Skin keratinocyte-derived SIRT1 and BDNF modulate mechanical allodynia in mouse models of diabetic neuropathy

Author:

O’Brien Jennifer12,Niehaus Peter12,Chang Koping13,Remark Juliana4,Barrett Joy4,Dasgupta Abhishikta1,Adenegan Morayo1,Salimian Mohammad15,Kevas Yanni5,Chandrasekaran Krish56,Kristian Tibor7,Chellappan Rajeshwari8,Rubin Samuel19,Kiemen Ashley1,Lu Catherine Pei-Ju4,Russell James W56,Ho Cheng-Ying12ORCID

Affiliation:

1. Department of Pathology, Johns Hopkins University School of Medicine , Baltimore, MD 21231 , USA

2. Department of Pathology, University of Maryland School of Medicine , Baltimore, MD 21201 , USA

3. Department of Pathology, National Taiwan University , Taipei, 100 , Taiwan

4. Hansjörg Wyss Department of Plastic Surgery, Department of Cell Biology, New York University School of Medicine , New York, NY 10016 , USA

5. Department of Neurology, University of Maryland School of Medicine , Baltimore, MD 21201 , USA

6. Baltimore Veterans Affairs Medical Center , Baltimore, MD 21201 , USA

7. Department of Anesthesiology, University of Maryland School of Medicine , Baltimore, MD 21021 , USA

8. Department of Pathology, University of Alabama Birmingham , Birmingham, AL 35233 , USA

9. Department of Chemistry, College of William and Mary , Williamsburg, VA 23187 , USA

Abstract

Abstract Diabetic neuropathy is a debilitating disorder characterized by spontaneous and mechanical allodynia. The role of skin mechanoreceptors in the development of mechanical allodynia is unclear. We discovered that mice with diabetic neuropathy had decreased sirtuin 1 (SIRT1) deacetylase activity in foot skin, leading to reduced expression of brain-derived neurotrophic factor (BDNF) and subsequent loss of innervation in Meissner corpuscles, a mechanoreceptor expressing the BDNF receptor TrkB. When SIRT1 was depleted from skin, the mechanical allodynia worsened in diabetic neuropathy mice, likely due to retrograde degeneration of the Meissner-corpuscle innervating Aβ axons and aberrant formation of Meissner corpuscles which may have increased the mechanosensitivity. The same phenomenon was also noted in skin-keratinocyte specific BDNF knockout mice. Furthermore, overexpression of SIRT1 in skin induced Meissner corpuscle reinnervation and regeneration, resulting in significant improvement of diabetic mechanical allodynia. Overall, the findings suggested that skin-derived SIRT1 and BDNF function in the same pathway in skin sensory apparatus regeneration and highlighted the potential of developing topical SIRT1-activating compounds as a novel treatment for diabetic mechanical allodynia.

Funder

National Institutes of Health

VA Merit review Award

Passano Foundation

Edward Mallinckrodt Jr. Foundation

Publisher

Oxford University Press (OUP)

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