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Published on: June 14, 2020
HMGB1 released from nociceptors mediates inflammation
Huan Yang1, Qiong Zeng2, Harold A Silverman2
1Laboratory of Biomedical Sciences, Institute of Bioelectronic Medicine, Feinstein Institutes for Medical Research, Northwell Health, Manhasset, NY 11030; HYang@northwell.edu schavan@northwell.edu kjtracey@northwell.edu.
Abstract:
Inflammation, the body's primary defensive response system to injury and infection, is triggered by molecular signatures of microbes and tissue injury. These molecules also stimulate specialized sensory neurons, termed nociceptors. Activation of nociceptors mediates inflammation through antidromic release of neuropeptides into infected or injured tissue, producing neurogenic inflammation. Because HMGB1 is an important inflammatory mediator that is synthesized by neurons, we reasoned nociceptor release of HMGB1 might be a component of the neuroinflammatory response. In support of this possibility, we show here that transgenic nociceptors expressing channelrhodopsin-2 (ChR2) directly release HMGB1 in response to light stimulation. Additionally, HMGB1 expression in neurons was silenced by crossing synapsin-Cre (Syn-Cre) mice with floxed HMGB1 mice (HMGB1f/f). When these mice undergo sciatic nerve injury to activate neurogenic inflammation, they are protected from the development of cutaneous inflammation and allodynia as compared to wild-type controls. Syn-Cre/HMGB1fl/fl mice subjected to experimental collagen antibody-induced arthritis, a disease model in which nociceptor-dependent inflammation plays a significant pathological role, are protected from the development of allodynia and joint inflammation. Thus, nociceptor HMGB1 is required to mediate pain and inflammation during sciatic nerve injury and collagen antibody-induced arthritis.
Insights
Nociceptor release of High Mobility Group Box 1 (HMGB1) contributes to neurogenic inflammation and pain. Silencing neuronal HMGB1 protected mice from inflammation and allodynia in injury and arthritis models.
Area of Science:
- Neuroscience
- Immunology
- Pain Research
Background:
- Inflammation is a key defense mechanism triggered by injury and infection.
- Specialized sensory neurons (nociceptors) detect these triggers and mediate inflammation via neurogenic inflammation.
- High Mobility Group Box 1 (HMGB1) is a known inflammatory mediator synthesized by neurons.
Purpose of the Study:
- To investigate the role of nociceptor-released HMGB1 in neurogenic inflammation and pain.
- To determine if HMGB1 released by nociceptors is a component of the neuroinflammatory response.
Main Methods:
- Utilized transgenic mice with light-activated nociceptors (expressing channelrhodopsin-2) to stimulate direct HMGB1 release.
- Generated mice with silenced neuronal HMGB1 expression (Syn-Cre/HMGB1fl/fl) for injury and disease models.
- Assessed inflammation and allodynia following sciatic nerve injury and collagen antibody-induced arthritis.
Main Results:
- Light stimulation of transgenic nociceptors induced direct HMGB1 release.
- Syn-Cre/HMGB1fl/fl mice showed protection from cutaneous inflammation and allodynia after sciatic nerve injury compared to controls.
- These mice were also protected from allodynia and joint inflammation in a collagen antibody-induced arthritis model.
Conclusions:
- Nociceptor-derived HMGB1 plays a critical role in mediating pain and inflammation.
- Targeting nociceptor HMGB1 could be a therapeutic strategy for inflammatory pain conditions.
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