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Biology subjects

Simpson, P. C.

Publications and source records attributed to Simpson, P. C..

3 recordsLinked to original sources

Ca2+ increases cardiac muscle viscoelasticity independent of active force development

In addition to activation of muscle contraction by Ca2+, recent studies suggest that Ca2+ also affects muscle passive mechanical properties. The goal of this study was to determine if Ca2+ regulates the stiffness of cardiac muscle, independent of active contraction. The mechanical response to stretch for mouse demembranated cardiac trabeculae was probed at different Ca2+ levels after eliminating active contraction using a combination of two myosin ATPase inhibitors: para-nitroblebbistatin (PNB, 50 M), plus mavacampten (Mava, 50 M). Myocardial force level was assessed during large stretches ({asymp} 20% initial muscle length) with a range of stretch velocities. For relaxed muscle, in response to stretch, muscle force rose to a peak and then decayed toward a lower steady-state level, consistent with the viscoelastic nature of cardiac muscle. Peak force was higher with faster stretch velocity, but the steady-state force was independent of stretch velocity, consistent with the presence of both apparent viscous and elastic components of the stretch response. In the presence of the inhibitors PNB plus Mava, when Ca2+ level was increased, active contraction was completely prevented. However, the viscoelastic force response to stretch was markedly increased by high Ca2+ and was > 6-fold higher than at low Ca2+ level. The relationship of viscous force to Ca2+ level had a similar form to the relationship of active force to Ca2+ (measured in the absence of inhibitors), suggesting a common regulatory mechanism is involved. As expected, Ca2+-activated contraction was inhibited by lowering the temperature from 21{degrees}C to 10{degrees}C. In contrast, the Ca2+-activated viscous property was not inhibited at lower temperature, further suggesting that active contraction and the viscous property involve distinct mechanisms. This study demonstrates that in addition to triggering activation of contraction, Ca2+ also increases the apparent viscous property of cardiac muscle. New and NoteworthyCa2+ is well-known to trigger activation of muscle contraction. This study demonstrates a new mechanical role for Ca2+ in cardiac muscle involving a >6-fold increase in the apparent muscle viscoelasticity. Activation of a viscous element by Ca2+ might influence the mechanical properties of activated cardiac muscle.

biophysics↗

Cortical norepinephrine-astrocyte signaling critically mediates learned behavior

Updating behavior based on feedback from the environment is a crucial means by which organisms learn and develop optimal behavioral strategies1-3. Norepinephrine (NE) release from the locus coeruleus (LC) has been shown to mediate learned behaviors4-6 such that in a task with graded stimulus uncertainty and performance, a high level of NE released after an unexpected outcome causes adaptations in subsequent behavior7. Yet, how the transient activity of LC-NE neurons, lasting tens of milliseconds, alters neuronal activity and influences behavior several seconds later is unclear. Here, we show that NE released after an unexpected outcome acts directly on cortical astrocytes via 1 adrenergic (Adra1a) receptors to elicit sustained increases in intracellular calcium. Chemogenetic blockade of astrocytic calcium dynamics prevents trial-to-trial behavioral adaptation. NE stimulation of astrocytes elicits ATP release, and imaging ATP levels in the cortex reveals an increase in extracellular ATP in response to an unexpected outcome. Blocking ATP-driven signaling to neuronal adenosine A1 receptors also prevents post-reinforcement behavioral adaptation. Finally, high density neuronal recordings in prefrontal cortex reveal that a surprising outcome alters the neuronal representation of the stimulus on the subsequent trial without sustained changes in cortical activity; blocking either astrocyte calcium dynamics or A1 receptors occludes these post-reinforcement changes in single-neuron and population neuronal encoding of task variables underlying behavioral changes. Together, these data demonstrate that astrocytes play an essential role in norepinephrine-driven learned behavior: they have prolonged calcium responses to transient norepinephrine release and convey task-relevant reinforcement information across behavioral intervals, enabling selective updating of neuronal task representations to support adaptive behavior.

neuroscience↗

Norepinephrine Signals Through Astrocytes To Modulate Synapses

AbstractLocus coeruleus (LC)-derived norepinephrine (NE) drives network and behavioral adaptations to environmental saliencies by reconfiguring circuit connectivity, but the underlying synapse-level mechanisms are elusive. Here, we show that NE remodeling of synaptic function is independent from its binding on neuronal receptors. Instead, astrocytic adrenergic receptors and Ca2+ dynamics fully gate the effect of NE on synapses as the astrocyte-specific deletion of adrenergic receptors and three independent astrocyte-silencing approaches all render synapses insensitive to NE. Additionally, we find that NE suppression of synaptic strength results from an ATP-derived and adenosine A1 receptor-mediated control of presynaptic efficacy. An accompanying study from Chen et al. reveals the existence of an analogous pathway in the larval zebrafish and highlights its importance to behavioral state transitions. Together, these findings fuel a new model wherein astrocytes are a core component of neuromodulatory systems and the circuit effector through which norepinephrine produces network and behavioral adaptations, challenging an 80-year-old status quo.

neuroscience↗