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Full-Text Articles in Pharmacology

Sustained Sensitizing Effects Of Tumor Necrosis Factor Alpha On Sensory Nerves In Lung And Airways, Ruei-Lung Lin, Qihai Gu, Mehdi Khosravi, Lu-Yuan Lee Dec 2017

Sustained Sensitizing Effects Of Tumor Necrosis Factor Alpha On Sensory Nerves In Lung And Airways, Ruei-Lung Lin, Qihai Gu, Mehdi Khosravi, Lu-Yuan Lee

Physiology Faculty Publications

Tumor necrosis factor alpha (TNFα) plays a significant role in the pathogenesis of airway inflammatory diseases. Inhalation of aerosolized TNFα induced airway hyperresponsiveness accompanied by airway inflammation in healthy human subjects, but the underlying mechanism is not fully understood. We recently reported a series of studies aimed to investigate if TNFα elevates the sensitivity of vagal bronchopulmonary sensory nerves in a mouse model; these studies are summarized in this mini-review. Our results showed that intratracheal instillation of TNFα induced pronounced airway inflammation 24 hours later, as illustrated by infiltration of eosinophils and neutrophils and the release of inflammatory mediators and …


Examining The Regulation Of Kv7 K+ Channels In Airway Smooth Muscle Cells And Their Potential As Novel Therapeutic Targets For The Treatment Of Asthma, Jennifer Haick Jan 2017

Examining The Regulation Of Kv7 K+ Channels In Airway Smooth Muscle Cells And Their Potential As Novel Therapeutic Targets For The Treatment Of Asthma, Jennifer Haick

Dissertations

Asthma is a disease characterized by nonspecific and exaggerated airway narrowing, termed airway hyperresponsiveness (AHR), which involves the excessive contraction of airway smooth muscle. Despite the fact that airway smooth muscle is widely studied and understood to play a role in AHR, little is known about the specifics of that role. Our laboratory recently found that Kv7 potassium (K+) channels are expressed in airway smooth muscle cells (ASMCs). Kv7 channels are voltage sensitive K+ channels whose outward flux of K+ ions promotes a negative resting membrane voltage in excitable cells, thereby opposing electrical excitability. Inhibition of K+ channels is known …