Regeneration of neuromuscular synapses after acute and chronic denervation by inhibiting the gerozyme 15-prostaglandin dehydrogenase

去神经支配 神经肌肉接头 再生(生物学) 坐骨神经 前列腺素E2 医学 前列腺素 骨骼肌 内科学 内分泌学 生物 神经科学 细胞生物学
作者
Mohsen Afshar Bakooshli,Yu Xin Wang,Elena Monti,Shiqi Su,Peggy E. Kraft,Minas Nalbandian,L. M. Alexandrova,Joshua R. Wheeler,Hannes Vogel,Helen M. Blau
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:15 (717) 被引量:16
标识
DOI:10.1126/scitranslmed.adg1485
摘要

To date, there are no approved treatments for the diminished strength and paralysis that result from the loss of peripheral nerve function due to trauma, heritable neuromuscular diseases, or aging. Here, we showed that denervation resulting from transection of the sciatic nerve triggered a marked increase in the prostaglandin-degrading enzyme 15-hydroxyprostaglandin dehydrogenase (15-PGDH) in skeletal muscle in mice, providing evidence that injury drives early expression of this aging-associated enzyme or gerozyme. Treating mice with a small-molecule inhibitor of 15-PGDH promoted regeneration of motor axons and formation of neuromuscular synapses leading to an acceleration in recovery of force after an acute nerve crush injury. In aged mice with chronic denervation of muscles, treatment with the 15-PGDH inhibitor increased motor neuron viability and restored neuromuscular junctions and function. These presynaptic changes synergized with previously reported muscle tissue remodeling to result in a marked increase in the strength of aged muscles. We further found that 15-PGDH aggregates defined the target fibers that are histopathologic hallmarks of human neurogenic myopathies, suggesting that the gerozyme may be involved in their etiology. Our data suggest that inhibition of 15-PGDH may constitute a therapeutic strategy to physiologically boost prostaglandin E2, restore neuromuscular connectivity, and promote recovery of strength after acute or chronic denervation due to injury, disease, or aging.
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