MICROGRAVITY EFFECTS ON NEUROMUSCULAR DEVELOPMENT
MICROGRAVITY EFFECTS ON NEUROMUSCULAR DEVELOPMENT
批准号:
2272296
负责人:
DANNY A RILEY
金额:
$21.14万
依托单位国家:
美国
项目类别:
财政年份:
1995
资助国家:
美国
项目状态:
已结题
起止时间:
1995-09-30 至 1999-06-30
关键词:
cell differentiation cytochrome oxidase developmental neurobiology electron microscopy environmental adaptation extraterrestrial environment gel electrophoresis gravity histology in situ hybridization laboratory rat motor neurons myofibrils neuromuscular function neuromuscular junction newborn animals spinal cord
中文摘要
描述:这项研究的目的是了解
微重力对胚胎发育、成熟和维持的影响
包括人类在内的陆生哺乳动物的神经肌肉系统。这个
拟议的研究将以老鼠为模型,并将探索广泛的
说明需要重力相关负重的假设
出生后运动神经元的正常神经肌肉发育,
神经肌肉接头和反重力的肌纤维类型
比目鱼肌,但不是指长伸肌的比目鱼肌
非负重肌肉。仔鼠(3-5日龄)将暴露于
微重力14-21天。一群飞行动物将被杀死
在接近任务结束时飞行,另一组人将返回
在对组织进行处理之前,在陆地重力下放置1个月。
并行的地面控制组将在正常和
后肢悬吊卸载(HSU)大鼠。三个预测将是
在这些研究中进行了测试。首先,人类的神经肌肉系统
暴露在微重力下的大鼠幼鼠比目鱼肌不能正常发育
而EDL的开发将毫不妥协地进行。这一分析
将确定微重力是否会破坏运动神经元的成熟,
是否会有正常的多发性神经支配消除
肌纤维,以及肌纤维类型是否正常分化
在比目鱼肌和EDL中都会发生。其次,对中国的影响
后肢悬吊卸载的神经肌肉发育
地面研究)和微重力可能是相似的。但他们可能不会
完全相同,因为后肢悬吊中增加了变量
在太空飞行中不应成为问题的研究(与
母亲和哺乳中断、体温变化等)。
第三,仔鼠的比目鱼肌神经肌肉系统的异常。
微重力不会因较晚暴露于
而胚胎干细胞将继续正常成熟。动物
在重力暴露后1个月返回地球并处理
分析过了。这些研究中的整体分析将涉及处理
对腰椎脊髓、比目鱼肌和前交叉韧带肌肉进行组织化学染色,
免疫细胞化学、原位杂交、凝胶电泳法和
电子显微镜。将使用逆行标签来识别
比目鱼肌和EDL运动神经元。神经肌肉系统的分析
发展将包括评估运动神经元的成熟度。
两个肌群(使用胞体大小、细胞色素氧化酶(CO)活性、
CO mRNA水平和胆碱乙酰转移酶(ChAT)活性),
消除运动终板的多神经元神经支配,以及
肌肉纤维类型的分化(使用肌球蛋白亚型,和
Messages、肌原纤维ATPase活性、CO活性和Message)。
据预测,微重力将导致新生儿持续性
比目鱼肌的属性和/或异常的发展,但不是
EDL,并且将动物送回地球重力预计不会
逆转诱发的异常。预计这些结果
将对饲养正常动物(包括
人类)在空间的微重力环境中,但另外将
进一步加深我们对负重活动重要性的认识
用于地球上个人的运动系统开发。
英文摘要
DESCRIPTION: The goal of this study is to understand the influence of
microgravity on the development, maturation, and maintenance of the
neuromuscular system of terrestrial mammals, including humans. The
proposed studies will use rats as a model and will explore the broad
hypothesis stating that gravity-associated weightbearing is required
postnatally for normal neuromuscular development of motoneurons,
neuromuscular junctions, and muscle fiber types of the antigravity
soleus muscle, but not for that of the extensor digitorum longus, a
nonweightbearing muscle. Rat pups (3-5 days old) will be exposed to
microgravity for 14-21 days. One group of flight animals will be killed
inflight near the end of the mission, and another group will be returned
to terrestrial gravity for 1 month before tissues are processed.
Parallel groups of ground controls will be conducted on normal and
hindlimb suspended unloaded (HSU) rats. Three predictions will be
tested in these studies. Firstly, that the neuromuscular system of the
soleus will not develop normally in the rat pups exposed to microgravity
whereas the EDL development will proceed uncompromised. This analysis
will establish whether microgravity disrupts maturation of motoneurons,
whether there will be normal elimination of multiple innervation of
muscle fibers, and whether normal differentiation of muscle fiber types
in the soleus and EDL will occur. Secondly, that the effects on
neuromuscular development of unloading by hindlimb suspension (in
ground-based study) and microgravity may be similar. But they may not
be identical since there are added variables in the hindlimb suspension
study that should not be a problem in space flight (isolation from
mother and disruption of suckling, body temperature changes, etc).
Thirdly, the aberrant soleus neuromuscular system of rat pups raised in
microgravity will not be restored to normality by late exposure to
weight bearing whereas the EDL will continue normal maturation. Animals
returned to earth and processed 1 month after gravity exposure will be
analyzed. Overall analysis in these studies will involve processing of
the lumbar spinal cords and soleus and EDL muscles using histochemistry,
immuno-cytochemistry, in situ hybridization, gel electrophoresis, and
electron microscopy. Retrograde labelling will be employed to identify
soleus and EDL motoneurons. Analysis of the neuromuscular system
development will include assessing maturation of the motoneurons of the
two muscle groups (using somal size, cytochrome oxidase (CO) activity,
CO mRNA levels, and choline acetyltransferase (CHAT) activity),
elimination of polyneuronal innervation of motor endplates, and
differentiation of muscle fiber types (using myosin protein isoforms, and
messages, myofibrillar ATPase activity, and CO activity and message).
It is predicted that microgravity will cause persistence of neonatal
attributes and/or the development of anomalies in the soleus but not the
EDL, and returning animals to terrestrial gravity is not predicted to
reverse induced abnormalities. It is anticipated that these results
will raise important implications for rearing normal animals (including
humans) in the microgravity environment of space, but additionally will
further our understanding of the importance of weightbearing activity
for motor system development of individuals on Earth.
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