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1.
Neuroscience Bulletin ; (6): 1789-1806, 2023.
Article in English | WPRIM | ID: wpr-1010642

ABSTRACT

Brachial plexus avulsion (BPA) is a combined injury involving the central and peripheral nervous systems. Patients with BPA often experience severe neuropathic pain (NP) in the affected limb. NP is insensitive to the existing treatments, which makes it a challenge to researchers and clinicians. Accumulated evidence shows that a BPA-induced pain state is often accompanied by sympathetic nervous dysfunction, which suggests that the excitation state of the sympathetic nervous system is correlated with the existence of NP. However, the mechanism of how somatosensory neural crosstalk with the sympathetic nerve at the peripheral level remains unclear. In this study, through using a novel BPA C7 root avulsion mouse model, we found that the expression of BDNF and its receptor TrκB in the DRGs of the BPA mice increased, and the markers of sympathetic nervous system activity including α1 and α2 adrenergic receptors (α1-AR and α2-AR) also increased after BPA. The phenomenon of superexcitation of the sympathetic nervous system, including hypothermia and edema of the affected extremity, was also observed in BPA mice by using CatWalk gait analysis, an infrared thermometer, and an edema evaluation. Genetic knockdown of BDNF in DRGs not only reversed the mechanical allodynia but also alleviated the hypothermia and edema of the affected extremity in BPA mice. Further, intraperitoneal injection of adrenergic receptor inhibitors decreased neuronal excitability in patch clamp recording and reversed the mechanical allodynia of BPA mice. In another branch experiment, we also found the elevated expression of BDNF, TrκB, TH, α1-AR, and α2-AR in DRG tissues from BPA patients compared with normal human DRGs through western blot and immunohistochemistry. Our results revealed that peripheral BDNF is a key molecule in the regulation of somatosensory-sympathetic coupling in BPA-induced NP. This study also opens a novel analgesic target (BDNF) in the treatment of this pain with fewer complications, which has great potential for clinical transformation.


Subject(s)
Humans , Mice , Animals , Hyperalgesia/metabolism , Brain-Derived Neurotrophic Factor/metabolism , Hypothermia/metabolism , Neuralgia , Brachial Plexus/injuries , Edema/metabolism
2.
Neuroscience Bulletin ; (6): 478-496, 2021.
Article in Chinese | WPRIM | ID: wpr-951997

ABSTRACT

Tweety-homolog 1 (Ttyh1) is expressed in neural tissue and has been implicated in the generation of several brain diseases. However, its functional significance in pain processing is not understood. By disrupting the gene encoding Ttyh1, we found a loss of Ttyh1 in nociceptors and their central terminals in Ttyh1-deficient mice, along with a reduction in nociceptor excitability and synaptic transmission at identified synapses between nociceptors and spinal neurons projecting to the periaqueductal grey (PAG) in the basal state. More importantly, the peripheral inflammation-evoked nociceptor hyperexcitability and spinal synaptic potentiation recorded in spinal-PAG projection neurons were compromised in Ttyh1-deficient mice. Analysis of the paired-pulse ratio and miniature excitatory postsynaptic currents indicated a role of presynaptic Ttyh1 from spinal nociceptor terminals in the regulation of neurotransmitter release. Interfering with Ttyh1 specifically in nociceptors produces a comparable pain relief. Thus, in this study we demonstrated that Ttyh1 is a critical determinant of acute nociception and pain sensitization caused by peripheral inflammation.

3.
Journal of Medical Postgraduates ; (12): 634-636, 2019.
Article in Chinese | WPRIM | ID: wpr-818294

ABSTRACT

In order to adapt to the rapid development of brain science and cultivate high-level innovative brain science research talents, combined with the practical teaching experience in the Department of Neurobiology of Air Force Military Medical University in recent years, the article constructs a new system for fundamentals and frontiers of brain science curriculum, which integrates advanced teaching concepts, diverse teaching forms and flexible teaching modes, expecting this new curriculum system will lay a solid foundation for the cultivation of talents in brain science.

4.
Neuroscience Bulletin ; (6): 13-21, 2018.
Article in English | WPRIM | ID: wpr-777084

ABSTRACT

Mounting evidence supports an important role of chemokines, produced by spinal cord astrocytes, in promoting central sensitization and chronic pain. In particular, CCL2 (C-C motif chemokine ligand 2) has been shown to enhance N-methyl-D-aspartate (NMDA)-induced currents in spinal outer lamina II (IIo) neurons. However, the exact molecular, synaptic, and cellular mechanisms by which CCL2 modulates central sensitization are still unclear. We found that spinal injection of the CCR2 antagonist RS504393 attenuated CCL2- and inflammation-induced hyperalgesia. Single-cell RT-PCR revealed CCR2 expression in excitatory vesicular glutamate transporter subtype 2-positive (VGLUT2) neurons. CCL2 increased NMDA-induced currents in CCR2/VGLUT2 neurons in lamina IIo; it also enhanced the synaptic NMDA currents evoked by dorsal root stimulation; and furthermore, it increased the total and synaptic NMDA currents in somatostatin-expressing excitatory neurons. Finally, intrathecal RS504393 reversed the long-term potentiation evoked in the spinal cord by C-fiber stimulation. Our findings suggest that CCL2 directly modulates synaptic plasticity in CCR2-expressing excitatory neurons in spinal lamina IIo, and this underlies the generation of central sensitization in pathological pain.


Subject(s)
Animals , Female , Male , Mice , Benzoxazines , Pharmacology , Therapeutic Uses , Chemokine CCL2 , Genetics , Metabolism , Pharmacology , Excitatory Amino Acid Agents , Pharmacology , Excitatory Amino Acid Agonists , Pharmacology , Freund's Adjuvant , Toxicity , Hyperalgesia , Metabolism , Long-Term Potentiation , Physiology , Luminescent Proteins , Genetics , Metabolism , Mice, Inbred C57BL , Mice, Transgenic , Myelitis , Drug Therapy , Metabolism , Neurons , Pain Management , Somatostatin , Genetics , Metabolism , Spinal Cord , Cell Biology , Spiro Compounds , Pharmacology , Therapeutic Uses , Vesicular Glutamate Transport Protein 2 , Genetics , Metabolism , Vesicular Inhibitory Amino Acid Transport Proteins , Genetics , Metabolism
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