Related Experiment Video
Updated: May 24, 2026

Assessment of Respiratory Function in Conscious Mice by Double-chamber Plethysmography
Published on: July 10, 2018
A novel prostacyclin agonist protects against airway hyperresponsiveness and remodeling in mice
Cristiane Yamabayashi1, Toshiyuki Koya, Hiroshi Kagamu
1Division of Respiratory Medicine, Department of Homeostatic Regulation and Development, Niigata University Graduate School of Medical and Dental Sciences, Japan.
Abstract:
Airway remodeling in bronchial asthma results from chronic, persistent airway inflammation. The effects of the reversal of airway remodeling by drug interventions remain to be elucidated. We investigated the effects of ONO-1301, a novel prostacyclin agonist with thromboxane inhibitory activity, on the prevention and reversibility of airway remodeling in an experimental chronic asthma model. Mice sensitized and challenged to ovalbumin (OVA) three times a week for 5 consecutive weeks were administered ONO-1301 or vehicle twice a day from the fourth week of OVA challenges. Twenty-four hours after the final OVA challenge, airway hyperresponsiveness (AHR) was assessed, and bronchoalveolar lavage was performed. Lung specimens were excised for staining to detect goblet-cell metaplasia, airway smooth muscle, and submucosal fibrosis. Mice administered ONO-1301 showed limited increases in AHR compared with mice administered the vehicle. The histological findings of airway remodeling were improved in ONO-1301-treated mice compared with vehicle-treated mice. Presumably, these therapeutic effects of ONO-1301 are attributable to the up-regulation of production of hepatocyte growth factor (HGF) in lung tissue, because the neutralization of HGF by antibodies prevented the effects of ONO-1301 on AHR and airway remodeling. Mice administered ONO-1301 showed similar levels of AHR and airway remodeling as mice administered montelukast, a cysteinyl-leukotriene-1 receptor antagonist, and lower levels were observed in mice administered dexamethasone. These data suggest that ONO-1301 exerts the effect of reversing airway remodeling, at least in part through an elevation of HGF in the lungs, and may be effective as an anti-remodeling drug in the treatment of asthma.
Insights
Novel drug ONO-1301 limited airway hyperresponsiveness and reversed airway remodeling in an experimental asthma model. These effects are linked to increased hepatocyte growth factor (HGF) in the lungs.
Area of Science:
- Pulmonology
- Pharmacology
- Immunology
Background:
- Chronic airway inflammation drives airway remodeling in bronchial asthma.
- The potential for drug interventions to reverse airway remodeling requires further investigation.
Purpose of the Study:
- To evaluate ONO-1301, a prostacyclin agonist with thromboxane inhibitory activity, for preventing and reversing airway remodeling.
- To explore the underlying mechanisms of ONO-1301's effects in a chronic experimental asthma model.
Main Methods:
- Ovalbumin (OVA)-sensitized and challenged mice received ONO-1301 or vehicle.
- Airway hyperresponsiveness (AHR), bronchoalveolar lavage, and lung histology were assessed.
- Hepatocyte growth factor (HGF) neutralization studies were conducted.
Main Results:
- ONO-1301 treatment significantly limited AHR and improved histological features of airway remodeling compared to vehicle.
- Therapeutic effects of ONO-1301 were associated with increased HGF production in lung tissue.
- Neutralizing HGF abolished ONO-1301's beneficial effects on AHR and airway remodeling.
Conclusions:
- ONO-1301 demonstrates potential as an anti-remodeling drug for asthma treatment.
- The drug's efficacy appears to be mediated, in part, by elevated lung HGF levels.
- ONO-1301 showed comparable effects to montelukast and was less potent than dexamethasone.
Related Concept Videos
Treatment for Pulmonary Arterial Hypertension: Prostacyclin Receptor Agonists
These agonists bind to the IPR receptor situated on the plasma membrane of the pulmonary artery smooth muscle cells. This binding triggers a cascade of reactions known as the GS-AC-cAMP-PKA pathway. This pathway results in the relaxation of smooth muscle...
Antiasthma Drugs: Muscarinic Receptor Antagonists
Antimuscarinic agents compete with ACh for the same binding site on the muscarinic receptors. By binding to these receptors, they inhibit the downstream effects of ACh and block the parasympathetic...
Antiasthma Drugs: Leukotriene Modifiers
Leukotriene modifiers work through two distinct mechanisms:
Antiasthma Drugs: Mast Cell Stabilizers and Anti-IgE Drugs
Mast cell stabilizers, such as cromolyn (also known as sodium cromoglycate) and nedocromil (Tilade), are effective drugs in asthma management. These stabilizers hinder histamine release by skillfully obstructing the activation of mast cells and other cellular entities. Notably, they navigate this task without...
Antiasthma Drugs: β2-Adrenoceptor Agonists
One class of bronchodilators includes β2-adrenoceptor agonists. These agents target the β2-adrenoceptors located on bronchial smooth muscle cells. By stimulating these receptors, β2-agonists induce relaxation in these...
Antiasthma Drugs: Methylxanthines
Theophylline is thought to inhibit phosphodiesterase enzymes, increasing intracellular levels of cyclic adenosine monophosphate (cAMP) and cyclic guanosine monophosphate (cGMP). This rise in cAMP and cGMP concentrations stimulates cardiac function,...

