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Fameli, N; Evans, AM; van Breemen, C.
Tissue Specificity: The Role of Organellar Membrane Nanojunctions in Smooth Muscle Ca2+ Signaling.
Adv Exp Med Biol. 2017; 993(5):321-342 Doi: 10.1007/978-3-319-57732-6_17
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Leading authors Med Uni Graz
Fameli Nicola
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Abstract:
In this chapter we examine the importance of cytoplasmic nanojunctions-nanometer scale appositions between organellar membranes including the molecular transporters therein-to the cell signaling machinery, with specific reference to Ca2+ transport and signaling in vascular smooth muscle and endothelial cells. More specifically, we will consider the extent to which quantitative modeling may aid in the development of our understanding of these processes. Testament to the requirement for such approaches lies in the fact that recent studies have provided evermore convincing evidence in support of the view that cytoplasmic nanospaces may be as significant to the process of Ca2+ signaling as the Ca2+ transporters, release channels, and Ca2+-storing organelles themselves. Moreover, the disruption and/or dysfunction of cytoplasmic nanospaces may be central to the origin of certain diseases. By way of introduction, we provide a historical perspective on the identification of smooth muscle cell plasma membrane (PM)-sarcoplasmic reticulum (SR) nanospaces and the early evidence in support of their role in the generation of asynchronous Ca2+ waves. We then summarize how stochastic modeling approaches can aid and guide the development of our understanding of two basic functional steps leading to healthy smooth muscle cell contraction. We furthermore outline how more sophisticated and realistic quantitative stochastic modeling may be employed not only to test working hypotheses, but also to lead in their development in a manner that informs further experimental investigation. Finally, we consider more recently defined nanospaces such as the lysosome-SR junction, by way of demonstrating the importance of quantitative stochastic modeling to our understanding of signaling mechanisms.
Find related publications in this database (using NLM MeSH Indexing)
Animals -
Calcium - metabolism
Calcium Signaling - physiology
Cell Membrane - metabolism
Humans -
Intercellular Junctions - metabolism
Muscle, Smooth, Vascular - metabolism
Organ Specificity - physiology
Sarcoplasmic Reticulum - metabolism

Find related publications in this database (Keywords)
Cytoplasmic nanojunctions
ER junctions
Calcium signaling
Smooth muscle
Endothelium
Lysosomes
Stochastic modeling
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