CLC-1 Inhibition Improves the Function of Neuromuscular Junctions in Aging Muscle
Sarcopenia is the name given to later, more severe stages of the characteristic loss of muscle mass and strength that takes place with age. The loss is universal, ultimately leading to physical frailty. Since muscle is metabolically active, loss of muscle is also disruptive to overall metabolism, worsening insulin resistance and chronic inflammation. Like many aspects of degenerative aging, the underlying causes of sarcopenia form a web of interacting mechanisms. It is challenging to determine their relative importance, as well as which mechanisms are largely upstream versus largely downstream in the chain of cause and effect. As is usual, tracing a direct path from root causes of aging to proximate causes of disease is a work in progress, and very incomplete. Most research effort focuses on the proximate causes.
For sarcopenia, the most plausibly important and well studied proximate causes are (a) loss of muscle stem cell activity, reducing the supply of new muscle cells needed to replace losses, and (b) degeneration of the neuromuscular junctions that link the nervous system to muscle fibers. Without innervation, muscle lacks the signaling needed to provoke normal maintenance and growth in response to use. These proximate causes are of course far downstream of issues closer to the roots of aging, such as mitochondrial dysfunction, epigenetic change, senescent cell accumulation, and so forth.
Today's open access paper is an example of ongoing efforts to better understand how neuromuscular junctions falter in their function. The researchers focus in on a loss of postsynaptic excitability driven by reduced expression of the NaV1.4 sodium channel, and suggest inhibition of the CLC-1 chloride channel as a compensatory strategy to promote greater postsynaptic excitability without directly addressing the NAV1.4 issue. They found this approach to improve muscle function in aged mice.
Sarcopenia is the age-related loss of muscle strength and size that leads to mobility limitations and loss of independence in older adults. The underlying cellular mechanisms remain unclear, and treatments are limited. As the critical interface between the nervous system and muscle, the neuromuscular junction (NMJ) is essential for muscle activation and force production. Here, we demonstrate that weak older individuals exhibit NMJ transmission failure that correlates with muscle weakness severity.
Preclinical experiments showed similar NMJ transmission failure in aged rodents that was associated with localized loss of muscle fiber excitability at the NMJ. This excitability defect, distinct from potential synaptic cholinergic transmission abnormalities, represents a novel disease mechanism of sarcopenia. Across species, immunohistochemistry identified a localized reduction in the voltage-gated sodium channel specific for skeletal muscle (NaV1.4) at the post-synaptic NMJ membrane. Acute NaV1.4 inhibition in adult rats reproduced findings of NMJ transmission failure observed in aged rodents and humans.
In a recent study on myasthenia gravis, inhibition of the ClC-1 channel was found to enhance NMJ transmission and improve muscle function in both animal models and patients with myasthenia gravis. Our current findings demonstrate that small molecule inhibition of ClC-1 can similarly enhance muscle contractile function and improve motor function assessments in aged, weak rats with confirmed NMJ dysfunction. The ClC-1 ion channel is specific to skeletal muscle, expressed along the entire muscle fiber membrane, including at NMJ, sarcolemma, and t-tubular system. This channel plays a critical role in modulating skeletal muscle excitability, especially during intense muscle activity, through cellular signaling systems activated during muscle activity.