| Literature DB >> 31191247 |
Carolina Roza1, José A Campos-Sandoval2, María C Gómez-García2, Ana Peñalver2, Javier Márquez2.
Abstract
Signaling through bioactive <span class="Chemical">lipids regulates nervous system development and functions. <span class="Chemical">Lysophosphatidic acid (LPA), a membrane-derived lipid mediator particularly enriched in brain, is able to induce many responses in neurons and glial cells by affecting key processes like synaptic plasticity, neurogenesis, differentiation and proliferation. Early studies noted sustained elevations of neuronal intracellular calcium, a primary response to LPA exposure, suggesting functional modifications of NMDA and AMPA glutamate receptors. However, the crosstalk between LPA signaling and glutamatergic transmission has only recently been shown. For example, stimulation of presynaptic LPA receptors in hippocampal neurons regulates glutamate release from the presynaptic terminal, and excess of LPA induce seizures. Further evidence indicating a role of LPA in the modulation of neuronal transmission has been inferred from animal models with deficits on LPA receptors, mainly LPA1 which is the most prevalent receptor in human and mouse brain tissue. LPA1 null-mice exhibit cognitive and attention deficits characteristic of schizophrenia which are related with altered glutamatergic transmission and reduced neuropathic pain. Furthermore, silencing of LPA1 receptor in mice induced a severe down-regulation of the main glutaminase isoform (GLS) in cerebral cortex and hippocampus, along with a parallel sharp decrease on active matrix-metalloproteinase 9. The downregulation of both enzymes correlated with an altered morphology of glutamatergic pyramidal cells dendritic spines towards a less mature phenotype, indicating important implications of LPA in synaptic excitatory plasticity which may contribute to the cognitive and memory deficits shown by LPA1-deficient mice. In this review, we present an updated account of current evidence pointing to important implications of LPA in the modulation of synaptic excitatory transmission.Entities:
Keywords: LPA; glutamatergic transmission; glutaminases; neuropathic pain; synaptic plasticity
Year: 2019 PMID: 31191247 PMCID: PMC6546900 DOI: 10.3389/fnmol.2019.00138
Source DB: PubMed Journal: Front Mol Neurosci ISSN: 1662-5099 Impact factor: 5.639
Figure 1Main functional effects of lysophosphatidic acid (LPA) in cells related to the nervous system. In this scheme, we highlight the main functional effects elicited by LPA in neuronal cell lines and in primary cultures of neurons and astrocytes. Neurite retraction, growth cone collapse and cell rounding have been described to be mediated by all LPA receptor subtypes, except LPA3. This last receptor has been recently shown to induce neurite branch formation. In neurons, LPA also induces a sustained elevation of intracellular calcium, with strong repercussions on cytoskeletal remodeling as neurite outgrowth. The morphological changes induced by LPA in neurons can be also mediated by autocrine effects coming from neighbor astrocytes, which promote neuronal differentiation and increases in arborization and neurite outgrowth. Finally, LPA-treated astrocytes show a range of different effects including the inhibition of glutamate uptake and increases in intracellular calcium concentration.
Figure 2(A) Upon high levels of LPA, glutamatergic pre-synaptic neurons decrease the pool of available glutamate-containing vesicles acting as a negative feed-back to decrease excitability of hypoglossal motoneurons. Low concentration of LPA induces gamma-aminobutyric acid receptor type A (GABAAR) internalization at the post-synaptic membrane, increasing briefly the excitability of the hypoglossal motoneuron by disinhibition (García-Morales et al., 2015). (B) Loss of functional plasticity-related gene 1 (PRG-1) at the post-synaptic membrane leads to increased LPA accumulation at the synaptic cleft. Activation of LPA2 facilitates now glutamate release from the presynaptic neuron. In addition, the release of autotaxin (ATX) from astrocytes is now further increased by the enhanced concentration of glutamate (Trimbuch et al., 2009; Vogt et al., 2016; Thalman et al., 2018).
Figure 3Golgi staining of CA1 pyramidal neurons from wild-type (WT) and KOLPA1 mice demonstrating the morphological differences between KOLPA1 and WT spines. (A) Overall spine length values showed significant differences between genotypes (WT 1.4 ± 0.05 μm, KOLPA1 2.12 ± 0.09 μm; Mann-Whitney, ****p < 0.0001). (B) Significant differences were found in the distribution of dendritic spine morphologies within stratum oriens from KOLPA1 model compared to the same region of WT mice. Filopodia type was significantly more frequent in KOLPA1 mice in detriment of both mushroom and stubby categories (t-test, Filopodia ****p < 0.0001, Stubby **p = 0.0073 and Thin, n.s.; Mann-Whitney, Mushroom ****p < 0.0001). (C,D) Spine head of mushroom subtype was smaller in KOLPA1 (D; D2, D3 depict details from D1 and D4, respectively) than in WT mice (C; C2, C3 depict details from C1 and C4, respectively). (E) Quantitative analysis demonstrated a significant decrease in the head-width of mushroom spines from KOLPA1 mice (0.52 ± 0.02 μm) compared to WT (0.91 ± 0.02 μm); t-test, ****p < 0.0001. Scale bar: C1, C4, D1 and D4 (2 μm); C2, C3, D2, D3 (1 μm). Matrix metalloproteinase (MMP) activities (F) and protein expression levels (G) in cerebral cortex and hippocampus of WT and KOLPA1 mice. Significant differences were found in MMP-9 proteolytic activity of both brain areas (F), showing a decreased activity in knock-out (KO) mice (****p < 0.0001), while MMP-2 remained unchanged. Immunoblot analysis of MMP-9 protein expression in cerebral cortex and hippocampus from WT and KOLPA1 mice (G). Quantitive analysis of proactive (92 kDa) and active (82 kDa) MMP-9 were determined by densitometry and relative to β-actin expression (WT n = 4; KO n = 5). A reduction in active MMP-9 expression was detected in KOLPA1 compared to WT mice (*p < 0.05, **p < 0.01), while no changes were detected in pro-active MMP-9 expression (Adapted from Peñalver et al., 2017).
Figure 4Comparative analysis of immunostaining for Gls-encoded long GA protein variant (KGA) in WT and KOLPA1 mice brain. Specific immunolabeling for KGA was detected within the somata/neuropile of several brain regions in WT brain (left column). In general, there was a strong reduction in the staining together with a progressive switch to a perivascular location from control to KO mice. (A,B) Panoramic views of sections containing cerebral cortex and striatum: black arrows indicate KGA-positive blood vessels. (C,D) Progressive change of KGA-staining in deep layers of agranular insular cortex (square; detail of cortical somatic staining, inset in (C). (E,F) KGA-positive staining in the CA1-CA3 hippocampal subfields and DG was dramatically decreased in KO genotype in comparison to WT. Ctx, cortex; St, striatum; bv, blood vessel; CA1, CA3, hippocampal subfields; DG, dentate gyrus; Th, thalamus. Scale bar: (A,B), 1 mm; (C,D), 100 μm; (E,F), 500 μm; Inset (C), 25 μm. Determination of total GA activity in mouse brain regions (G). Significant differences in GA specific activity were found in motor cortex (WT n = 9; KO n = 5) and prefrontal cortex (PFC; WT n = 12; KO n = 8), but not in hippocampus and striatum (results not shown). ***p < 0.001; *p < 0.05 (both panels adapted from Peñalver et al., 2017).
Figure 5Sustained activity from peripheral nerve as a consequence of nerve damage provokes co-release of glutamate and substance P (SP) from the central terminals of the nociceptors. Activation of NMDA and NK1 receptors provokes a rise in cytosolic Ca2+ followed by phospholipase A2 (PLA2)-induced lisophosphatidilcholine (LPC) synthesis. LPC leaves the cell and is converted to LPA by ATX. Signaling through LPA1 initiates a process of demyelination at the central terminals of the primary afferents. Signaling through LPA3 constitutes a feed-forward mechanism for LPA formation (Inoue et al., 2004; Fujita et al., 2007; Ma et al., 2010a,b).