Javascript must be enabled to continue!
Ca2+ signalling, voltage-gated Ca2+ channels and praziquantel in flatworm neuromusculature
View through CrossRef
Transient changes in calcium (Ca2+) levels regulate a wide variety of cellular processes, and cells employ both intracellular and extracellular sources of Ca2+ for signalling. Praziquantel, the drug of choice against schistosomiasis, disrupts Ca2+ homeostasis in adult worms. This review will focus on voltage-gated Ca2+ channels, which regulate levels of intracellular Ca2+ by coupling membrane depolarization to entry of extracellular Ca2+. Ca2+ channels are members of the ion channel superfamily and represent essential components of neurons, muscles and other excitable cells. Ca2+ channels are membrane protein complexes in which the pore-forming α1 subunit is modulated by auxiliary subunits such as β and α2δ. Schistosomes express two Ca2+ channel β subunit subtypes: a conventional subtype similar to β subunits found in other vertebrates and invertebrates and a novel variant subtype with unusual structural and functional properties. The variant schistosome β subunit confers praziquantel sensitivity to an otherwise praziquantel-insensitive mammalian Ca2+ channel, implicating it as a mediator of praziquantel action.
Title: Ca2+ signalling, voltage-gated Ca2+ channels and praziquantel in flatworm neuromusculature
Description:
Transient changes in calcium (Ca2+) levels regulate a wide variety of cellular processes, and cells employ both intracellular and extracellular sources of Ca2+ for signalling.
Praziquantel, the drug of choice against schistosomiasis, disrupts Ca2+ homeostasis in adult worms.
This review will focus on voltage-gated Ca2+ channels, which regulate levels of intracellular Ca2+ by coupling membrane depolarization to entry of extracellular Ca2+.
Ca2+ channels are members of the ion channel superfamily and represent essential components of neurons, muscles and other excitable cells.
Ca2+ channels are membrane protein complexes in which the pore-forming α1 subunit is modulated by auxiliary subunits such as β and α2δ.
Schistosomes express two Ca2+ channel β subunit subtypes: a conventional subtype similar to β subunits found in other vertebrates and invertebrates and a novel variant subtype with unusual structural and functional properties.
The variant schistosome β subunit confers praziquantel sensitivity to an otherwise praziquantel-insensitive mammalian Ca2+ channel, implicating it as a mediator of praziquantel action.
Related Results
Na+/Ca2+ exchange current in ventricular myocytes of fish heart: contribution to sarcolemmal Ca2+ influx
Na+/Ca2+ exchange current in ventricular myocytes of fish heart: contribution to sarcolemmal Ca2+ influx
ABSTRACT
Influx of extracellular Ca2+ plays a major role in the activation of contraction in fish cardiac cells. The relative contributions of Na+/Ca2+ exchange and ...
Ca2+ entry through Na(+)‐Ca2+ exchange can trigger Ca2+ release from Ca2+ stores in Na(+)‐loaded guinea‐pig coronary myocytes.
Ca2+ entry through Na(+)‐Ca2+ exchange can trigger Ca2+ release from Ca2+ stores in Na(+)‐loaded guinea‐pig coronary myocytes.
1. The ionized cytosolic calcium concentration ([Ca2+]i) was monitored in voltage‐clamped coronary myocytes at 36 degrees C and 2.5 mM [Ca2+]o using the Ca2+ indicator indo‐1. [Ca2...
Computational analysis of Ca2+ dynamics in isolated cardiac mitochondria predicts two distinct modes of Ca2+ uptake
Computational analysis of Ca2+ dynamics in isolated cardiac mitochondria predicts two distinct modes of Ca2+ uptake
Key points
Cytosolic, but not matrix, Mg2+ inhibits mitochondrial Ca2+ uptake through the Ca2+ uniporter (CU).
The majority of mitochondrial Ca2+ uptake under physiological levels ...
Regulation of cochlear hair cell function by intracellular calcium stores
Regulation of cochlear hair cell function by intracellular calcium stores
IntroductionMammalian hearing depends on the dual mechanosensory and motor functions of cochlear hair cells. Both these functions may be regulated by Ca2+ release from intracellula...
A Mechanism for Both Capacitative Ca2+Entry and Excitation-Contraction Coupled Ca2+Release by the Sarcoplasmic Reticulum of Skeletal Muscle Cells
A Mechanism for Both Capacitative Ca2+Entry and Excitation-Contraction Coupled Ca2+Release by the Sarcoplasmic Reticulum of Skeletal Muscle Cells
We have previously established that L6 skeletal muscle cell cultures display capacitative calcium entry (CCE), a phenomenon established with other cells in which Ca2+uptake from ou...
The emergence of subcellular pacemaker sites for calcium waves and oscillations
The emergence of subcellular pacemaker sites for calcium waves and oscillations
Key points
Calcium (Ca2+) is fundamental to biological cell function, and Ca2+ waves generating oscillatory Ca2+ signals are widely observed in many cell types.
Some experimental s...
Mechanism of Ca2+Transport by Sarcoplasmic Reticulum
Mechanism of Ca2+Transport by Sarcoplasmic Reticulum
AbstractThe sections in this article are:Structure of Sarcoplasmic Reticulum and Transverse TubulesStructure of Plasmalemma and T TubulesSarcoplasmic ReticulumJunction Between T Tu...
Differential regulation of Ca2+sparks and Ca2+waves by UTP in rat cerebral artery smooth muscle cells
Differential regulation of Ca2+sparks and Ca2+waves by UTP in rat cerebral artery smooth muscle cells
Uridine 5′-triphosphate (UTP), a potent vasoconstrictor that activates phospholipase C, shifted Ca2+signaling from sparks to waves in the smooth muscle cells of rat cerebral arteri...

