. Graphic abstract

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