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1.
Epigenetics ; 19(1): 2380930, 2024 Dec.
Article in English | MEDLINE | ID: mdl-39066680

ABSTRACT

In mammals, the molecular mechanisms underlying transgenerational inheritance of phenotypic traits in serial generations of progeny after ancestral environmental exposures, without variation in DNA sequence, remain elusive. We've recently described transmission of a beneficial trait in rats and mice, in which F0 supplementation of methyl donors, including folic acid, generates enhanced axon regeneration after sharp spinal cord injury in untreated F1 to F3 progeny linked to differential DNA methylation levels in spinal cord tissue. To test whether the transgenerational effect of folic acid is transmitted via the germline, we performed whole-genome methylation sequencing on sperm DNA from F0 mice treated with either folic acid or vehicle control, and their F1, F2, and F3 untreated progeny. Transgenerational differentially methylated regions (DMRs) are observed in each consecutive generation and distinguish folic acid from untreated lineages, predominate outside of CpG islands and in regions of the genome that regulate gene expression, including promoters, and overlap at both the differentially methylated position (DMP) and gene levels. These findings indicate that molecular changes between generations are caused by ancestral folate supplementation. In addition, 29,719 DMPs exhibit serial increases or decreases in DNA methylation levels in successive generations of untreated offspring, correlating with a serial increase in the phenotype across generations, consistent with a 'wash-in' effect. Sibship-specific DMPs annotate to genes that participate in axon- and synapse-related pathways.


Subject(s)
Axons , DNA Methylation , Folic Acid , Spermatozoa , Folic Acid/pharmacology , Folic Acid/administration & dosage , Animals , Male , Mice , Spermatozoa/drug effects , Spermatozoa/metabolism , Axons/metabolism , Axons/drug effects , Spinal Cord Injuries/genetics , Spinal Cord Injuries/metabolism , CpG Islands , Female , Nerve Regeneration/drug effects , Epigenesis, Genetic , Spinal Cord/metabolism , Spinal Cord/drug effects , Spinal Cord/cytology
2.
Sci Rep ; 14(1): 17360, 2024 Jul 29.
Article in English | MEDLINE | ID: mdl-39075089

ABSTRACT

Prostaglandin E2 (PGE2) is a major contributor to inflammatory pain hyperalgesia, however, the extent to which it modulates the activity of nociceptive axons is incompletely understood. We developed and characterized a microfluidic cell culture model to investigate sensitisation of the axons of dorsal root ganglia neurons. We show that application of PGE2 to fluidically isolated axons leads to sensitisation of their responses to depolarising stimuli. Interestingly the application of PGE2 to the DRG axons elicited a direct and persistent spiking activity propagated to the soma. Both the persistent activity and the membrane depolarisation in the axons are abolished by the EP4 receptor inhibitor and a blocker of cAMP synthesis. Further investigated into the mechanisms of the spiking activity showed that the PGE2 evoked depolarisation was inhibited by Nav1.8 sodium channel blockers but was refractory to the application of TTX or zatebradine. Interestingly, the depolarisation of axons was blocked by blocking ANO1 channels with T16Ainh-A01. We further show that PGE2-elicited axonal responses are altered by the changes in chloride gradient within the axons following treatment with bumetanide a Na-K-2Cl cotransporter NKCC1 inhibitor, but not by VU01240551 an inhibitor of potassium-chloride transporter KCC2. Our data demonstrate a novel role for PGE2/EP4/cAMP pathway which culminates in a sustained depolarisation of sensory axons mediated by a chloride current through ANO1 channels. Therefore, using a microfluidic culture model, we provide evidence for a potential dual function of PGE2 in inflammatory pain: it sensitises depolarisation-evoked responses in nociceptive axons and directly triggers action potentials by activating ANO1 and Nav1.8 channels.


Subject(s)
Anoctamin-1 , Axons , Dinoprostone , Ganglia, Spinal , NAV1.8 Voltage-Gated Sodium Channel , NAV1.8 Voltage-Gated Sodium Channel/metabolism , Animals , Dinoprostone/pharmacology , Dinoprostone/metabolism , Axons/metabolism , Axons/drug effects , Axons/physiology , Ganglia, Spinal/metabolism , Ganglia, Spinal/drug effects , Rats , Anoctamin-1/metabolism , Sensory Receptor Cells/metabolism , Sensory Receptor Cells/drug effects , Action Potentials/drug effects , Receptors, Prostaglandin E, EP4 Subtype/metabolism , Rats, Sprague-Dawley , Cells, Cultured , Solute Carrier Family 12, Member 2/metabolism , Cyclic AMP/metabolism
3.
Biomolecules ; 14(7)2024 Jun 21.
Article in English | MEDLINE | ID: mdl-39062450

ABSTRACT

Transcriptomes and proteomes can be normalized with a handful of RNAs or proteins (or their peptides), such as GAPDH, ß-actin, RPBMS, and/or GAP43. Even with hundreds of standards, normalization cannot be achieved across different molecular mass ranges for small molecules, such as lipids and metabolites, due to the non-linearity of mass by charge ratio for even the smallest part of the spectrum. We define the amount (or range of amounts) of metabolites and/or lipids per a defined amount of a protein, consistently identified in all samples of a multiple-model organism comparison, as the normative level of that metabolite or lipid. The defined protein amount (or range) is a normalized value for one cohort of complete samples for which intrasample relative protein quantification is available. For example, the amount of citrate (a metabolite) per µg of aconitate hydratase (normalized protein amount) identified in the proteome is the normative level of citrate with aconitase. We define normativity as the amount of metabolites (or amount range) detected when compared to normalized protein levels. We use axon regeneration as an example to illustrate the need for advanced approaches to the normalization of proteins. Comparison across different pharmacologically induced axon regeneration mouse models entails the comparison of axon regeneration, studied at different time points in several models designed using different agents. For the normalization of the proteins across different pharmacologically induced models, we perform peptide doping (fixed amounts of known peptides) in each sample to normalize the proteome across the samples. We develop Regen V peptides, divided into Regen III (SEB, LLO, CFP) and II (HH4B, A1315), for pre- and post-extraction comparisons, performed with the addition of defined, digested peptides (bovine serum albumin tryptic digest) for protein abundance normalization beyond commercial labeled relative quantification (for example, 18-plex tandem mass tags). We also illustrate the concept of normativity by using this normalization technique on regenerative metabolome/lipidome profiles. As normalized protein amounts are different in different biological states (control versus axon regeneration), normative metabolite or lipid amounts are expected to be different for specific biological states. These concepts and standardization approaches are important for the integration of different datasets across different models of axon regeneration.


Subject(s)
Axons , Nerve Regeneration , Animals , Axons/metabolism , Mice , Proteome/metabolism , Proteomics/methods , Transcriptome , Multiomics
4.
J Comp Neurol ; 532(7): e25652, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38962882

ABSTRACT

Although the mammalian cerebral cortex is most often described as a hexalaminar structure, there are cortical areas (primary motor cortex) and species (elephants, cetaceans, and hippopotami), where a cytoarchitecturally indistinct, or absent, layer 4 is noted. Thalamocortical projections from the core, or first order, thalamic system terminate primarily in layers 4/inner 3. We explored the termination sites of core thalamocortical projections in cortical areas and in species where there is no cytoarchitecturally distinct layer 4 using the immunolocalization of vesicular glutamate transporter 2, a known marker of core thalamocortical axon terminals, in 31 mammal species spanning the eutherian radiation. Several variations from the canonical cortical column outline of layer 4 and core thalamocortical inputs were noted. In shrews/microchiropterans, layer 4 was present, but many core thalamocortical projections terminated in layer 1 in addition to layers 4 and inner 3. In primate primary visual cortex, the sublaminated layer 4 was associated with a specialized core thalamocortical projection pattern. In primate primary motor cortex, no cytoarchitecturally distinct layer 4 was evident and the core thalamocortical projections terminated throughout layer 3. In the African elephant, cetaceans, and river hippopotamus, no cytoarchitecturally distinct layer 4 was observed and core thalamocortical projections terminated primarily in inner layer 3 and less densely in outer layer 3. These findings are contextualized in terms of cortical processing, perception, and the evolutionary trajectory leading to an indistinct or absent cortical layer 4.


Subject(s)
Axons , Neocortex , Neural Pathways , Thalamus , Animals , Thalamus/cytology , Thalamus/anatomy & histology , Neocortex/cytology , Neocortex/anatomy & histology , Neural Pathways/cytology , Neural Pathways/anatomy & histology , Axons/physiology , Mammals/anatomy & histology , Vesicular Glutamate Transport Protein 2/metabolism , Species Specificity
5.
Sci Signal ; 17(843): eadr3505, 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38954639

ABSTRACT

Opioids trigger myelin insulation of reward circuit axons in a feedforward loop of addiction.


Subject(s)
Analgesics, Opioid , Humans , Analgesics, Opioid/pharmacology , Animals , Axons/metabolism , Axons/physiology , Myelin Sheath/metabolism , Reward , Opioid-Related Disorders
6.
Zhen Ci Yan Jiu ; 49(7): 767-776, 2024 Jul 25.
Article in English, Chinese | MEDLINE | ID: mdl-39020496

ABSTRACT

Stroke brings the pathological changes of brain tissues such as hematoma formation or ischemia and hypoxia, which leads to neuronal death and axon degeneration. Axon regeneration after its injury is mainly dependent on the surrounding microenvironment and the related proteins, including glial scar, myelin associated inhibitory factors, axon guidance molecules, and neurotrophic factors. All of them affect axon growth by regulating the morphology and orientation of growth cones, the synaptic stability, and the proliferation and differentiation of neural stem cells. This article summarizes the mechanism of acupuncture in regulating axon regeneration after stroke. Acupuncture inhibits glial scar formation, alleviates the inhibitory effects of its physical and chemical barriers on axon growth, reverses the inhibitory effects of myelin-related inhibitory factors on axon growth, and adjusts the level of axon guidance molecules to promote the proliferation and differentiation of neural stem cells and the regeneration of injured axons, and up-regulates neurotrophic factors. Eventually, post-stroke nerve injury can be ameliorated.


Subject(s)
Acupuncture Therapy , Axons , Nerve Regeneration , Stroke , Humans , Animals , Axons/metabolism , Axons/physiology , Stroke/therapy , Stroke/metabolism , Stroke/physiopathology , Neural Stem Cells/metabolism
7.
Proc Natl Acad Sci U S A ; 121(31): e2310120121, 2024 Jul 30.
Article in English | MEDLINE | ID: mdl-39058579

ABSTRACT

The axon initial segment (AIS) is a critical compartment in neurons. It converts postsynaptic input into action potentials that subsequently trigger information transfer to target neurons. This process relies on the presence of several voltage-gated sodium (NaV) and potassium (KV) channels that accumulate in high densities at the AIS. TRAAK is a mechanosensitive leak potassium channel that was recently localized to the nodes of Ranvier. Here, we uncover that TRAAK is also present in AISs of hippocampal and cortical neurons in the adult rat brain as well as in AISs of cultured rat hippocampal neurons. We show that the AIS localization is driven by a C-terminal ankyrin G-binding sequence that organizes TRAAK in a 190 nm spaced periodic pattern that codistributes with periodically organized ankyrin G. We furthermore uncover that while the identified ankyrin G-binding motif is analogous to known ankyrin G-binding motifs in NaV1 and KV7.2/KV7.3 channels, it was acquired by convergent evolution. Our findings identify TRAAK as an AIS ion channel that convergently acquired an ankyrin G-binding motif and expand the role of ankyrin G to include the nanoscale organization of ion channels at the AIS.


Subject(s)
Ankyrins , Axon Initial Segment , Hippocampus , Pyramidal Cells , Animals , Ankyrins/metabolism , Rats , Pyramidal Cells/metabolism , Axon Initial Segment/metabolism , Hippocampus/metabolism , Hippocampus/cytology , Axons/metabolism , Amino Acid Motifs , Potassium Channels/metabolism , Protein Binding
8.
Elife ; 132024 Jul 25.
Article in English | MEDLINE | ID: mdl-39052321

ABSTRACT

Axon projection is a spatial- and temporal-specific process in which the growth cone receives environmental signals guiding axons to their final destination. However, the mechanisms underlying changes in axonal projection direction without well-defined landmarks remain elusive. Here, we present evidence showcasing the dynamic nature of axonal projections in Drosophila's small ventral lateral clock neurons (s-LNvs). Our findings reveal that these axons undergo an initial vertical projection in the early larval stage, followed by a subsequent transition to a horizontal projection in the early-to-mid third instar larvae. The vertical projection of s-LNv axons correlates with mushroom body calyx expansion, while the s-LNv-expressed Down syndrome cell adhesion molecule (Dscam1) interacts with Netrins to regulate the horizontal projection. During a specific temporal window, locally newborn dorsal clock neurons secrete Netrins, facilitating the transition of axonal projection direction in s-LNvs. Our study establishes a compelling in vivo model to probe the mechanisms of axonal projection direction switching in the absence of clear landmarks. These findings underscore the significance of dynamic local microenvironments in the complementary regulation of axonal projection direction transitions.


Subject(s)
Axons , Drosophila Proteins , Drosophila melanogaster , Neurons , Signal Transduction , Animals , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Axons/metabolism , Axons/physiology , Neurons/metabolism , Neurons/physiology , Drosophila melanogaster/metabolism , Drosophila melanogaster/genetics , Netrins/metabolism , Netrins/genetics , Cell Adhesion Molecules/metabolism , Cell Adhesion Molecules/genetics , Larva/metabolism , Mushroom Bodies/metabolism
9.
Cells ; 13(14)2024 Jul 22.
Article in English | MEDLINE | ID: mdl-39056812

ABSTRACT

Lower motor neuron (LMN) damage results in denervation of the associated muscle targets and is a significant yet under-appreciated component of spinal cord injury (SCI). Denervated muscle undergoes a progressive degeneration and fibro-fatty infiltration that eventually renders the muscle non-viable unless reinnervated within a limited time window. The distal nerve deprived of axons also undergoes degeneration and fibrosis making it less receptive to axons. In this review, we describe the LMN injury associated with SCI and its clinical consequences. The process of degeneration of the muscle and nerve is broken down into the primary components of the neuromuscular circuit and reviewed, including the nerve and Schwann cells, the neuromuscular junction, and the muscle. Finally, we discuss three promising strategies to reverse denervation atrophy. These include providing surrogate axons from local sources; introducing stem cell-derived spinal motor neurons into the nerve to provide the missing axons; and finally, instituting a training program of high-energy electrical stimulation to directly rehabilitate these muscles. Successful interventions for denervation atrophy would significantly expand reconstructive options for cervical SCI and could be transformative for the predominantly LMN injuries of the conus medullaris and cauda equina.


Subject(s)
Motor Neurons , Spinal Cord Injuries , Spinal Cord Injuries/therapy , Humans , Motor Neurons/pathology , Animals , Axons/pathology , Nerve Regeneration
10.
Elife ; 122024 Jul 26.
Article in English | MEDLINE | ID: mdl-39057843

ABSTRACT

Acetylcholine is released in visual cortex by axonal projections from the basal forebrain. The signals conveyed by these projections and their computational significance are still unclear. Using two-photon calcium imaging in behaving mice, we show that basal forebrain cholinergic axons in the mouse visual cortex provide a binary locomotion state signal. In these axons, we found no evidence of responses to visual stimuli or visuomotor prediction errors. While optogenetic activation of cholinergic axons in visual cortex in isolation did not drive local neuronal activity, when paired with visuomotor stimuli, it resulted in layer-specific increases of neuronal activity. Responses in layer 5 neurons to both top-down and bottom-up inputs were increased in amplitude and decreased in latency, whereas those in layer 2/3 neurons remained unchanged. Using opto- and chemogenetic manipulations of cholinergic activity, we found acetylcholine to underlie the locomotion-associated decorrelation of activity between neurons in both layer 2/3 and layer 5. Our results suggest that acetylcholine augments the responsiveness of layer 5 neurons to inputs from outside of the local network, possibly enabling faster switching between internal representations during locomotion.


Subject(s)
Acetylcholine , Optogenetics , Visual Cortex , Animals , Visual Cortex/physiology , Mice , Acetylcholine/metabolism , Cholinergic Neurons/physiology , Locomotion/physiology , Male , Photic Stimulation , Axons/physiology , Neurons/physiology
11.
J Neurogenet ; 38(2): 35-40, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38975976

ABSTRACT

Pathogenic, biallelic variants in SORD were identified in 2020 as a novel cause for autosomal-recessive Charcot-Marie-Tooth disease (CMT) type 2, an inherited neuropathy. SORD codes for the enzyme sorbitol dehydrogenase. Loss of this enzyme's activity leads to an increase of sorbitol in serum. We retrospectively screened 166 patients with axonal neuropathy (predominantly CMT type 2, but including intermediate form of CMT and distal hereditary motor neuropathy (dHMN)) without identified genetic etiology for SORD mutations at a single large German neuromuscular center. Clinical and electrophysiology exam findings were analyzed for genotype-phenotype correlation. Five patients of the total cohort of 166 patients harbored pathogenic variants in SORD (3%). The homozygous frameshift variant c.757delG (p.Ala253Glnfs*27) was the most common (4/5). One additional case carried this variant on one allele only and an additional pathogenic missense variant c.458C > A (p.Ala153Asp) on the other allele. Age of onset ranged from early infancy to mid-twenties, and phenotypes comprised axonal CMT (4) and dHMN (1). Our findings strengthen the importance of screening for pathogenic variants in SORD, especially in patients with genetically unconfirmed axonal neuropathy, especially CMT type 2 and dHMN.


Subject(s)
Charcot-Marie-Tooth Disease , Phenotype , Humans , Charcot-Marie-Tooth Disease/genetics , Female , Male , Adult , Mutation , Retrospective Studies , Genetic Association Studies/methods , Child , Adolescent , Axons/pathology , Young Adult , Child, Preschool
12.
Elife ; 132024 Jul 16.
Article in English | MEDLINE | ID: mdl-39012795

ABSTRACT

Axo-axonic cells (AACs), also called chandelier cells (ChCs) in the cerebral cortex, are the most distinctive type of GABAergic interneurons described in the neocortex, hippocampus, and basolateral amygdala (BLA). AACs selectively innervate glutamatergic projection neurons (PNs) at their axon initial segment (AIS), thus may exert decisive control over PN spiking and regulate PN functional ensembles. However, the brain-wide distribution, synaptic connectivity, and circuit function of AACs remain poorly understood, largely due to the lack of specific and reliable experimental tools. Here, we have established an intersectional genetic strategy that achieves specific and comprehensive targeting of AACs throughout the mouse brain based on their lineage (Nkx2.1) and molecular (Unc5b, Pthlh) markers. We discovered that AACs are deployed across essentially all the pallium-derived brain structures, including not only the dorsal pallium-derived neocortex and medial pallium-derived hippocampal formation, but also the lateral pallium-derived claustrum-insular complex, and the ventral pallium-derived extended amygdaloid complex and olfactory centers. AACs are also abundant in anterior olfactory nucleus, taenia tecta, and lateral septum. AACs show characteristic variations in density across neocortical areas and layers and across subregions of the hippocampal formation. Neocortical AACs comprise multiple laminar subtypes with distinct dendritic and axonal arborization patterns. Retrograde monosynaptic tracing from AACs across neocortical, hippocampal, and BLA regions reveal shared as well as distinct patterns of synaptic input. Specific and comprehensive targeting of AACs facilitates the study of their developmental genetic program and circuit function across brain structures, providing a ground truth platform for understanding the conservation and variation of a bona fide cell type across brain regions and species.


Whether we are memorising facts or reacting to a loud noise, nerve cells in different brain areas must be able to communicate with one another through precise, meaningful signals. Specialized nerve cells known as interneurons act as "traffic lights" to precisely regulate when and where this information flows in neural circuits. Axo-axonic cells are a rare type of inhibitory interneuron that are thought to be particularly important for controlling the passage of information between different groups of excitatory neurons. This is because they only connect to one key part of their target cell ­ the axon-initial segment ­ where the electrical signals needed for brain communication (known as action potentials) are initiated. Since axo-axonic cells are inhibitory interneurons, this connection effectively allows them to 'veto' the generation of these signals at their source. Although axo-axonic cells have been identified in three brain regions using traditional anatomical methods, there were no 'tags' readily available that can reliably identify them. Therefore, much about these cells remained unknown, including how widespread they are in the mammalian brain. To solve this problem, Raudales et al. investigated which genes are switched on in axo-axonic cells but not in other cells, identifying a unique molecular signature that could be used to mark, record, and manipulate these cells. Microscopy imaging of brain tissue from mice in which axo-axonic cells had been identified revealed that they are present in many more brain areas than previously thought, including nearly all regions of the broadly defined cerebral cortex and even the hypothalamus, which controls many innate behaviors. Axo-axonic cells were also 'wired up' differently, depending on where they were located; for example, those in brain areas associated with memory and emotions had wider-ranging input connections than other areas. The finding of Raudales et al. provide, for the first time, a method to directly track and manipulate axo-axonic cells in the brain. Since dysfunction in axo-axonic cells is also associated with neurological disorders like epilepsy and schizophrenia, gaining an insight into their distribution and connectivity could help to develop better treatments for these conditions.


Subject(s)
GABAergic Neurons , Interneurons , Animals , Interneurons/physiology , Interneurons/metabolism , GABAergic Neurons/physiology , GABAergic Neurons/metabolism , Mice , Brain/physiology , Brain/cytology , Synapses/physiology , Synapses/metabolism , Axons/physiology , Axons/metabolism , Male
13.
Nat Commun ; 15(1): 6068, 2024 Jul 18.
Article in English | MEDLINE | ID: mdl-39025931

ABSTRACT

Neurexins are key adhesion proteins that coordinate extracellular and intracellular synaptic components. Nonetheless, the low abundance of these multidomain proteins has complicated any localization and structure-function studies. Here we combine an ALFA tag (AT)/nanobody (NbALFA) tool with classic genetics, cell biology and electrophysiology to examine the distribution and function of the Drosophila Nrx-1 in vivo. We generate full-length and ΔPDZ ALFA-tagged Nrx-1 variants and find that the PDZ binding motif is key to Nrx-1 surface expression. A PDZ binding motif provided in trans, via genetically encoded cytosolic NbALFA-PDZ chimera, fully restores the synaptic localization and function of NrxΔPDZ-AT. Using cytosolic NbALFA-mScarlet intrabody, we achieve compartment-specific detection of endogenous Nrx-1, track live Nrx-1 transport along the motor neuron axons, and demonstrate that Nrx-1 co-migrates with Rab2-positive vesicles. Our findings illustrate the versatility of the ALFA system and pave the way towards dissecting functional domains of complex proteins in vivo.


Subject(s)
Drosophila Proteins , Single-Domain Antibodies , Animals , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Single-Domain Antibodies/metabolism , Drosophila melanogaster/metabolism , Motor Neurons/metabolism , PDZ Domains , Axons/metabolism , Neural Cell Adhesion Molecules/metabolism , Neural Cell Adhesion Molecules/genetics , Protein Transport , Cell Adhesion Molecules, Neuronal
14.
Sci Rep ; 14(1): 16643, 2024 Jul 18.
Article in English | MEDLINE | ID: mdl-39025960

ABSTRACT

Circuit implementations of neuronal networks so far have been focusing on synaptic weight changes as network growth principles. Besides these weight changes, however, it is also useful to incorporate additional network growth principles such as guided axon growth and pruning. These allow for dynamical signal delays and a higher degree of self-organization, and can thus lead to novel circuit design principles. In this work we develop an ideal, bio-inspired electrical circuit mimicking growth and pruning controlled by guidance cues. The circuit is based on memristively coupled neuronal oscillators. As coupling element, we use memsensors consisting of a general sensor, two gradient sensors, and two memristors. The oscillators and memsensors are arranged in a grid structure, where oscillators and memsensors realize nodes and edges, respectively. This allows for arbitrary 2D growth scenarios with axon growth controlled by guidance cues. Simulation results show that the circuit successfully mimics a biological example in which two neurons initially grow towards two target neurons, where undesired connections are pruned later on.


Subject(s)
Axons , Models, Neurological , Nerve Net , Axons/physiology , Nerve Net/physiology , Neurons/physiology , Computer Simulation , Animals , Humans
15.
Mol Biol Cell ; 35(8): ar109, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38985523

ABSTRACT

The Drosophila RNA-binding protein (RBP) Nab2 acts in neurons to regulate neurodevelopment and is orthologous to the human intellectual disability-linked RBP, ZC3H14. Nab2 governs axon projection in mushroom body neurons and limits dendritic arborization of class IV sensory neurons in part by regulating splicing events in ∼150 mRNAs. Analysis of the Sex-lethal (Sxl) mRNA revealed that Nab2 promotes an exon-skipping event and regulates m6A methylation on Sxl pre-mRNA by the Mettl3 methyltransferase. Mettl3 heterozygosity broadly rescues Nab2null phenotypes implying that Nab2 acts through similar mechanisms on other RNAs, including unidentified targets involved in neurodevelopment. Here, we show that Nab2 and Mettl3 regulate the removal of a 5'UTR (untranslated region) intron in the trio pre-mRNA. Trio utilizes two GEF domains to balance Rac and RhoGTPase activity. Intriguingly, an isoform of Trio containing only the RhoGEF domain, GEF2, is depleted in Nab2null nervous tissue. Expression of Trio-GEF2 rescues projection defects in Nab2null axons and dendrites, while the GEF1 Rac1-regulatory domain exacerbates these defects, suggesting Nab2-mediated regulation Trio-GEF activities. Collectively, these data indicate that Nab2-regulated processing of trio is critical for balancing Trio-GEF1 and -GEF2 activity and show that Nab2, Mettl3, and Trio function in a common pathway that shapes axon and dendrite morphology.


Subject(s)
Axons , Dendrites , Drosophila Proteins , Drosophila melanogaster , Guanine Nucleotide Exchange Factors , RNA-Binding Proteins , Animals , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Axons/metabolism , Dendrites/metabolism , Drosophila melanogaster/metabolism , Guanine Nucleotide Exchange Factors/metabolism , Guanine Nucleotide Exchange Factors/genetics , Methyltransferases/metabolism , Methyltransferases/genetics , RNA Splicing , RNA, Messenger/metabolism , RNA, Messenger/genetics , RNA Precursors/metabolism , RNA Precursors/genetics
16.
Sci Adv ; 10(27): eado9120, 2024 Jul 05.
Article in English | MEDLINE | ID: mdl-38959311

ABSTRACT

A bioinspired hydrogel composed of hyaluronic acid-graft-dopamine (HADA) and a designer peptide HGF-(RADA)4-DGDRGDS (HRR) was presented to enhance tissue integration following spinal cord injury (SCI). The HADA/HRR hydrogel manipulated the infiltration of PDGFRß+ cells in a parallel pattern, transforming dense scars into an aligned fibrous substrate that guided axonal regrowth. Further incorporation of NT3 and curcumin promoted axonal regrowth and survival of interneurons at lesion borders, which served as relays for establishing heterogeneous axon connections in a target-specific manner. Notable improvements in motor, sensory, and bladder functions resulted in rats with complete spinal cord transection. The HADA/HRR + NT3/Cur hydrogel promoted V2a neuron accumulation in ventral spinal cord, facilitating the recovery of locomotor function. Meanwhile, the establishment of heterogeneous neural connections across the hemisected lesion of canines was documented in a target-specific manner via neuronal relays, significantly improving motor functions. Therefore, biomaterials can inspire beneficial biological activities for SCI repair.


Subject(s)
Extracellular Matrix , Hydrogels , Spinal Cord Injuries , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/pathology , Animals , Hydrogels/chemistry , Rats , Extracellular Matrix/metabolism , Neurons/metabolism , Neurons/drug effects , Dogs , Axons/metabolism , Axons/drug effects , Nerve Regeneration/drug effects , Hyaluronic Acid/chemistry , Hyaluronic Acid/metabolism , Recovery of Function/drug effects , Dopamine/metabolism , Female , Disease Models, Animal , Rats, Sprague-Dawley , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Spinal Cord/metabolism
17.
J Nanobiotechnology ; 22(1): 399, 2024 Jul 05.
Article in English | MEDLINE | ID: mdl-38970101

ABSTRACT

Spinal cord injury (SCI) represents a profound central nervous system affliction, resulting in irreversibly compromised daily activities and disabilities. SCI involves excessive inflammatory responses, which are characterized by the existence of high levels of proinflammatory M1 macrophages, and neuronal mitochondrial energy deficit, exacerbating secondary damage and impeding axon regeneration. This study delves into the mechanistic intricacies of SCI, offering insights from the perspectives of neuroimmune regulation and mitochondrial function, leading to a pro-fibrotic macrophage phenotype and energy-supplying deficit. To address these challenges, we developed a smart scaffold incorporating enzyme mimicry nanoparticle-ceriumoxide (COPs) into nanofibers (NS@COP), which aims to pioneer a targeted neuroimmune repair strategy, rescuing CGRP receptor on macrophage and concurrently remodeling mitochondrial function. Our findings indicate that the integrated COPs restore the responsiveness of pro-inflammatory macrophages to calcitonin gene-related peptide (CGRP) signal by up-regulating receptor activity modifying protein 1 (RAMP1), a vital component of the CGRP receptor. This promotes macrophage fate commitment to an anti-inflammatory pro-resolution M2 phenotype, then alleviating glial scar formation. In addition, NS@COP implantation also protected neuronal mitochondrial function. Collectively, our results suggest that the strategy of integrating nanozyme COP nanoparticles into a nanofiber scaffold provides a promising therapeutic candidate for spinal cord trauma via rational regulation of neuroimmune communication and mitochondrial function.


Subject(s)
Axons , Macrophages , Nanofibers , Nerve Regeneration , Spinal Cord Injuries , Animals , Axons/metabolism , Nanofibers/chemistry , Nerve Regeneration/drug effects , Mice , Macrophages/drug effects , Macrophages/metabolism , Mitochondria/metabolism , Mitochondria/drug effects , Rats , Tissue Scaffolds/chemistry , Nanoparticles/chemistry , Rats, Sprague-Dawley , Calcitonin Gene-Related Peptide/metabolism , Female , Mice, Inbred C57BL
18.
Sci Rep ; 14(1): 16096, 2024 Jul 12.
Article in English | MEDLINE | ID: mdl-38997331

ABSTRACT

Peripheral nerve injury is a prevalent clinical problem that often leads to lifelong disability and reduced quality of life. Although peripheral nerves can regenerate, recovery after severe injury is slow and incomplete. The current gold standard treatment, autologous nerve transplantation, has limitations including donor site morbidity and poor functional outcomes, highlighting the need for improved repair strategies. We developed a reproducible in vitro hollow channel collagen gel construct to investigate peripheral nerve regeneration (PNR) by exploring the influence of key extracellular matrix (ECM) proteins on axonal growth and regeneration. Channels were coated with ECM proteins: collagen IV, laminin, or fibronectin and seeded with dorsal root ganglia (DRG) collected from E16 rat embryos to compare the ability of the ECM proteins to enhance axonal growth. Robust axonal extension and Schwann cell (SC) infiltration were observed in fibronectin-coated channels, suggesting its superiority over other ECM proteins. Differential effects of ECM proteins on axons and SCs indicated direct growth stimulation beyond SC-mediated guidance. In vitro laceration injury modeling further confirmed fibronectin's superior pro-regenerative effects, showcasing its potential in enhancing axonal regrowth post-injury. Advancing in vitro modeling that closely replicates native microenvironments will accelerate progress in overcoming the limitations of current nerve repair approaches.


Subject(s)
Extracellular Matrix Proteins , Ganglia, Spinal , Nerve Regeneration , Peripheral Nerve Injuries , Animals , Nerve Regeneration/physiology , Rats , Peripheral Nerve Injuries/therapy , Peripheral Nerve Injuries/metabolism , Ganglia, Spinal/metabolism , Extracellular Matrix Proteins/metabolism , Axons/physiology , Axons/metabolism , Collagen/metabolism , Schwann Cells/metabolism , Schwann Cells/physiology , Fibronectins/metabolism , Rats, Sprague-Dawley , Tissue Scaffolds/chemistry , Peripheral Nerves/physiology , Laminin/metabolism
19.
Int J Mol Sci ; 25(13)2024 Jun 23.
Article in English | MEDLINE | ID: mdl-39000003

ABSTRACT

Peripheral nerve injuries (PNIs) represent a significant clinical challenge, particularly in elderly populations where axonal remyelination and regeneration are impaired. Developing therapies to enhance these processes is crucial for improving PNI repair outcomes. Glutamate carboxypeptidase II (GCPII) is a neuropeptidase that plays a pivotal role in modulating glutamate signaling through its enzymatic cleavage of the abundant neuropeptide N-acetyl aspartyl glutamate (NAAG) to liberate glutamate. Within the PNS, GCPII is expressed in Schwann cells and activated macrophages, and its expression is amplified with aging. In this study, we explored the therapeutic potential of inhibiting GCPII activity following PNI. We report significant GCPII protein and activity upregulation following PNI, which was normalized by the potent and selective GCPII inhibitor 2-(phosphonomethyl)-pentanedioic acid (2-PMPA). In vitro, 2-PMPA robustly enhanced myelination in dorsal root ganglion (DRG) explants. In vivo, using a sciatic nerve crush injury model in aged mice, 2-PMPA accelerated remyelination, as evidenced by increased myelin sheath thickness and higher numbers of remyelinated axons. These findings suggest that GCPII inhibition may be a promising therapeutic strategy to enhance remyelination and potentially improve functional recovery after PNI, which is especially relevant in elderly PNI patients where this process is compromised.


Subject(s)
Glutamate Carboxypeptidase II , Peripheral Nerve Injuries , Remyelination , Animals , Mice , Peripheral Nerve Injuries/drug therapy , Peripheral Nerve Injuries/metabolism , Remyelination/drug effects , Glutamate Carboxypeptidase II/antagonists & inhibitors , Glutamate Carboxypeptidase II/metabolism , Myelin Sheath/metabolism , Myelin Sheath/drug effects , Aging/drug effects , Ganglia, Spinal/drug effects , Ganglia, Spinal/metabolism , Mice, Inbred C57BL , Nerve Regeneration/drug effects , Sciatic Nerve/injuries , Sciatic Nerve/drug effects , Male , Axons/drug effects , Axons/metabolism
20.
Int J Mol Sci ; 25(13)2024 Jul 03.
Article in English | MEDLINE | ID: mdl-39000434

ABSTRACT

GRT-X, which targets both the mitochondrial translocator protein (TSPO) and the Kv7.2/3 (KCNQ2/3) potassium channels, has been shown to efficiently promote recovery from cervical spine injury. In the present work, we investigate the role of GRT-X and its two targets in the axonal growth of dorsal root ganglion (DRG) neurons. Neurite outgrowth was quantified in DRG explant cultures prepared from wild-type C57BL6/J and TSPO-KO mice. TSPO was pharmacologically targeted with the agonist XBD173 and the Kv7 channels with the activator ICA-27243 and the inhibitor XE991. GRT-X efficiently stimulated DRG axonal growth at 4 and 8 days after its single administration. XBD173 also promoted axonal elongation, but only after 8 days and its repeated administration. In contrast, both ICA27243 and XE991 tended to decrease axonal elongation. In dissociated DRG neuron/Schwann cell co-cultures, GRT-X upregulated the expression of genes associated with axonal growth and myelination. In the TSPO-KO DRG cultures, the stimulatory effect of GRT-X on axonal growth was completely lost. However, GRT-X and XBD173 activated neuronal and Schwann cell gene expression after TSPO knockout, indicating the presence of additional targets warranting further investigation. These findings uncover a key role of the dual mode of action of GRT-X in the axonal elongation of DRG neurons.


Subject(s)
Axons , Ganglia, Spinal , Receptors, GABA , Animals , Ganglia, Spinal/metabolism , Ganglia, Spinal/cytology , Mice , Axons/metabolism , Receptors, GABA/metabolism , Receptors, GABA/genetics , KCNQ2 Potassium Channel/metabolism , KCNQ2 Potassium Channel/genetics , Mice, Knockout , Mice, Inbred C57BL , Cells, Cultured , Schwann Cells/metabolism , Schwann Cells/drug effects , Schwann Cells/cytology , Coculture Techniques , Neurons/metabolism , Neurons/drug effects
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