Urothelial signaling

L Birder, KE Andersson - Physiological reviews, 2013 - journals.physiology.org
L Birder, KE Andersson
Physiological reviews, 2013journals.physiology.org
The urothelium, which lines the inner surface of the renal pelvis, the ureters, and the urinary
bladder, not only forms a high-resistance barrier to ion, solute and water flux, and
pathogens, but also functions as an integral part of a sensory web which receives, amplifies,
and transmits information about its external milieu. Urothelial cells have the ability to sense
changes in their extracellular environment, and respond to chemical, mechanical and
thermal stimuli by releasing various factors such as ATP, nitric oxide, and acetylcholine …
The urothelium, which lines the inner surface of the renal pelvis, the ureters, and the urinary bladder, not only forms a high-resistance barrier to ion, solute and water flux, and pathogens, but also functions as an integral part of a sensory web which receives, amplifies, and transmits information about its external milieu. Urothelial cells have the ability to sense changes in their extracellular environment, and respond to chemical, mechanical and thermal stimuli by releasing various factors such as ATP, nitric oxide, and acetylcholine. They express a variety of receptors and ion channels, including P2X3 purinergic receptors, nicotinic and muscarinic receptors, and TRP channels, which all have been implicated in urothelial-neuronal interactions, and involved in signals that via components in the underlying lamina propria, such as interstitial cells, can be amplified and conveyed to nerves, detrusor muscle cells, and ultimately the central nervous system. The specialized anatomy of the urothelium and underlying structures, and the possible communication mechanisms from urothelial cells to various cell types within the bladder wall are described. Changes in the urothelium/lamina propria (“mucosa”) produced by different bladder disorders are discussed, as well as the mucosa as a target for therapeutic interventions.
American Physiological Society