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Published on: July 29, 2014
NAG-1/GDF-15 Transgenic Female Mouse Shows Delayed Peak Period of the Second Phase Nociception in Formalin-induced
Sheu-Ran Choi1,2, Jaehak Lee3, Ji-Young Moon4
1Department of Pharmacology, Catholic Kwandong University College of Medicine, Gangneung 25601, Korea.
Abstract:
Non-steroidal anti-inflammatory drug-activated gene-1 (NAG-1), also known as growth differentiation factor-15 (GDF-15), is associated with cancer, diabetes, and inflammation, while there is limited understanding of the role of NAG-1 in nociception. Here, we examined the nociceptive behaviors of NAG-1 transgenic (TG) mice and wild-type (WT) littermates. Mechanical sensitivity was evaluated by using the von Frey filament test, and thermal sensitivity was assessed by the hot-plate, Hargreaves, and acetone tests. c-Fos, glial fibrillary acidic protein (GFAP), and ionized calcium binding adaptor molecule-1 (Iba-1) immunoreactivity was examined in the spinal cord following observation of the formalin-induced nociceptive behaviors. There was no difference in mechanical or thermal sensitivity for NAG-1 TG and WT mice. Intraplantar formalin injection induced nociceptive behaviors in both male and female NAG-1 TG and WT mice. The peak period in the second phase was delayed in NAG-1 TG female mice compared with that of WT female mice, while there was no difference in the cumulative time of nociceptive behaviors between the two groups of mice. Formalin increased spinal c-Fos immunoreactivity in both TG and WT female mice. Neither GFAP nor Iba-1 immunoreactivity was increased in the spinal cord of TG and WT female mice. These findings indicate that NAG-1 TG mice have comparable baseline sensitivity to mechanical and thermal stimulation as WT mice and that NAG-1 in female mice may have an inhibitory effect on the second phase of inflammatory pain. Therefore, it could be a novel target to inhibit central nervous system response in pain.
Insights
Non-steroidal anti-inflammatory drug-activated gene-1 (NAG-1) did not alter pain sensitivity in mice. However, NAG-1 in female mice may inhibit inflammatory pain responses, suggesting a novel pain target.
Area of Science:
- Neuroscience
- Pain Research
- Molecular Biology
Background:
- Non-steroidal anti-inflammatory drug-activated gene-1 (NAG-1), also known as growth differentiation factor-15 (GDF-15), is implicated in cancer, diabetes, and inflammation.
- The role of NAG-1 in nociception (pain perception) is not well understood.
Purpose of the Study:
- To investigate the role of NAG-1 in nociceptive behaviors using NAG-1 transgenic (TG) mice.
- To assess the impact of NAG-1 on pain sensitivity and spinal cord responses.
Main Methods:
- Evaluated mechanical sensitivity using von Frey filaments and thermal sensitivity via hot-plate, Hargreaves, and acetone tests.
- Observed formalin-induced nociceptive behaviors and examined spinal cord c-Fos, GFAP, and Iba-1 immunoreactivity.
Main Results:
- NAG-1 TG and wild-type (WT) mice showed no significant differences in baseline mechanical or thermal sensitivity.
- The peak of formalin-induced inflammatory pain was delayed in NAG-1 TG female mice, but cumulative pain behavior duration was similar.
- Formalin increased spinal c-Fos immunoreactivity in both TG and WT female mice; GFAP and Iba-1 levels remained unchanged.
Conclusions:
- NAG-1 does not affect baseline pain sensitivity in mice.
- NAG-1 appears to exert an inhibitory effect on the second phase of inflammatory pain in female mice.
- NAG-1 may represent a novel therapeutic target for modulating central nervous system pain responses.

