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金纳米花表面增强拉曼光谱将牛磺酸醛可视化,作为一种在癌症存活中消耗的强大抗氧化剂。

Gold-nanofève surface-enhanced Raman spectroscopy visualizes hypotaurine as a robust anti-oxidant consumed in cancer survival.

机构信息

Frontier Core-Technology Laboratories, Research & Development Management Headquarters, FUJIFILM Corporation, 577, Ushijima, Kaisei-machi, Ashigarakami-gun, Kanagawa, 258-8577, Japan.

Department of Biochemistry, Keio University School of Medicine, Tokyo, 160-8582, Japan.

出版信息

Nat Commun. 2018 Apr 19;9(1):1561. doi: 10.1038/s41467-018-03899-1.

Abstract

Gold deposition with diagonal angle towards boehmite-based nanostructure creates random arrays of horse-bean-shaped nanostructures named gold-nanofève (GNF). GNF generates many electromagnetic hotspots as surface-enhanced Raman spectroscopy (SERS) excitation sources, and enables large-area visualization of molecular vibration fingerprints of metabolites in human cancer xenografts in livers of immunodeficient mice with sufficient sensitivity and uniformity. Differential screening of GNF-SERS signals in tumours and those in parenchyma demarcated tumour boundaries in liver tissues. Furthermore, GNF-SERS combined with quantum chemical calculation identified cysteine-derived glutathione and hypotaurine (HT) as tumour-dominant and parenchyma-dominant metabolites, respectively. CD44 knockdown in cancer diminished glutathione, but not HT in tumours. Mechanisms whereby tumours sustained HT under CD44-knockdown conditions include upregulation of PHGDH, PSAT1 and PSPH that drove glycolysis-dependent activation of serine/glycine-cleavage systems to provide one-methyl group for HT synthesis. HT was rapidly converted into taurine in cancer cells, suggesting that HT is a robust anti-oxidant for their survival under glutathione-suppressed conditions.

摘要

金沉积与基于水铝氧纳米结构的对角线角度形成了名为金纳米凹(GNF)的马豆形纳米结构的随机阵列。GNF 作为表面增强拉曼光谱(SERS)激发源产生了许多电磁热点,使得能够在免疫缺陷小鼠肝脏中的人源异种移植肿瘤中以足够的灵敏度和均匀性对代谢物的分子振动指纹进行大面积可视化。GNF-SERS 信号在肿瘤和肝组织中分界明确的实质之间的差异筛选。此外,GNF-SERS 结合量子化学计算,鉴定出半胱氨酸衍生的谷胱甘肽和次牛磺酸(HT)分别为肿瘤优势和实质优势代谢物。在癌症中敲低 CD44 减少了谷胱甘肽,但不是肿瘤中的 HT。在 CD44 敲低条件下肿瘤维持 HT 的机制包括 PHGDH、PSAT1 和 PSPH 的上调,这些上调驱动糖酵解依赖性丝氨酸/甘氨酸切割系统的激活,为 HT 合成提供一个甲基。HT 在癌细胞中迅速转化为牛磺酸,表明 HT 是其在谷胱甘肽抑制条件下生存的强大抗氧化剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4513/5908798/a8848b709b6d/41467_2018_3899_Fig1_HTML.jpg

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