Responsiveness of the isolated airway during simulated deep inspirations: effect of airway smooth muscle stiffness and strain.

J Appl Physiol (1985)

Physiology, School of Biomedical, Biomolecular, and Chemical Sciences, Univ. of Western Australia, 35 Stirling Hwy., Crawley, Perth, Western Australia, 6009, Australia.

Published: September 2007

In vivo, breathing movements, including tidal and deep inspirations (DIs), exert a number of beneficial effects on respiratory system responsiveness in healthy humans that are diminished or lost in asthma, possibly as a result of reduced distension (strain) of airway smooth muscle (ASM). We used bronchial segments from pigs to assess airway responsiveness under static conditions and during simulated tidal volume oscillations with and without DI and to determine the roles of airway stiffness and ASM strain on responsiveness. To simulate airway dilations during breathing, we cycled the luminal volume of liquid-filled segments. Volume oscillations (15 cycles/min) were set so that, in relaxed airways, they produced a transmural pressure increase of approximately 5-10 cmH(2)O for tidal maneuvers and approximately 5-30 cmH(2)O for DIs. ACh dose-response curves (10(-7)-3 x 10(-3) M) were constructed under static and dynamic conditions, and maximal response and sensitivity were determined. Airway stiffness was measured from tidal trough-to-peak pressure and volume cycles. ASM strain produced by DI was estimated from luminal volume, airway length, and inner wall area. DIs produced substantial ( approximately 40-50%) dilation, reflected by a decrease in maximal response (P < 0.001) and sensitivity (P < 0.05). However, the magnitude of bronchodilation decreased significantly in proportion to airway stiffening caused by contractile activation and an associated reduction in ASM strain. Tidal oscillations, in comparison, had little effect on responsiveness. We conclude that DI regulates airway responsiveness at the airway level, but this is limited by airway stiffness due to reduced ASM strain.

Download full-text PDF

Source
http://dx.doi.org/10.1152/japplphysiol.00314.2007DOI Listing

Publication Analysis

Top Keywords

asm strain
16
airway
12
airway stiffness
12
deep inspirations
8
airway smooth
8
smooth muscle
8
airway responsiveness
8
volume oscillations
8
luminal volume
8
maximal response
8

Similar Publications

Aspergillus-mediated allergic airway inflammation is triggered by dendritic cell recognition of a defined spore morphotype.

J Allergy Clin Immunol

November 2024

Lydia Becker Institute of Immunology and Inflammation, University of Manchester, Manchester, United Kingdom; Department of Biosciences, Medical Research Council Centre for Medical Mycology at the University of Exeter, Faculty of Health and Life Sciences, Exeter, United Kingdom. Electronic address:

Background: Exposure to fungi, especially Aspergillus fumigatus, can elicit potent allergic inflammation that triggers and worsens asthmatic disease. Dendritic cells (DCs) initiate allergic inflammatory responses to allergic stimuli. However, it is unclear if Af spores during isotropic growth (early spore swelling) can activate DCs to initiate allergic responses or if germination is required.

View Article and Find Full Text PDF

The origin of stereocontrol in ring opening polymerization (ROP) of racemic lactide (rac-LA) promoted by achiral aluminium-based catalysts has been explained through DFT calculations combined with a molecular descriptor (%V) and the activation strain model (ASM-NEDA) analysis. The proposed chain end control (CEC) model suggests that the ligand framework adopts a chiral configuration mimicking the enantiomorphic site control (ESC) while also incorporating control of the last inserted monomer unit. It is found that the ligand wrapping mode around the aluminium centre is dictated by the monomer configuration (R,R-LA and S,S-LA).

View Article and Find Full Text PDF

Impact of SARS-CoV-2 infection and vaccination on cesarean section outcomes: a retrospective analysis.

Ann Saudi Med

October 2024

From the Department of Obstetrics and Gynecology, T.C. Sağlık Bakanlığı Başakşehir Çam ve Sakura Şehir Hastanesi, Basaksehir, Istanbul, Turkey.

Background: Pregnant individuals have faced unique challenges during the COVID-19 pandemic, necessitating a closer examination of maternal and fetal health outcomes.

Objectives: Investigate the morbidity and mortality associated with SARS-CoV-2 infection among pregnant individuals, considering vaccination status and variant strains.

Design: Retrospective cohort.

View Article and Find Full Text PDF

The retro-Cope elimination reaction between dimethylhydroxylamine (DMHA) and various cyclic alkynes has been quantum chemically explored using DFT at ZORA-BP86/TZ2P. The purpose of this study is to understand the role of the following three unique activation modes on the overall reactivity, that is (i) additional cycloalkyne predistortion fused cycles, (ii) exocyclic heteroatom substitution on the cycloalkyne, and (iii) endocyclic heteroatom substitution on the cycloalkyne. Trends in reactivity are analyzed and explained by using the activation strain model (ASM) of chemical reactivity.

View Article and Find Full Text PDF
Article Synopsis
  • Equine rotavirus species A genotypes G3P[12] and G14P[12] are major causes of foal diarrhea, impacting the equine industry economically and showing potential for zoonotic transmission to humans, as seen in past outbreaks of severe gastroenteritis in children.
  • Traditional cell culture methods for isolating rotaviruses are ineffective for ERVA, but researchers successfully isolated both strains using engineered cell lines with reduced antiviral immunity, revealing genetic similarities and differences that affect their ability to invoke immune responses.
  • The study highlights limited cross-neutralization between G3P[12] and G14P[12], which explains increased diarrhea outbreaks in foals despite immunity from vaccines targeting G3P[12], paving
View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!