人和鸡脉络膜中的黑色素。

IF 3 2区 医学 Q1 OPHTHALMOLOGY
Christian Platzl , Alexandra Kaser-Eichberger , Andrea Trost , Clemens Strohmaier , Richard Stone , Debora Nickla , Falk Schroedl
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引用次数: 0

摘要

位于视网膜和巩膜之间的脉络膜对视网膜感光器的营养至关重要,同时也是视网膜视觉信号转化为巩膜生长信号的外斜过程中生长因子的来源。尽管如此,这些功能背后的确切控制机制仍是个谜,而昼夜节律则与之有关。这些节律归因于黑视蛋白(OPN4)驱动的日光影响。最近,在脉络膜中检测到了 OPN4-mRNA,虽然其来源不明,但我们在此试图利用形态学方法确定其基本结构。我们制备了人和鸡的脉络膜,对 OPN4、血管活性肠肽(VIP)、P 物质(SP)、CD68 和 α-平滑肌肌动蛋白(ASMA)进行了单免疫组化和双免疫组化。为了进行记录,使用了光镜、荧光镜和激光共聚焦扫描显微镜。视网膜对照证明了 OPN4 抗体在两个物种中的可靠性。在人类,脉络膜神经纤维和邻近的睫状神经纤维中检测到了 OPN4 免疫反应(OPN4-IR)。OPN4+脉络膜神经纤维缺乏VIP,但与SP共定位。在 VIP+/SP+ 的脉络膜固有神经元、迄今未分类的 CD68 阴性脉络膜细胞群(因此不代表巨噬细胞)以及脉络膜黑色素细胞亚群中进一步检测到了 OPN4 免疫反应。在鸡的脉络膜神经纤维中发现了 OPN4+,在脉络膜上层结构中进一步检测到了 OPN4-IR,这些结构没有与 ASMA 共定位,因此不代表非血管平滑肌细胞。在脉络膜基质中,许多细胞显示出 OPN4-IR,其中大部分与 VIP 无关,少数与 VIP 共定位,因此被归类为禽固有脉络膜神经元。两种鸟类的脉络膜血管中都没有 OPN4-IR 免疫反应。总之,在两种鸟类的神经纤维和细胞中都检测到了 OPN4-IR,其中一些可以确定(鸟类的 ICN 和人类的黑色素细胞),而另一些则还不能分类。尽管如此,这里描述的 OPN4+ 结构可能参与了发育、光照、热驱动或痛觉机制,正如其他系统中已知的那样,但对于脉络膜控制来说,这需要在接下来的研究中得到证实。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Melanopsin in the human and chicken choroid

The choroid embedded in between retina and sclera is essential for retinal photoreceptor nourishment, but is also a source of growth factors in the process of emmetropization that converts retinal visual signals into scleral growth signals. Still, the exact control mechanisms behind those functions are enigmatic while circadian rhythms are involved. These rhythms are attributed to daylight influences that are melanopsin (OPN4) driven. Recently, OPN4-mRNA has been detected in the choroid, and while its origin is unknown we here seek to identify the underlying structures using morphological methods.

Human and chicken choroids were prepared for single- and double-immunohistochemistry of OPN4, vasoactive intestinal peptide (VIP), substance P (SP), CD68, and α-smooth muscle actin (ASMA). For documentation, light-, fluorescence-, and confocal laser scanning microscopy was applied. Retinal controls proved the reliability of the OPN4 antibody in both species.

In humans, OPN4 immunoreactivity (OPN4-IR) was detected in nerve fibers of the choroid and adjacent ciliary nerve fibers. OPN4+ choroidal nerve fibers lacked VIP, but were co-localized with SP. OPN4-immunoreactivity was further detected in VIP+/SP + intrinsic choroidal neurons, in a hitherto unclassified CD68-negative choroidal cell population thus not representing macrophages, as well as in a subset of choroidal melanocytes. In chicken, choroidal nerve fibers were OPN4+, and further OPN4-IR was detected in clustered suprachoroidal structures that were not co-localized with ASMA and therefore do not represent non-vascular smooth-muscle cells. In the choroidal stroma, numerous cells displayed OPN4-IR, the majority of which was VIP-, while a few of those co-localized with VIP and were therefore classified as avian intrinsic choroidal neurons. OPN4-immunoreactivity was absent in choroidal blood vessels of both species.

In summary, OPN4-IR was detected in both species in nerve fibers and cells, some of which could be identified (ICN, melanocytes in human), while others could not be classified yet. Nevertheless, the OPN4+ structures described here might be involved in developmental, light-, thermally-driven or nociceptive mechanisms, as known from other systems, but with respect to choroidal control this needs to be proven in upcoming studies.

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来源期刊
Experimental eye research
Experimental eye research 医学-眼科学
CiteScore
6.80
自引率
5.90%
发文量
323
审稿时长
66 days
期刊介绍: The primary goal of Experimental Eye Research is to publish original research papers on all aspects of experimental biology of the eye and ocular tissues that seek to define the mechanisms of normal function and/or disease. Studies of ocular tissues that encompass the disciplines of cell biology, developmental biology, genetics, molecular biology, physiology, biochemistry, biophysics, immunology or microbiology are most welcomed. Manuscripts that are purely clinical or in a surgical area of ophthalmology are not appropriate for submission to Experimental Eye Research and if received will be returned without review.
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