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Lower back pain (LBP) is the leading cause of disability worldwide1. Intervertebral disc (IVD) degeneration (IVDD) is one of the main causes of LBP2,3,4. IVDD is a complex and incompletely understood multifactorial process that can be accelerated by different environmental and biological factors5,6,7. The pathological changes of IVDD are characterized by a disorganized IVD structure, reduced water content in the nucleus pulposus, and degradation of the surrounding extracellular matrix8,9. IVDD animal models are important for IVD-related studies9,10,11.
So far, various IVDD animal models have been established to mimic the progression of IVDD in humans. Large animals, such as bovine, sheep, goats, canine, and primate models, share some similarities with humans in terms of disc size and the cellular composition of the degenerated disc (the absence of notochordal cells, such as sheep and goats)12. However, these large models are not commonly used because of the high cost, long experimental period, poor reproducibility, and more complicated skills required to establish degeneration in these models13. By contrast, small animal models, such as rats, mice, and rabbits, are widely used in IVD-related studies because they are easier to operate on, cost-effective, and reliable10. The disc size in a rabbit is bigger than a mouse or rat, and thus, there is more disc space for manipulation in rabbits. In addition, rabbits have a high degree of homology to human IVDs, because of the similar spinal anatomical structure (facet joints, paravertebral muscles, and ligaments)14,15. Hence, rabbits are more suitable than other small animals for the establishment of IVDD models.
IVDD animal models include mechanical models (compression, instability), structural models (injury, chemical), and animal models of spontaneous degeneration16. Rabbit IVDD models are usually created by inducing injury using two different surgical approaches - the transabdominal approach17and the retroperitoneal approach18. The retroperitoneal approach of needle puncturing the target IVDs is widely used, but this approach can cause many complications, such as the avulsion of segmental arteries and nerve root injury18,19. Here, we report a rabbit IVDD model induced by needle puncturing IVDs via a transabdominal approach, aiming to provide an easy and reproducible method for establishing IVDD in rabbits.