| Literature DB >> 31866826 |
Luke R Johnson1,2,3,4,5, Andrew R Battle5,6,7, Boris Martinac1,2.
Abstract
An increase in post-synaptic Ca2+ conductance through activation of the ionotropic N-methyl-D-aspartate receptor (NMDAR) and concomitant structural changes are essential for the initiation of long-term potentiation (LTP) and memory formation. Memories can be initiated by coincident events, as occurs in classical conditioning, where the NMDAR can act as a molecular coincidence detector. Binding of glutamate and glycine, together with depolarization of the postsynaptic cell membrane to remove the Mg2+ channel pore block, results in NMDAR opening for Ca2+ conductance. Accumulating evidence has implicated both force-from-lipids and protein tethering mechanisms for mechanosensory transduction in NMDAR, which has been demonstrated by both, membrane stretch and application of amphipathic molecules such as arachidonic acid (AA). The contribution of mechanosensitivity to memory formation and consolidation may be to increase activity of the NMDAR leading to facilitated memory formation. In this review we look back at the progress made toward understanding the physiological and pathological role of NMDA receptor channels in mechanobiology of the nervous system and consider these findings in like of their potential functional implications for memory formation. We examine recent studies identifying mechanisms of both NMDAR and other mechanosensitive channels and discuss functional implications including gain control of NMDA opening probability. Mechanobiology is a rapidly growing area of biology with many important implications for understanding form, function and pathology in the nervous system.Entities:
Keywords: NMDA; amygdala; force; learning; lipids; mechanobiology; memory
Year: 2019 PMID: 31866826 PMCID: PMC6906178 DOI: 10.3389/fncel.2019.00533
Source DB: PubMed Journal: Front Cell Neurosci ISSN: 1662-5102 Impact factor: 5.505
FIGURE 1Overall structure and activation mechanism of N-methyl-D-aspartate receptor (NMDAR) ion channel. (A) 3D structure of heterotetrameric NMDAR channel consisting of two GluN1a and two GluN2B subunits [adapted from Karakas and Furukawa (2014)]. Glycine and glutamate binding sites are indicated on the GluN1a and GluN2B subunits, respectively. Mg2+ binding site is represented by a dark blue circle. CTD refers to cytoplasmic domain. (B) Activation of NMDAR channel by insertion of an amphipathic molecule (e.g., arachidonic acid (AA) indicated by light blue rods) into the extracellular leaflet of the membrane bilayer (Casado and Ascher, 1998). One-sided insertion of AA is curving the bilayer, which changes the lateral pressure in the bilayer (black profile inset) causing the channel to open (Bavi O. et al., 2016).
A brief history of mechanobiology of the N-methyl-D-aspartate receptor (NMDAR).
| 1992 | Miller | Atwell | U London | Nature | Cerebellar granule | AA | Currents | AA potentiates currents |
| 1994 | Paoletti | Ascher | Ecole N Sup Paris | Neuron | Mouse cultured neurons | Osmolarity and Stretch | Currents | NMDA current increase -reduce osmolarity |
| 1998 | Casado | Ascher | Ecole N Sup Paris | J Physiol | Cortical cultures | Lysophosphlipids and AA | Currents | AA potentiates currents |
| 2004 | Chaban | McRoberts | UCLA | Neuroscience | DRG | Poke glass pippettes | Ca2+ Imaging | Poke increase Ca2+ imaging |
| 2007a | Kloda | Martinac | U Queensland | PNAS | Artificial bilayer | Stretch and AA | Currents | AA and Stretch potentiate NMDAR currents |
| 2008 | Ma | Lee | Fu Jen Cath U | Hypertension | Renal afferent nerve | Endogenous pressure | Urine output | NMDAzeta1 found in Renal Nerve |
| 2009 | Parnas | Minke | Hebrew U | J Neurosci | Photo R and CAI | Linoleic acid (LA) | Currents | Lipid mod removes Open Channel Block |
| 2012 | Singh | Meaney | U Penn | J Biol Chem | HEK 293 | Stretch | Ca2+ Imaging | Stretch sensitivity C term Ser-1323 NR2B |
| 2017 | Maneshi | Hua | SUNY Buffalo | Sci Rep | Astrocytes rat | Shear stress | Ca2+ Imaging | Shear Stress - blocked by MK801 |