The stretch of cardiac muscle increases developed force in two phases. The first phase occurs immediately after stretch and is the expression of the Frank–Starling mechanism, while the second one or slow force response (SFR) occurs gradually and is due to an increase in the calcium transient amplitude. An important step in the chain of events leading to the SFR generation is the increased production of reactive oxygen species (ROS) leading to redox sensitive ERK1/2, p90RSK, and NHE1 phosphorylation/activation. Conversely, suppression of ROS production blunts the SFR. The purpose of this study was to explore whether overexpression of the ubiquitously expressed antioxidant molecule thioredoxin-1 (TRX1) affects the SFR development and NHE1 pho...
Background-Myocardial stretch increases force biphasically: the Frank-Starling mechanism followed by...
Thioredoxin-1 maintains the cellular redox status and decreases the infarct size in ischemia/reperfu...
Myocardial stretch induces a two-phase increase in developed force. The first phase occurs immediate...
The stretch of cardiac muscle increases developed force in two phases. The first phase occurs immedi...
The stretch of cardiac muscle increases developed force in two phases. The first phase occurs immedi...
Abstract: Sepsis-induced myocardial dysfunction is associated with increased oxidative stress and mi...
When the length of the myocardium is increased, a biphasic response to stretch occurs involving an i...
Growing in vitro evidence suggests NHE-1, a known target for reactive oxygen species (ROS), as a key...
Myocardial strain triggers an autocrine/paracrine mechanism known to participate in myocardial hyper...
Thioredoxin-1 (Trx1) protects the heart from ischemia/reperfusion (I/R) injury. Given that the age a...
Background/aims: Myocardial stretch increases cardiac force in two consecutive phases: The first one...
This editorial refers to ‘Thioredoxin-1 maintains mitochondrial function via mTOR signaling in the h...
Thioredoxin 1 (Trx1) is a 12-kDa oxidoreductase that catalyzes thiol-disulfide exchange reactions to...
In this chapter the enhanced activity of the cardiac Na+/H+ exchanger (NHE-1) after myocardial stret...
Myocardial stretch elicits a biphasic increase in developed force with a first rapid force response ...
Background-Myocardial stretch increases force biphasically: the Frank-Starling mechanism followed by...
Thioredoxin-1 maintains the cellular redox status and decreases the infarct size in ischemia/reperfu...
Myocardial stretch induces a two-phase increase in developed force. The first phase occurs immediate...
The stretch of cardiac muscle increases developed force in two phases. The first phase occurs immedi...
The stretch of cardiac muscle increases developed force in two phases. The first phase occurs immedi...
Abstract: Sepsis-induced myocardial dysfunction is associated with increased oxidative stress and mi...
When the length of the myocardium is increased, a biphasic response to stretch occurs involving an i...
Growing in vitro evidence suggests NHE-1, a known target for reactive oxygen species (ROS), as a key...
Myocardial strain triggers an autocrine/paracrine mechanism known to participate in myocardial hyper...
Thioredoxin-1 (Trx1) protects the heart from ischemia/reperfusion (I/R) injury. Given that the age a...
Background/aims: Myocardial stretch increases cardiac force in two consecutive phases: The first one...
This editorial refers to ‘Thioredoxin-1 maintains mitochondrial function via mTOR signaling in the h...
Thioredoxin 1 (Trx1) is a 12-kDa oxidoreductase that catalyzes thiol-disulfide exchange reactions to...
In this chapter the enhanced activity of the cardiac Na+/H+ exchanger (NHE-1) after myocardial stret...
Myocardial stretch elicits a biphasic increase in developed force with a first rapid force response ...
Background-Myocardial stretch increases force biphasically: the Frank-Starling mechanism followed by...
Thioredoxin-1 maintains the cellular redox status and decreases the infarct size in ischemia/reperfu...
Myocardial stretch induces a two-phase increase in developed force. The first phase occurs immediate...