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Hubbard, E.

Publications and source records attributed to Hubbard, E..

2 recordsLinked to original sources

Effects of intensified training with insufficient recovery on joint level and single muscle fibre mechanical function: The role of myofibrillar Ca2+ sensitivity

Intense exercise training with insufficient recovery is associated with reductions in neuromuscular performance. However, it is unclear how single muscle fibre mechanical function and myofibrillar Ca2+ sensitivity contribute to these impairments. We investigated the effects of overload training on joint-level neuromuscular performance and cellular-level mechanical function. Fourteen athletes (4 female, 10 male) underwent a 3-week intensified training protocol consisting of [~]140% of their regular training hours with three additional high-intensity training sessions per week. Neuromuscular performance of the knee extensors was assessed via maximum voluntary contraction (MVC) force, electrically evoked twitch contractions, and a force-frequency relationship. Muscle biopsies were taken from the vastus lateralis to assess single fibre mechanical function. Neither MVC force nor twitch parameters were altered following intensified training (all p>0.05), but a rightward shift in the force-frequency curve was observed with a 6-27% reduction in force at low-frequencies (5-20Hz, all p<0.05). In single fibres, maximal force output was not reduced following intensified training, but there was a rightward shift in the force-pCa curve driven by a 6% reduction in Ca2+ sensitivity as indicated by a lower pCa50 value (i.e., higher [Ca2+]) across fibre types (Pre=6.477{+/-}0.157, Post=6.088{+/-}0.480, p<0.05). These data indicate intensified training leads to impaired Ca2+ sensitivity at the single fibre level, which in part explains impaired neuromuscular function at the joint level during lower frequencies of activation. This is an important consideration for athletes, as performance is often assessed at maximal levels of activation, and these underlying impairments in force generation may be less obvious. New & NoteworthyIntense exercise training with insufficient recovery leads to impaired muscle contractile performance. These impairments often manifest at lower frequencies of muscle stimulation, termed prolonged low-frequency force depression. Impaired myofibrillar calcium sensitivity has been suggested as a potential mechanism of prolonged low-frequency force depression. Our work shows that impaired calcium sensitivity of single muscle fibres coincided with joint level prolonged low-frequency force depression after intense exercise training with insufficient recovery.

physiology↗

An extended amygdala-midbrain circuit controlling cocaine withdrawal-induced anxiety and reinstatement

While midbrain dopamine (DA) neuronal circuits are central to motivated behaviors, much remains unknown about our knowledge of how these circuits are modified over time by experience to facilitate selective aspects of experience-dependent plasticity. Most studies of the DA system in drug addiction focus on the role of the mesolimbic DA pathway from the ventral tegmental area (VTA) to the nucleus accumbens (NAc) in facilitating drug-associated reward. In contrast, less is known about how midbrain DA cells and associated circuits contribute to negative affective states including anxiety that emerge during protracted withdrawal from drug administration. Here, we demonstrate the selective role of a midbrain DA projection to the amygdala (VTADA[->]Amygdala) for anxiety that develops during protracted withdrawal from cocaine administration but does not participate in cocaine reward or sensitization. Our rabies virus-mediated circuit mapping approach revealed a persistent elevation in spontaneous and task-related activity of GABAergic cells from the bed nucleus of the stria terminals (BNST) and downstream VTADA[->]Amygdala cells that could be detected even after a single cocaine exposure. Activity in BNSTGABA cells was related to cocaine-induced anxiety but not reward or sensitization, and silencing the projection from these cells to the midbrain was sufficient to prevent the development of anxiety during protracted withdrawal following cocaine administration. We observed that VTADA[->]Amygdala cells, but not other midbrain DA cells, were strongly activated after a challenge exposure to cocaine, and found that activity in these cells was necessary for the expression of reinstatement of cocaine place preference. Lastly, the importance of activity in VTADA[->]Amygdala cells extends beyond cocaine, as these cells mediate the development of anxiety states triggered by morphine and a predator odor. Our results provide an exemplar for how to identify key circuit substrates that contribute to behavioral adaptations and reveal a critical role for BNSTGABA[->]VTADA[->]Amygdala pathway in anxiety states induced by drugs of abuse or natural experiences as well as cocaine-primed reinstatement of conditioned place preference.

neuroscience↗