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1.
Biophys J ; 113(11): 2452-2463, 2017 Dec 05.
Article in English | MEDLINE | ID: mdl-29211999

ABSTRACT

In biological membranes, many factors such as cytoskeleton, lipid composition, crowding, and molecular interactions deviate lateral diffusion from the expected random walks. These factors have different effects on diffusion but act simultaneously, so the observed diffusion is a complex mixture of diffusive behaviors (directed, Brownian, anomalous, or confined). Therefore, commonly used approaches to quantify diffusion based on averaging of the displacements such as the mean square displacement, are not adapted to the analysis of this heterogeneity. We introduce a parameter-the packing coefficient Pc, which gives an estimate of the degree of free movement that a molecule displays in a period of time independently of its global diffusivity. Applying this approach to two different situations (diffusion of a lipid probe and trapping of receptors at synapses), we show that Pc detected and localized temporary changes of diffusive behavior both in time and in space. More importantly, it allowed the detection of periods with very high confinement as well as their frequency and duration, and thus it can be used to calculate the effective kon and koff of scaffolding interactions such as those that immobilize receptors at synapses.


Subject(s)
Single Molecule Imaging , Animals , Cell Membrane/metabolism , Diffusion , Neurons/cytology , Rats
2.
J Neurosci ; 33(46): 18149-60, 2013 Nov 13.
Article in English | MEDLINE | ID: mdl-24227724

ABSTRACT

In the developing brain, cortical GABAergic interneurons migrate long distances from the medial ganglionic eminence (MGE) in which they are generated, to the cortex in which they settle. MGE cells express the cell adhesion molecule N-cadherin, a homophilic cell-cell adhesion molecule that regulates numerous steps of brain development, from neuroepithelium morphogenesis to synapse formation. N-cadherin is also expressed in embryonic territories crossed by MGE cells during their migration. In this study, we demonstrate that N-cadherin is a key player in the long-distance migration of future cortical interneurons. Using N-cadherin-coated substrate, we show that N-cadherin-dependent adhesion promotes the migration of mouse MGE cells in vitro. Conversely, mouse MGE cells electroporated with a construct interfering with cadherin function show reduced cell motility, leading process instability, and impaired polarization associated with abnormal myosin IIB dynamics. In vivo, the capability of electroporated MGE cells to invade the developing cortical plate is altered. Using genetic ablation of N-cadherin in mouse embryos, we show that N-cadherin-depleted MGEs are severely disorganized. MGE cells hardly exit the disorganized proliferative area. N-cadherin ablation at the postmitotic stage, which does not affect MGE morphogenesis, alters MGE cell motility and directionality. The tangential migration to the cortex of N-cadherin ablated MGE cells is delayed, and their radial migration within the cortical plate is perturbed. Altogether, these results identify N-cadherin as a pivotal adhesion substrate that activates cell motility in future cortical interneurons and maintains cell polarity over their long-distance migration to the developing cortex.


Subject(s)
Cadherins/metabolism , Cell Movement/physiology , Cell Polarity/physiology , Cerebral Cortex/metabolism , Interneurons/metabolism , Neurogenesis/physiology , Animals , Cadherins/deficiency , Cells, Cultured , Cerebral Cortex/cytology , Coculture Techniques , Female , Forecasting , Humans , Male , Mice , Mice, Transgenic , Pregnancy
3.
J Neurosci ; 33(28): 11432-9, 2013 Jul 10.
Article in English | MEDLINE | ID: mdl-23843515

ABSTRACT

Thrombospondin-1 (TSP-1) is a large extracellular matrix protein secreted by astrocytes during development and inflammation. In the developing CNS, TSP-1 is involved in neuronal migration and adhesion, neurite outgrowth, and synaptogenesis. We investigated the effects of TSP-1 on neurons with mature synapses using immunocytochemistry, single-particle tracking, surface biotinylation, and calcium imaging. We show that in cultured rat spinal cord neurons TSP-1 decreased neuronal excitability by reducing the accumulation of excitatory AMPA receptors (AMPARs) and increasing that of inhibitory glycine receptors (GlyRs) in synapses. The effects of TSP-1 on GlyRs were dependent on the activation of excitatory receptors. These changes were abolished by blocking ß1-integrins and mimicked by blocking ß3-integrins. In the presence of TSP-1, AMPARs were less stabilized at synapses, increasing their lateral diffusion and endocytosis. Interestingly, TSP-1 counteracted the increased neuronal excitability and neuronal death induced by TNFα. These results suggest a role of TSP-1 in controlling the balance between excitation and inhibition which could help the recovery of normal synaptic activity after injury responses.


Subject(s)
Neurons/metabolism , Receptors, AMPA/metabolism , Receptors, Glycine/metabolism , Spinal Cord/metabolism , Synapses/metabolism , Thrombospondin 1/physiology , Animals , Cells, Cultured , Female , Male , Neurons/drug effects , Rats , Rats, Sprague-Dawley , Receptors, AMPA/antagonists & inhibitors , Receptors, Glycine/agonists , Spinal Cord/drug effects , Synapses/drug effects
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