Acid sensing ion channel 1 in lateral hypothalamus contributes to breathing control

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Abstract

Acid-sensing ion channels (ASICs) are present in neurons and may contribute to chemoreception. Among six subunits of ASICs, ASIC1 is mainly expressed in the central nervous system. Recently, multiple sites in the brain including the lateral hypothalamus (LH) have been found to be sensitive to extracellular acidification. Since LH contains orexin neurons and innervates the medulla respiratory center, we hypothesize that ASIC1 is expressed on the orexin neuron and contributes to acid-induced increase in respiratory drive. To test this hypothesis, we used double immunofluorescence to determine whether ASIC1 is expressed on orexin neurons in the LH, and assessed integrated phrenic nerve discharge (iPND) in intact rats in response to acidification of the LH. We found that ASIC1 was co-localized with orexinA in the LH. Microinjection of acidified artificial cerebrospinal fluid increased the amplitude of iPND by 70% (pH 7.4 v.s. pH 6.5:1.05±0.12 v.s. 1.70±0.10, n = 6, P<0.001) and increased the respiratory drive (peak amplitude of iPND/inspiratory time, PA/Ti) by 40% (1.10±0.23 v.s. 1.50±0.38, P<0.05). This stimulatory effect was abolished by blocking ASIC1 with a nonselective inhibitor (amiloride 10 mM), a selective inhibitor (PcTX1, 10 nM) or by damaging orexin neurons in the LH. Current results support our hypothesis that the orexin neuron in the LH can exert an excitation on respiration via ASIC1 during local acidosis. Since central acidification is involved in breathing dysfunction in a variety of pulmonary diseases, understanding its underlying mechanism may improve patient management. © 2012 Song et al.

Figures

  • Figure 1. Distribution of ASIC1-ir and ASIC2a-ir neurons in the hypothalamus. A: ASIC1-ir neurons in the dorsal hypothalamus area (DA) (a, b, c) and in the lateral hypothalamus (LH) (d, e, f). B: ASIC2a-ir neurons in the DA (a, b, c) and the LH (d, e, f). C: c1:1% BSA controls; c2: The peptides absorbed antibody control. D: Group data show the numbers of ASIC1- and ASIC2a-positive cells per visual field under microscope (6200) in the LH and DA. (*** P,0.001, n = 6). doi:10.1371/journal.pone.0039982.g001
  • Table 1. Effect of microinjection of ACSF with different pH and ASICs inhibitor into LH on RR, MAP and HR.
  • Figure 2. Co-expression of ASIC1 and OrexinA in the LH of adult SD rats. A representative confocal photomicrograph showing co-staining of orexinA and ASIC1 on neurons in the LH of an adult SD rat. A: OrexinA-ir neurons (green, FITC). B: ASIC1-ir neurons (red, cy3). C: Overlay of A and B. doi:10.1371/journal.pone.0039982.g002
  • Figure 4. Loss of Nissl bodies in the LH after orexin-SAP treatment. A: Nissl’s staining of coronal section in the blank-SAP-treated rat. B: Higher magnification of the square area in A. C and D are the same as A and B but from the orexin-SAP treated rat. There was a significant loss of Nissl bodies after the LH lesion caused by orexin-SAP-treatment. 3V: third ventricle, LH: lateral hypothalamus, F: Fornix. doi:10.1371/journal.pone.0039982.g004
  • Figure 5. Loss of orexinA-immunoreactive neurons in the LH after orexin-SAP treatment. A and B are low and high magnification photomicrographs of orexin-ir neurons in coronal sections of the brain in the blank-SAP-treated rat. C and D as A and B, but from the orexin-SAPtreated rat. Orexin neurons were significantly fewer after damage of the LH by orexin-SAP-treatment with a few residual ones indicated by black arrows. 3V: third ventricle, LH: lateral hypothalamus, F: Fornix. doi:10.1371/journal.pone.0039982.g005
  • Figure 6. Effect of the LH lesion on body weight, RR, MAP and HR. Two weeks after microinjection of orexin-SAP into the LH, A: there was a weight loss (A, ***p,0.001, n = 6, compared with blank-SAP treated group) with no change in respiratory rate (B, RR). However, mean arterial pressure (MAP, C) and heart rate (HR, D) decreased (**p,0.01 v.s. blank-SAP treated group, ## p,0.01 v.s. control, # p,0.05 v.s. control). doi:10.1371/journal.pone.0039982.g006
  • Table 2. Effect of microinjection of ACSF with different pH on breathing in rats with damaging of the LH.

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Song, N., Zhang, G., Geng, W., Liu, Z., Jin, W., Li, L., … Shen, L. (2012). Acid sensing ion channel 1 in lateral hypothalamus contributes to breathing control. PLoS ONE, 7(7). https://doi.org/10.1371/journal.pone.0039982

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