利用工程生物材料向损伤的颈脊髓输送肝细胞生长因子,保护呼吸神经回路并保留功能性膈肌神经支配。

IF 3.9 2区 医学 Q1 CLINICAL NEUROLOGY
Samantha J Thomas, Biswarup Ghosh, Zhicheng Wang, Mengxi Yang, Jia Nong, Jenna Severa, Megan C Wright, Yinghui Zhong, Angelo C Lepore
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引用次数: 0

摘要

大部分脊髓损伤(SCI)病例发生在颈椎区域,而呼吸神经回路的重要组成部分就位于该区域。膈肌运动神经元(PhMNs)位于颈脊髓 C3-C5 水平,直接支配膈肌,SCI 引起的这些细胞损伤会严重损害呼吸功能。在本研究中,我们测试了一种基于生物材料的方法,旨在通过局部递送肝细胞生长因子(HGF),在颈椎损伤后保留这一关键的膈肌运动回路。肝细胞生长因子是一种强效的有丝分裂原,可促进多种不同细胞和组织类型在损伤后的存活、增殖、迁移、修复和再生。我们开发了一种基于水凝胶的 HGF 给药系统,可将其注入鞘内间隙,在不损伤脊髓的情况下局部给药高浓度的 HGF。在大鼠单侧C5挫伤型脊髓损伤后植入HGF水凝胶,通过体内记录复合肌动作电位和吸气肌电图振幅评估,可保留膈肌功能。通过逆行 PhMN 追踪和详细的神经肌肉接头形态分析评估,HGF 水凝胶还保留了膈肌的 PhMN 神经支配。此外,HGF 水凝胶还能显著减少颈运动神经元细胞体的病变大小和变性,并降低损伤部位周围限制轴突生长能力的瘢痕相关硫酸软骨素蛋白多糖(CSPG)分子的水平。我们的研究结果表明,以局部生物材料为基础向损伤的颈脊髓输送 HGF 水凝胶是保护呼吸回路和膈肌功能的有效策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hepatocyte Growth Factor Delivery to Injured Cervical Spinal Cord Using an Engineered Biomaterial Protects Respiratory Neural Circuitry and Preserves Functional Diaphragm Innervation.

A major portion of spinal cord injury (SCI) cases occur in the cervical region, where essential components of the respiratory neural circuitry are located. Phrenic motor neurons (PhMNs) housed at cervical spinal cord level C3-C5 directly innervate the diaphragm, and SCI-induced damage to these cells severely impairs respiratory function. In this study, we tested a biomaterial-based approach aimed at preserving this critical phrenic motor circuitry after cervical SCI by locally delivering hepatocyte growth factor (HGF). HGF is a potent mitogen that promotes survival, proliferation, migration, repair, and regeneration of a number of different cell and tissue types in response to injury. We developed a hydrogel-based HGF delivery system that can be injected into the intrathecal space for local delivery of high levels of HGF without damaging the spinal cord. Implantation of HGF hydrogel after unilateral C5 contusion-type SCI in rats preserved diaphragm function, as assessed by in vivo recordings of both compound muscle action potentials and inspiratory electromyography amplitudes. HGF hydrogel also preserved PhMN innervation of the diaphragm, as assessed by both retrograde PhMN tracing and detailed neuromuscular junction morphological analysis. Furthermore, HGF hydrogel significantly decreased lesion size and degeneration of cervical motor neuron cell bodies, as well as reduced levels surrounding the injury site of scar-associated chondroitin sulfate proteoglycan molecules that limit axon growth capacity. Our findings demonstrate that local biomaterial-based delivery of HGF hydrogel to injured cervical spinal cord is an effective strategy for preserving respiratory circuitry and diaphragm function.

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来源期刊
Journal of neurotrauma
Journal of neurotrauma 医学-临床神经学
CiteScore
9.20
自引率
7.10%
发文量
233
审稿时长
3 months
期刊介绍: Journal of Neurotrauma is the flagship, peer-reviewed publication for reporting on the latest advances in both the clinical and laboratory investigation of traumatic brain and spinal cord injury. The Journal focuses on the basic pathobiology of injury to the central nervous system, while considering preclinical and clinical trials targeted at improving both the early management and long-term care and recovery of traumatically injured patients. This is the essential journal publishing cutting-edge basic and translational research in traumatically injured human and animal studies, with emphasis on neurodegenerative disease research linked to CNS trauma.
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