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Quantitative chemical analysis of ocular melanosomes in stained and non-stained tissues

机译:染色和未染色组织中眼部黑素体的定量化学分析

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Energy-filtered Analytical Electron Microscopy (AEM) was used to image the ultrastructure and determine quantitatively the chemical composition of rat melanosomes of the choroid and the Retinal Pigment Epithelium (RPE). For the first time, the effect of staining in elemental analysis of melanosomes was investigated. Detection limits and accuracies of the applied methods were determined. Compared to previous work applying only quantitative Energy Dispersive X-ray microanalysis (EDX) in the TEM (Eibl, O., et al., 2006. Micron 37, 262), here we present a combined quantitative EDX and Electron Energy Loss Spectroscopy (EELS) analysis, including N. This yields the fraction of eumelanin and pheomelanin in melanosomes by the S/N mole fraction ratio. Melanosomes of the sepia ink sac, used as eumelanin standard, showed an S/N mole fraction ratio of <0.004. Thus, they consist primarily of eumelanin as reported by degradation analysis. In contrast, melanosomes of the rats contained mixed melanin with significant amounts of pheomelanin (S/N 0.02) in the RPE and the choroid. Consistent with the previous publication, it was shown that oxygen mole fractions are especially large in melanosomes (7-10 at.%) compared to other cell compartments, e.g. 2-4at.% oxygen in the cytoplasm. In the melanosomes of non-stained tissue, the oxygen mole fraction clearly correlated with the Ca mole fraction. EDX spectra used for quantitative analysis had about 15,000 net counts under the oxygen peak, which is necessary to obtain (i) a small statistical error for oxygen and (ii) optimum minimum detectable mole fractions for S, Ca and transition metals. The precise determination of the oxygen mole fraction in melanosomes is important for understanding metabolism. Therefore, a detailed analysis was carried out on the possible errors affecting quantification. While O, S, and N mole fractions yielded similar results in stained and non-stained ocular melanosomes of rats, transition metals can only be determined reliably in non-stained tissues. High-precision EDX analysis of melanosomes yielded minimum detectable mole fractions of less than 0.04 at.% for Cu and Zn, these elements were present in melanosomes with mole fractions of about 0.3 at.% and 0.1 at.%, respectively. Zn is of great importance for metabolism and for age related macular degeneration. Its mole fraction in melanosomes of rats is large enough to be detected and to be quantitatively analyzed by EDX spectroscopy. Ultrastructural information can now be correlated to the elemental composition. This is important to better understand the physical and chemical properties of melanosomal metabolism and turnover.
机译:使用能量过滤分析电子显微镜(AEM)成像超微结构并定量确定脉络膜和视网膜色素上皮(RPE)的大鼠黑素体的化学成分。首次研究了染色在黑素体元素分析中的作用。确定了检测限和所用方法的准确性。与之前在TEM中仅应用定量能量分散X射线微分析(EDX)的工作相比(Eibl,O.,et al。,2006. Micron 37,262),这里我们提出了定量的EDX和电子能量损失光谱仪( EELS)分析,包括N。通过S / N摩尔分数比,可得出黑素体中的Eumelanin和pheomelanin分数。用作Eumelanin标准品的棕褐色墨囊的黑素体的S / N摩尔分数比<0.004。因此,如降解分析所报道的,它们主要由木兰素组成。相比之下,大鼠的黑素体在RPE和脉络膜中含有混合的黑色素和大量的色氨酸(S / N 0.02)。与先前的出版物一致,已表明与其他细胞隔室例如细胞室相比,黑素体中的氧摩尔分数特别大(7-10at。%)。细胞质中有2-4at。%的氧气。在未染色组织的黑素体中,氧摩尔分数显然与Ca摩尔分数相关。用于定量分析的EDX光谱在氧峰下的净计数约为15,000,这对于获得(i)氧的小统计误差和(ii)S,Ca和过渡金属的最佳最小可检测摩尔分数是必需的。准确测定黑素体中的氧摩尔分数对于理解代谢非常重要。因此,对影响定量的可能误差进行了详细分析。尽管O,S和N摩尔分数在染色和未染色的大鼠眼黑素体中产生相似的结果,但过渡金属只能在未染色的组织中可靠地测定。对黑体的高精度EDX分析得出,Cu和Zn的最小可检测摩尔分数小于0.04 at。%,这些元素在黑体中的摩尔分数分别为约0.3 at。%和0.1 at。%。锌对于代谢和与年龄有关的黄斑变性非常重要。它在大鼠黑素体中的摩尔分数足以检测到并通过EDX光谱法进行定量分析。现在可以将超微结构信息与元素组成相关联。这对于更好地了解黑素体代谢和周转的物理和化学性质很重要。

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