首页> 外文期刊>Folia phoniatrica et logopaedica: official organ of the International Association of Logopedics and Phoniatrics (IALP) >Functional histology of the macula flava in the human vocal fold--Part 2: Its role in the growth and development of the vocal fold.
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Functional histology of the macula flava in the human vocal fold--Part 2: Its role in the growth and development of the vocal fold.

机译:黄斑黄斑在人声带中的功能组织学-第2部分:它在声带的生长和发育中的作用。

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OBJECTIVE: This study aims to clarify the role of the maculae flavae (MFe) during growth and development of the human vocal fold mucosa (VFM). METHODS: Our current results concerning the MFe in the human newborn, infant, and child VFM are summarized. RESULTS: Newborns already had immature MFe at the same sites as adults. They were composed of dense masses of vocal fold stellate cells (VFSCs), whereas extracellular matrix components were sparse. VFSCs in the newborn MFe had already started synthesizing extracellular matrices (EM). During infancy, the EM synthesized in the MFe appeared in the VFM to initiate the formation of the three-dimensional extracellular matrix structure of the human VFM. During childhood, MFe including VFSCs continued to synthesize EM such as collagenous, reticular, and elastic fibers, and hyaluronic acid (glycosaminoglycan), which are essential for the human VFM as a vibrating tissue. The MFe in newborns, infants and children were related to the growth and development of the human VFM. CONCLUSION: Human MFe including VFSCs were inferred to be involved in the metabolism of EM, essential for the viscoelasticity of the human VFM, and are considered to be an important structure in the growth and development of the human VFM.
机译:目的:本研究旨在阐明黄斑韧带(MFe)在人声带粘膜(VFM)的生长和发育中的作用。方法:总结了我们目前有关人类新生儿,婴儿和儿童VFM中MFe的结果。结果:新生儿在与成人相同的部位已经有未成熟的MFe。它们由密集的声带星状细胞(VFSC)组成,而细胞外基质成分稀疏。新生儿MFe中的VFSC已经开始合成细胞外基质(EM)。在婴儿期,在MFe中合成的EM出现在VFM中,以启动人VFM的三维细胞外基质结构的形成。在儿童时期,包括VFSC在内的MFe继续合成EM,例如胶原蛋白,网状和弹性纤维以及透明质酸(糖胺聚糖),这对于人VFM作为振动组织是必不可少的。新生儿,婴儿和儿童中的MFe与人类VFM的生长和发育有关。结论:包括VFSCs在内的人类MFe被推断参与EM的代谢,这对人类VFM的粘弹性至关重要,并且被认为是人类VFM生长发育的重要结构。

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