诱导性删除内皮细胞 Efnb2 会延缓小鼠肌毒素损伤后的毛细血管再生并减弱肌纤维再支配。

IF 4.7 2区 医学 Q1 NEUROSCIENCES
Aaron B Morton, Nicole L Jacobsen, Alexandra R Diller, Jacob A Kendra, Shadi Golpasandi, D D W Cornelison, Steven S Segal
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引用次数: 0

摘要

骨骼肌急性损伤会破坏肌纤维、微血管和运动神经。肌纤维再生的特征已经明确,但其与微血管和运动神经再生的关系还未确定。内皮细胞(EC)ephrin-B2(Efnb2)是胚胎发育过程中血管生成所必需的,并能促进成人神经血管的再生。我们假设,骨骼肌急性损伤后,内皮细胞 Efnb2 的缺失会影响微血管再生和神经肌肉接头(NMJ)完整性的恢复。小鼠(3-6个月大)在注射他莫昔芬后被培育成EC特异性Efnb2条件性敲除(CKO)小鼠,未注射CKO小鼠作为对照组(CON)。然后通过局部注射氯化钡损伤臀大肌、胫骨前肌或趾长伸肌。用小麦胚芽凝集素进行血管内染色显示,在损伤后 5 天(dpi),CKO 与 CON 相比,臀大肌的毛细血管面积减少;在损伤后 10 天(dpi),两者均恢复到未损伤(0 dpi)水平。在 0 dpi 时,CKO 的胫骨前肌等长力低于 CON。在 10 dpi 时,两组的等长力都减少了一半。在间歇性收缩期间(75 Hz,330 ms s-1,120 s),间接(坐骨神经)刺激时等长肌力下降,而直接(电场)刺激肌纤维时肌力保持不变。神经肌肉传导失败与 CKO 中突触前(末端许旺细胞)和突触后(烟碱乙酰胆碱受体)NMJ 形态紊乱有关。各组间伸肌肌纤维上的驻留卫星细胞数量没有差异。骨骼肌急性损伤后,ECs中Efnb2的缺失会延迟毛细血管的再生,并减弱NMJ结构和功能的恢复。要点:骨骼肌损伤后微血管再生与运动神经再生之间的关系尚未明确。Efnb2在内皮细胞(ECs)中的表达对血管发育至关重要,并能促进成人神经血管的再生。为了验证内皮细胞中的EfnB2是微血管再生和肌纤维再支配所必需的这一假设,我们在小鼠的内皮细胞中诱导了Efnb2的条件性敲除。然后向臀大肌、胫骨前肌或趾长伸肌(EDL)注射氯化钡诱导急性损伤。在损伤后 5 天(dpi),条件性基因敲除与对照组相比,臀大肌的毛细血管再生能力降低;在损伤后 10 天(dpi),条件性基因敲除与对照组的毛细血管再生能力均与未损伤时不同。神经刺激显示,胫骨前肌的神经肌肉传导失败,神经肌肉接头结构紊乱。EDL肌纤维上的驻留卫星细胞数量在各组之间没有差异。条件性敲除EC Efnb2会延缓毛细血管再生,减弱神经肌肉接头结构和功能的恢复。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inducible deletion of endothelial cell Efnb2 delays capillary regeneration and attenuates myofibre reinnervation following myotoxin injury in mice.

Acute injury of skeletal muscle disrupts myofibres, microvessels and motor innervation. Myofibre regeneration is well characterized, however its relationship with the regeneration of microvessels and motor nerves is undefined. Endothelial cell (EC) ephrin-B2 (Efnb2) is required for angiogenesis during embryonic development and promotes neurovascular regeneration in the adult. We hypothesized that, following acute injury to skeletal muscle, loss of EC Efnb2 would impair microvascular regeneration and the recovery of neuromuscular junction (NMJ) integrity. Mice (aged 3-6 months) were bred for EC-specific conditional knockout (CKO) of Efnb2 following tamoxifen injection with non-injected CKO mice as controls (CON). The gluteus maximus, tibialis anterior or extensor digitorum longus muscle was then injured with local injection of BaCl2. Intravascular staining with wheat germ agglutinin revealed diminished capillary area in the gluteus maximus of CKO vs. CON at 5 days post-injury (dpi); both recovered to uninjured (0 dpi) level by 10 dpi. At 0 dpi, tibialis anterior isometric force of CKO was less than CON. At 10 dpi, isometric force was reduced by half in both groups. During intermittent contractions (75 Hz, 330 ms s-1, 120 s), isometric force fell during indirect (sciatic nerve) stimulation whereas force was maintained during direct (electrical field) stimulation of myofibres. Neuromuscular transmission failure correlated with perturbed presynaptic (terminal Schwann cells) and postsynaptic (nicotinic acetylcholine receptors) NMJ morphology in CKO. Resident satellite cell number on extensor digitorum longus myofibres did not differ between groups. Following acute injury of skeletal muscle, loss of Efnb2 in ECs delays capillary regeneration and attenuates recovery of NMJ structure and function. KEY POINTS: The relationship between microvascular regeneration and motor nerve regeneration following skeletal muscle injury is undefined. Expression of Efnb2 in endothelial cells (ECs) is essential to vascular development and promotes neurovascular regeneration in the adult. To test the hypothesis that EfnB2 in ECs is required for microvascular regeneration and myofibre reinnervation, we induced conditional knockout of Efnb2 in ECs of mice. Acute injury was then induced by BaCl2 injection into gluteus maximus, tibialis anterior or extensor digitorum longus (EDL) muscle. Capillary regeneration was reduced at 5 days post-injury (dpi) in gluteus maximus of conditional knockout vs. controls; at 10 dpi, neither differed from uninjured. Nerve stimulation revealed neuromuscular transmission failure in tibialis anterior with perturbed neuromuscular junction structure. Resident satellite cell number on EDL myofibres did not differ between groups. Conditional knockout of EC Efnb2 delays capillary regeneration and attenuates recovery of neuromuscular junction structure and function.

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来源期刊
Journal of Physiology-London
Journal of Physiology-London 医学-神经科学
CiteScore
9.70
自引率
7.30%
发文量
817
审稿时长
2 months
期刊介绍: The Journal of Physiology publishes full-length original Research Papers and Techniques for Physiology, which are short papers aimed at disseminating new techniques for physiological research. Articles solicited by the Editorial Board include Perspectives, Symposium Reports and Topical Reviews, which highlight areas of special physiological interest. CrossTalk articles are short editorial-style invited articles framing a debate between experts in the field on controversial topics. Letters to the Editor and Journal Club articles are also published. All categories of papers are subjected to peer reivew. The Journal of Physiology welcomes submitted research papers in all areas of physiology. Authors should present original work that illustrates new physiological principles or mechanisms. Papers on work at the molecular level, at the level of the cell membrane, single cells, tissues or organs and on systems physiology are all acceptable. Theoretical papers and papers that use computational models to further our understanding of physiological processes will be considered if based on experimentally derived data and if the hypothesis advanced is directly amenable to experimental testing. While emphasis is on human and mammalian physiology, work on lower vertebrate or invertebrate preparations may be suitable if it furthers the understanding of the functioning of other organisms including mammals.
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