Cyclic nitroxide radicals attenuate inflammation and Hyper-responsiveness in a mouse model of allergic asthma

Miri Assayag1, Sara Goldstein2, Amram Samuni3

  • 1Institute of Pulmonary Medicine, Hadassah-Hebrew University Medical Center, Jerusalem 91120, Israel.

Insights

Stable nitroxide radicals, 3-carbamoyl-proxyl (3-CP) and TPL, show therapeutic potential for asthma. 3-CP effectively reduced airway inflammation and hyper-responsiveness in a mouse model, outperforming dexamethasone.

Area of Science:

  • Biochemistry and Pharmacology
  • Immunology and Allergy
  • Respiratory Medicine

Background:

  • Stable cyclic nitroxide radicals possess diverse biological activities, including anti-inflammatory effects.
  • Their therapeutic potential in asthma and other airway inflammatory disorders remains largely unexplored.
  • Reactive oxygen and nitrogen species play a crucial role in asthma pathogenesis.

Purpose of the Study:

  • To investigate the efficacy of two stable nitroxides, 4-hydroxy-2,2,6,6-tetramethyl-piperidine-N-oxyl (TPL) and 3-carbamoyl-proxyl (3-CP), in a mouse model of allergic asthma.
  • To determine the optimal administration route and timing for 3-CP in treating asthma.
  • To compare the effectiveness of 3-CP with dexamethasone, a standard corticosteroid treatment.

Main Methods:

  • Ovalbumin (OVA)-induced allergic asthma model in mice.
  • Administration of TPL and 3-CP via oral gavage, intraperitoneal (IP) injection, and intranasal instillation.
  • Assessment of inflammatory cell recruitment, airway hyper-responsiveness (AHR), cytokine expression, and protein nitration in lung tissue.
  • Comparison of 3-CP efficacy with dexamethasone.

Main Results:

  • Both 3-CP and TPL were non-toxic at tested doses.
  • 3-CP demonstrated superior efficacy over TPL in reducing airway inflammation and AHR.
  • Oral administration of 3-CP throughout the experiment was the most effective delivery method, surpassing dexamethasone.
  • 3-CP administered via IP injection showed comparable or superior effects to dexamethasone on AHR and protein nitration.

Conclusions:

  • Nitroxides, particularly 3-CP, exhibit significant therapeutic potential for asthma treatment.
  • 3-CP effectively mitigates key inflammatory markers and airway hyper-responsiveness in an asthma model.
  • The findings highlight the critical role of reactive oxygen and nitrogen species in asthma and suggest nitroxides as a promising therapeutic strategy.

Related Concept Videos

Asthma: Pathogenesis and Management01:20

Asthma: Pathogenesis and Management

Asthma is a chronic pulmonary condition involving inflammation of the airways, hyper-reactivity, and reversible obstruction of the airways. This condition can significantly impact a person's quality of life, making breathing difficult and leading to distressing symptoms.
Asthma is classified as allergic and non-allergic. Allergens such as dust mites, pollen, and pet dander trigger allergic asthma, while factors like cold air, intense emotions, or exercise can induce non-allergic asthma.
1.7K
Antiasthma Drugs: Mast Cell Stabilizers and Anti-IgE Drugs01:25

Antiasthma Drugs: Mast Cell Stabilizers and Anti-IgE Drugs

Asthma is a chronic respiratory condition for which new therapeutic avenues, including anti-inflammatory drugs like mast cell stabilizers and anti-IgE treatments, continue to be developed.
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...
2.4K
Asthma-II: Pathophysiology and Classification01:26

Asthma-II: Pathophysiology and Classification

Asthma is a prevalent chronic respiratory condition marked by inflammation and hyperresponsiveness of the airways. Its pathophysiology involves complex interactions among inflammatory pathways, immune responses, and neural mechanisms.
Additionally, environmental and genetic factors play crucial roles in determining an individual's susceptibility to asthma and the severity of their condition.
Critical processes in asthma pathophysiology include:
4.9K
Antiasthma Drugs: Leukotriene Modifiers01:19

Antiasthma Drugs: Leukotriene Modifiers

Leukotriene modifiers, or cysteinyl leukotriene receptor antagonists, are medications used to manage chronic asthma. These agents target specific inflammatory mediators produced during arachidonic acid metabolism, an essential process in generating inflammation in the body.
Leukotriene modifiers work through two distinct mechanisms:
2.3K
Drugs Used in Lower Respiratory Disorders: Overview01:17

Drugs Used in Lower Respiratory Disorders: Overview

Lower respiratory tract disorders present challenges that often require skilled and nuanced approaches for effective management. Common ailments, such as asthma and chronic obstructive pulmonary disease (COPD), have prompted the development of intricate treatment strategies involving bronchodilators and anti-inflammatory drugs, each tailored to ease breathing and revitalize the lungs.
Bronchodilators, the first step of respiration enhancement, come in various forms, each with its own mechanism...
1.6K
Antiasthma Drugs: Inhaled Corticosteroids and Glucocorticoids01:25

Antiasthma Drugs: Inhaled Corticosteroids and Glucocorticoids

Inhaled corticosteroids (ICS) are anti-inflammatory drugs used primarily in treating persistent asthma and providing long-term maintenance. They target the bronchial mucosa, the lining of the airways, to control inflammation, a critical factor in asthma progression and exacerbation.
ICS work through a multifaceted mechanism of action. They suppress the inflammatory response caused by the proliferation of TH cells. They also reduce the transcription of the IL-2 gene, which is involved in the...
2.0K