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Updated: Jun 5, 2025

Intracellular Refolding Assay
Published on: January 24, 2012
Heat shock proteins in chronic pain: From molecular chaperones to pain modulators
Nivedita Verma1, Deepak Chouhan1, Allani Meghana1
1Neuroscience and Pain Research Laboratory, Department of Pharmaceutical Engineering & Technology, Indian Institute of Technology (Banaras Hindu University), Varanasi, Uttar Pradesh, India.
Abstract:
Chronic pain is the most prevalent and complex clinical disorder,affecting approximately 30% of people globally. Various intricate alterations in nociceptive pathways responsible for chronic pain are linked to long-term tissue damage or injury to the peripheral or central nervous systems. These include remolding in the phenotype of cells and fluctuations in the expression of proteins such as ion channels, neurotransmitters, and receptors. Heat shock proteins are important molecular chaperone proteins in cell responses to stress, including inflammation, neurodegeneration, and pain signaling. They play a key role in activating glial and endothelial cells and in the production of inflammatory mediators and excitatory amino acids in both peripheral and central nervous systems. In particular, they contribute to central sensitization and hyperactivation within the dorsal horn of the spinal cord. The expression of some HSPs plays a remarkable role in upregulating pain response by acting as scavengers of ROS, controlling inflammatory cytokines. Different HSPs act by different mechanisms and several important pathways have been implicated in targeting HSPs for the treatment of neuropathic pain including p38-mitogen-activated protein kinases (MAPKs), extracellular signal-regulated kinases (ERKs), brain-derived neurotrophic factors (BDNF). We summarize the role of HSPs in various preclinical and clinical studies and the crosstalk of HSPs with various nociceptors and other pain models. We also highlighted some artificial intelligence tools and machine learning-assisted drug discovery methods for rapid screening of HSPs in various diseases. Focusing on HSPs could lead to the development of new therapeutics that modulate pain responses and enhance our understanding of pain in various pathological conditions and neurological disorders.
Insights
Heat shock proteins (HSPs) are crucial in chronic pain signaling by influencing inflammation and nerve sensitization. Targeting HSPs offers a promising avenue for developing novel neuropathic pain therapeutics.
Area of Science:
- Neuroscience
- Molecular Biology
- Pain Research
Background:
- Chronic pain affects 30% globally, involving complex alterations in nervous system pathways.
- Heat shock proteins (HSPs) are key molecular chaperones involved in cellular stress responses, including inflammation and neurodegeneration.
- HSPs modulate pain signaling by activating cells and producing inflammatory mediators, contributing to central sensitization.
Purpose of the Study:
- To review the role of HSPs in preclinical and clinical pain studies.
- To explore the mechanisms and therapeutic potential of targeting HSPs for neuropathic pain.
- To highlight the application of AI and machine learning in HSP-based drug discovery.
Main Methods:
- Literature review of preclinical and clinical studies on HSPs and pain.
- Analysis of HSPs' involvement in nociceptive pathways and pain models.
- Exploration of AI and machine learning tools for HSP drug discovery.
Main Results:
- HSPs play a significant role in upregulating pain responses, acting as ROS scavengers and controlling inflammatory cytokines.
- Targeting pathways like p38-MAPKs, ERKs, and BDNF is implicated in HSP-mediated neuropathic pain treatment.
- HSPs interact with various nociceptors and pain pathways.
Conclusions:
- HSPs are critical mediators in chronic pain and neuropathic pain conditions.
- Targeting HSPs presents a viable strategy for developing new pain therapeutics.
- AI and machine learning can accelerate the discovery of HSP-based drugs for pain management.
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