PubMed Health⌕ Search

Biomedical subjects

Lynette Fernandes

Publications and source records attributed to Lynette Fernandes.

2 recordsLinked to original sources

A Rho-kinase inhibitor, Y-27632, reduces cholinergic contraction but not neurotransmitter release.

This study examined the effects of the selective Rho-kinase inhibitor Y-27632 [(+)-(R)-trans-4-(1-aminoethyl)-(4-pyridyl)cyclohexanecarboxamide dihydrochloride]) on cholinergic nerve-mediated contraction and neurotransmitter release in murine and guinea-pig isolated tracheal preparations. In tracheal preparations obtained from both species, Y-27632 shifted carbachol concentration-effect curves to the right and reduced the maximal contractile response. Repeated electrical field stimulation (EFS) evoked transient, consistent and reproducible contractions in murine and guinea-pig tracheal preparations. Y-27632 inhibited these cholinergic nerve-mediated contractions in a concentration-dependent manner. EFS (0.1-30 Hz) elicited frequency-dependent cholinergic nerve-mediated contractile responses. In murine tracheal preparations, Y-27632 (3 microM and 10 microM) shifted frequency-response curves to EFS to the right by 5.5 and 13.0 fold respectively and markedly reduced the maximal contractile response. In murine and guinea-pig tracheal preparations loaded with [(3)H]-choline, Y-27632 (10 microM) significantly increased the EFS-induced outflow of radioactivity from airway cholinergic nerves by 27% and 54% respectively. Thus, Y-27632 inhibited both carbachol-induced and cholinergic nerve-mediated contractile responses. Conversely, Y-27632 increased neurotransmitter release from airway cholinergic nerves. However, since antagonism of acetylcholine-induced contraction by Y-27632 overwhelmed the increased neurotransmitter release, the overall effect of this Rho-kinase inhibitor was to inhibit cholinergic nerve-mediated contraction.

Amides↗

Airway nerves: detection and visualisation.

The importance of understanding the roles of nerves in regulating lung function cannot be overestimated if we are to successfully address the therapeutic management of respiratory diseases such as asthma and chronic obstructive pulmonary disease. Critical to this understanding is a more complete appreciation of airway innervation patterns, densities and functions. Accordingly, there is increasing demand for cost-effective techniques that enable the detection and visualisation of airway nerves. Immunofluorescence approaches, including confocal microscopy, are increasingly popular methods in pursuit of this important information, although the selection of a technique should be guided primarily by the type and quality of the information required from the study. Importantly, quantification of tissue nerve density is now feasible, adding a new dimension to the assessment of the significance of innervation patterns.

Animals↗