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Peripheral Transient Receptor Potential Vanilloid Type 4 Hypersensitivity Contributes to Chronic Sickle Cell Disease Pain

Overview
Journal Pain
Specialties Neurology
Psychiatry
Date 2023 Mar 10
PMID 36897169
Authors
Affiliations
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Abstract

Debilitating pain affects the lives of patients with sickle cell disease (SCD). Current pain treatment for patients with SCD fail to completely resolve acute or chronic SCD pain. Previous research indicates that the cation channel transient receptor potential vanilloid type 4 (TRPV4) mediates peripheral hypersensitivity in various inflammatory and neuropathic pain conditions that may share similar pathophysiology with SCD, but this channel's role in chronic SCD pain remains unknown. Thus, the current experiments examined whether TRPV4 regulates hyperalgesia in transgenic mouse models of SCD. Acute blockade of TRPV4 alleviated evoked behavioral hypersensitivity to punctate, but not dynamic, mechanical stimuli in mice with SCD. TRPV4 blockade also reduced the mechanical sensitivity of small, but not large, dorsal root ganglia neurons from mice with SCD. Furthermore, keratinocytes from mice with SCD showed sensitized TRPV4-dependent calcium responses. These results shed new light on the role of TRPV4 in SCD chronic pain and are the first to suggest a role for epidermal keratinocytes in the heightened sensitivity observed in SCD.

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References
1.
Jones S, Duncan E, Thomas N, Walters J, Dick M, Height S . Windy weather and low humidity are associated with an increased number of hospital admissions for acute pain and sickle cell disease in an urban environment with a maritime temperate climate. Br J Haematol. 2005; 131(4):530-3. DOI: 10.1111/j.1365-2141.2005.05799.x. View

2.
Buijs T, McNaughton P . The Role of Cold-Sensitive Ion Channels in Peripheral Thermosensation. Front Cell Neurosci. 2020; 14:262. PMC: 7468449. DOI: 10.3389/fncel.2020.00262. View

3.
He Y, Wilkie D, Nazari J, Wang R, Messing R, DeSimone J . PKCδ-targeted intervention relieves chronic pain in a murine sickle cell disease model. J Clin Invest. 2016; 126(8):3053-7. PMC: 4966317. DOI: 10.1172/JCI86165. View

4.
Zappia K, Garrison S, Hillery C, Stucky C . Cold hypersensitivity increases with age in mice with sickle cell disease. Pain. 2014; 155(12):2476-2485. PMC: 4250326. DOI: 10.1016/j.pain.2014.05.030. View

5.
Kruger L, Perl E, Sedivec M . Fine structure of myelinated mechanical nociceptor endings in cat hairy skin. J Comp Neurol. 1981; 198(1):137-54. DOI: 10.1002/cne.901980112. View