Senator Frank R. Lautenberg Environmental Health Sciences Laboratory, Department of Environmental Medicine and Public Health, Icahn School of Medicine at Mount Sinai, New York, NY, 10029, USA.
Senator Frank R. Lautenberg Environmental Health Sciences Laboratory, Department of Environmental Medicine and Public Health, Icahn School of Medicine at Mount Sinai, New York, NY, 10029, USA.
Chemosphere. 2023 Jul;329:138673. doi: 10.1016/j.chemosphere.2023.138673. Epub 2023 Apr 11.
The regular incremental secretion of enamel and dentine can be interrupted during periods of stress resulting in accentuated growth lines. These accentuated lines, visible under light microscopy, provide a chronology of an individual's stress exposure. Previously, we showed that small biochemical changes along accentuated growth lines detected by Raman spectroscopy, coincided with the timing of medical history events and disruptions of weight trajectory in teeth from captive macaques. Here, we translate those techniques to study biochemical changes related to illness and prolonged medical treatment during early infancy in humans. Chemometric analysis revealed biochemical changes related to known stress-induced changes in circulating phenylalanine as well as other biomolecules. Changes in phenylalanine are also known to affect biomineralization which is reflected in changes in the wavenumbers of hydroxyapatite phosphate bands associated with stress in the crystal lattice. Raman spectroscopy mapping of teeth is an objective, minimally-destructive technique that can aid in the reconstruction of an individual's stress response history and provide important information on the mixture of circulating biochemicals associated with medical conditions, as applied in epidemiological and clinical samples.
釉质和牙本质的常规递增分泌在压力期间可能会中断,导致生长线加剧。这些明显的生长线在光镜下可见,为个体的应激暴露提供了一个时间顺序。此前,我们通过拉曼光谱检测到的沿明显生长线的小生化变化表明,与圈养猕猴牙齿中医疗史事件的时间和体重轨迹的中断一致。在这里,我们将这些技术转化为研究与人类婴儿早期疾病和长期医疗相关的生化变化。化学计量学分析揭示了与循环苯丙氨酸以及其他生物分子已知的应激诱导变化相关的生化变化。苯丙氨酸的变化也已知会影响生物矿化,这反映在与晶格中的应激相关的羟基磷灰石磷酸盐带的波数变化上。牙齿的拉曼光谱成像技术是一种客观的、非破坏性的技术,可以帮助重建个体的应激反应史,并提供与医疗条件相关的循环生物化学物质混合物的重要信息,如在流行病学和临床样本中的应用。