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Orthopaedic Proceedings
Vol. 106-B, Issue SUPP_2 | Pages 20 - 20
2 Jan 2024
Novais E Brown E Ottone O Tran V Lepore A Risbud M
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Despite the clinical relevance of back pain and intervertebral disc herniation, the lack of reliable models has strained their molecular understanding. We characterized the lumbar spinal phenotype of C57BL/6 and SM/J mice during aging. Interestingly, old SM/J lumbar discs evidenced accelerated degeneration, associated with high rates of disc herniation. SM/J AF's and degenerative human's AF transcriptomic profiles showed altered immune cell, inflammation, and p53 pathways. Old SM/J mice presented increased neuronal markers in herniated discs, thicker subchondral bone, and higher sensitization to pain. Dorsal root ganglia transcriptomic studies and spinal cord analysis exhibited increased pain and neuroinflammatory markers associated with altered extracellular matrix regulation. Immune system single-cell and tissue level analysis showed distinctive T-cell and B-cell modulation and negative correlation between mechanical allodynia and INF-α, IL-1β, IL2, and IL4, respectively. This study underscores the multisystemic network behind back pain and highlights the role of genetic background and the immune system in disc herniation disease.

Acknowledgments: This study is supported by grants from the National Institute of Arthritis and Musculoskeletal and Skin Diseases (NIAMS) R01AR055655, R01AR064733, R01AR074813 to MVR.


Orthopaedic Proceedings
Vol. 100-B, Issue SUPP_16 | Pages 118 - 118
1 Nov 2018
Snuggs J Cole A Chiverton N Conner M Bunning R Risbud M Le Maitre C
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The IVD is a highly hydrated, hyperosmolar tissue that allows the correct biomechanical function of the spine. When degenerated, water and ions are lost from the disc, especially within the central nucleus pulposus (NP), producing a hypoosmotic environment in which the resident cells can no longer function correctly, exacerbating the degenerative cascade. One potential way that IVD cells may adapt to their environment is through the expression and regulation of aquaporin (AQP) channels that control the movement of water in and out of cells. During human IVD degeneration AQP1 and 5 expression is decreased, highlighting AQPs may be of importance for the correct function of NP cells. The regulation of AQPs in NP cells by healthy and degenerate conditions, and the potential underlying molecular mechanisms, were investigated in both human and rat IVD cells. The gene and protein expression of AQP1 and AQP5 was upregulated by hyperosmotic conditions (425mOsm/kg H2O) in rat and human NP cells. Lentiviral knockdown of tonicity enhancer binding protein (TonEBP), a transcription factor responsible for maintaining the function of NP cells, resulted in the loss of AQP1 and 5 gene expression under hyperosmotic conditions. The maintenance of the IVD environment and adaptation of cells is vital for the function of the IVD. The regulation of AQPs by physiological conditions and TonEBP suggests a role for these water channels related to the adaptation of disc cells to their environment, which is dysregulated during degeneration.


Orthopaedic Proceedings
Vol. 100-B, Issue SUPP_16 | Pages 54 - 54
1 Nov 2018
Risbud M
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A defining characteristic of the Nucleus Pulposus (NP) and the inner AF is the very limited vascular supply and low pH that imposes metabolic constraints on the disc cells. Interference with the normal physiology of the NP niche, by activities linked to changes in oxygen diffusion across the endplate leads to dysregulated niche function. Hypoxia Inducible Factor-1 (HIF-1) and HIF-2 are robustly and constitutively expressed by cells of the NP. Our recent work has shown that expression of HIF-1 is indispensable for NP cell survival in vivo and suggests an important role of HIF-1 in NP cell metabolic program. This talk will discuss central role of HIF-1 as metabolic and pH homeostatic regulator of NP cells and possible implication for a therapeutic strategy to treat disc degeneration