Muscle derived BMP4 regulates morphology and function of endplates on extrafusal and intrafusal muscle fibers in adult mice.

IF 4 2区 医学 Q1 NEUROSCIENCES
Julia M Harrison,Borbala Podor,Asal Yans,Victor F Rafuse
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引用次数: 0

Abstract

Understanding factors contributing to neuromuscular junction (NMJ) stability post-development will shed light on how this stability is lost during aging and in neuromuscular diseases. Previous work in Drosophila suggests that morphogens within the bone morphogenetic protein (BMP) family are potential candidates because the BMP homolog, gbb, along with its receptor, wit, have key roles in NMJ structure, stability, and function. Whether BMPs have similar roles at vertebrate NMJs is currently unknown. To examine this question, we generated doxycycline-inducible, muscle specific BMP4 null mice, referred to here as HSACreBMP4fl/fl mice. Motor behavior tasks were examined pre- and post-induction while electrophysiological and morphological characteristics were examined 4 months later in mice of both sexes. Soleus muscles from HSACreBMP4fl/fl mice had significantly reduced contractile force compared to wild-type (WT) littermates. Cross-sectional areas of type I, but not type IIa, muscle fibers were reduced. NMJs were also larger in HSACreBMP4fl/fl muscles compared to controls due to a significant increase in acetylcholine receptor fragment number and distribution. HSACreBMP4fl/fl NMJs displayed reduced amplitude and frequency of miniature endplate potentials (mEPPs), evoked EPP amplitude, quantal content, and had increased failure rates when stimulating at high frequencies. Behaviorally, HSACreBMP4fl/fl mice performed increasingly worse over time on the rotarod after doxycycline administration compared to their WT littermates. Finally, muscle spindle structure and proprioceptive function were significantly compromised in HSACreBMP4fl/fl mice. These results indicate that muscle derived BMP4 regulates morphological and electrophysiological attributes of the NMJ in adult mice as well as the structure and function of muscle spindles.Significance statement Understanding the cellular mechanisms underlying neuromuscular junction (NMJ) stability is critically important in understanding why it is compromised during aging and in motoneuron diseases. Studies in Drosophila larvae have shown that gbb and wit, a ligand and receptor in the BMP signaling pathway, are critical for the stability and function of the NMJ. This paper uses a novel doxycycline-inducible, muscle-specific BMP4 knockdown approach to eliminate muscular BMP4 expression in adult mice. When BMP4 was excised in the adult, we found that muscle strength and neurotransmission were attenuated, endplates fragmented, and mice had locomotor deficits. Furthermore, muscle spindle innervation and proprioceptive function were impaired. Therefore, as in Drosophila larvae, BMP4 is required for normal function and morphology of adult vertebrate NMJs.
肌源性BMP4调节成年小鼠肌外和肌内肌纤维终板的形态和功能。
了解影响神经肌肉连接(NMJ)发育后稳定性的因素,将有助于揭示这种稳定性在衰老和神经肌肉疾病中是如何丧失的。先前对果蝇的研究表明,骨形态发生蛋白(BMP)家族中的形态因子是潜在的候选者,因为BMP的同源物gbb及其受体wit在NMJ的结构、稳定性和功能中起着关键作用。bmp在脊椎动物NMJs中是否有类似的作用目前尚不清楚。为了研究这个问题,我们制造了强力霉素诱导的肌肉特异性BMP4缺失小鼠,这里称为HSACreBMP4fl/fl小鼠。分别在诱导前和诱导后观察运动行为任务,4个月后观察两性小鼠的电生理和形态学特征。与野生型(WT)小鼠相比,HSACreBMP4fl/fl小鼠的比目鱼肌收缩力显著降低。I型肌纤维的横截面积减少,而IIa型肌纤维的横截面积没有减少。由于乙酰胆碱受体片段数量和分布的显著增加,与对照组相比,HSACreBMP4fl/fl肌肉中的NMJs也更大。HSACreBMP4fl/fl NMJs表现出微终板电位(mEPPs)幅值和频率降低,诱发EPP幅值和量子含量,高频刺激时故障率增加。行为学上,HSACreBMP4fl/fl小鼠在给予多西环素后,在旋转棒上的表现越来越差。最后,HSACreBMP4fl/fl小鼠的肌纺锤体结构和本体感觉功能显著受损。这些结果表明,肌源性BMP4调节成年小鼠NMJ的形态和电生理特性以及肌纺锤体的结构和功能。理解神经肌肉连接(NMJ)稳定性的细胞机制对于理解它在衰老和运动神经元疾病中受损的原因至关重要。对果蝇幼虫的研究表明,BMP信号通路中的配体和受体gbb和wit对NMJ的稳定性和功能至关重要。本文使用一种新的强力霉素诱导的肌肉特异性BMP4敲低方法来消除成年小鼠肌肉中BMP4的表达。当BMP4在成年小鼠中被切除时,我们发现肌肉力量和神经传递减弱,终板断裂,小鼠出现运动缺陷。此外,肌梭神经支配和本体感觉功能受损。因此,与果蝇幼虫一样,成年脊椎动物NMJs的正常功能和形态也需要BMP4。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Neuroscience
Journal of Neuroscience 医学-神经科学
CiteScore
9.30
自引率
3.80%
发文量
1164
审稿时长
12 months
期刊介绍: JNeurosci (ISSN 0270-6474) is an official journal of the Society for Neuroscience. It is published weekly by the Society, fifty weeks a year, one volume a year. JNeurosci publishes papers on a broad range of topics of general interest to those working on the nervous system. Authors now have an Open Choice option for their published articles
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