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Brain osmo-sodium sensitive channels and the onset of sodium appetite
C Y Porcari1, L K Debarba2, J L Amigone3
1Instituto de Investigación Médica Mercedes y Martín Ferreyra (INIMEC-CONICET-Universidad Nacional de Córdoba), Córdoba, Argentina.
Abstract:
The aim of the present study was to determine whether the TRPV1 channel is involved in the onset of sodium appetite. For this purpose, we used TRPV1-knockout mice to investigate sodium depletion-induced drinking at different times (2/24 h) after furosemide administration combined with a low sodium diet (FURO-LSD). In sodium depleted wild type and TRPV1 KO (SD-WT/SD-TPRV1-KO) mice, we also evaluated the participation of other sodium sensors, such as TPRV4, NaX and angiotensin AT1-receptors (by RT-PCR), as well as investigating the pattern of neural activation shown by Fos immunoreactivity, in different nuclei involved in hydromineral regulation. TPRV1 SD-KO mice revealed an increased sodium preference, ingesting a higher hypertonic cocktail in comparison with SD-WT mice. Our results also showed in SD-WT animals that SFO-Trpv4 expression increased 2 h after FURO-LSD, compared to other groups, thus supporting a role of SFO-Trpv4 channels during the hyponatremic state. However, the SD-TPRV1-KO animals did not show this early increase, and maybe as a consequence drank more hypertonic cocktail. Regarding the SFO-NaX channel expression, in both genotypes our findings revealed a reduction 24 h after FURO-LSD. In addition, there was an increase in the OVLT-NaX expression of SD-WT 24 h after FURO-LSD, suggesting the participation of OVLT-NaX channels in the appearance of sodium appetite, possibly as an anticipatory response in order to limit sodium intake and to induce thirst. Our work demonstrates changes in the expression of different osmo‑sodium-sensitive channels at specific nuclei, related to the body sodium status in order to stimulate an adequate drinking.
Insights
The transient receptor potential vanilloid 1 (TRPV1) channel is crucial for sodium appetite regulation. TRPV1 knockout mice show increased sodium preference, highlighting TRPV1
Area of Science:
- Neuroscience
- Physiology
- Molecular Biology
Background:
- Sodium appetite is a critical physiological response to maintain hydromineral balance.
- Transient Receptor Potential Vanilloid 1 (TRPV1) channels are implicated in various sensory processes, but their role in sodium appetite remains unclear.
Purpose of the Study:
- To investigate the involvement of the TRPV1 channel in the onset of sodium appetite.
- To explore the roles of other sodium-sensing mechanisms, including TRPV4, NaX, and angiotensin AT1 receptors, in sodium depletion.
Main Methods:
- Utilized TRPV1-knockout mice and wild-type littermates.
- Induced sodium depletion using furosemide administration combined with a low-sodium diet (FURO-LSD).
- Assessed drinking behavior, sodium preference, gene expression (RT-PCR) of sodium sensors, and neural activation (Fos immunoreactivity).
Main Results:
- TRPV1 knockout mice exhibited increased sodium preference and consumed more hypertonic solutions when sodium-depleted.
- Sodium depletion upregulated TRPV4 expression in the subfornical organ (SFO) of wild-type mice, but not in TRPV1 knockout mice.
- Expression of NaX channels changed in the SFO and OVLT in response to sodium depletion, suggesting their involvement in regulating sodium intake and thirst.
Conclusions:
- TRPV1 channels play a significant role in modulating sodium appetite.
- TRPV4 channels in the SFO are involved in the early response to hyponatremia.
- Changes in NaX channel expression in specific brain nuclei contribute to the regulation of sodium appetite and hydromineral balance.
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