Metabolic Probing of Sialylated Glycoconjugates with Fluorine-Selenol Displacement Reaction (FSeDR).

IF 4.3 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY ACS Bio & Med Chem Au Pub Date : 2024-12-09 eCollection Date: 2025-02-19 DOI:10.1021/acsbiomedchemau.4c00084
Yue Zhao, Zhigang Lyu, Benjamin Prather, Todd R Lewis, Jinfeng Kang, Rongsheng E Wang
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Abstract

Dysregulated sialic acid biosynthesis is characteristic of the onset and progression of human diseases including hormone-sensitive prostate cancer and breast cancer. The sialylated glycoconjugates involved in this process are therefore important targets for identification and functional studies. To date, one of the most common strategies is metabolic glycoengineering, which utilizes N-acetylmannosamine (ManNAc) analogues such as N-azidoacetylmannosamine (ManNAz) to hijack sialic acid biosynthesis and label the sialylated glycoconjugates with "click chemistry (CuAAC)" tags. Yet, current chemical modifications including those CuAAC-based alkyne/azide tags are still big in size, and the resulting steric hindrance perturbs the mannosamine and sialic acid derivatives' recognition and metabolism by enzymes involved in biosynthetic pathways. As a result, the peracetylated ManNAz has compromised incorporation to sialic acid substrates and manifests cellular growth inhibition and cytotoxicity. Herein, we show that the α-fluorinated peracetylated analogue ManN(F-Ac) displayed a satisfying safety profile in mammalian cell lines at concentrations as high as 500 μM. More importantly, aliphatic selenol-containing probes can efficiently displace α-fluorine in fluoroacetamide-containing substrates including ManN(F-Ac) at a neutral pH range (∼7.2). The combined use of peracetylated ManN(F-Ac) and the dethiobiotin-selenol probe as the fluorine-selenol displacement reaction (FSeDR) toolkit allowed for successful metabolic labeling of sialoglycoproteins in multiple prostate and cancer cell lines, including PC-3 and MDA-MB-231. More sialoglycoproteins in these cell lines were demonstrated to be labeled by FSeDR compared with the traditional CuAAC approach. Lastly, with FSeDR-mediated metabolic labeling, we were able to probe the cellular expression level and spatial distribution of sialylated glycoconjugates during the progression of these hormone-sensitive cancer cells. Taken together, the promising results suggest the potential of the FSeDR strategy to efficiently and systematically identify and study sialic acid substrates and potentially empower metabolic engineering on a diverse set of glycosylated proteins that are vital for human diseases.

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氟-硒醇置换反应(FSeDR)对唾液化糖缀合物的代谢探测。
唾液酸生物合成失调是包括激素敏感性前列腺癌和乳腺癌在内的人类疾病发生和发展的特征。因此,参与这一过程的唾液化糖缀合物是鉴定和功能研究的重要目标。迄今为止,最常见的策略之一是代谢糖工程,它利用n -乙酰甘露糖胺(ManNAc)类似物,如n -叠氮酰基甘露糖胺(ManNAz)来劫持唾液酸的生物合成,并用“点击化学(CuAAC)”标签标记唾液酸化的糖缀合物。然而,目前包括基于cuaac的炔/叠氮化物标签在内的化学修饰仍然很大,所产生的空间位阻干扰了甘醇胺和唾液酸衍生物在生物合成途径中被酶识别和代谢。结果,过乙酰化的甘露聚糖与唾液酸底物的结合受到损害,并表现出细胞生长抑制和细胞毒性。本研究表明,α-氟化过乙酰化类似物ManN(F-Ac)在500 μM浓度的哺乳动物细胞系中表现出令人满意的安全性。更重要的是,脂肪族含硒醇探针可以在中性pH范围(~ 7.2)下有效地取代含氟乙酰胺底物(包括ManN(F-Ac))中的α-氟。结合使用过乙酰化ManN(F-Ac)和去硫代生物素-硒醇探针作为氟-硒醇置换反应(FSeDR)工具包,可以成功地对多种前列腺和癌细胞系(包括PC-3和MDA-MB-231)中的唾液糖蛋白进行代谢标记。与传统的CuAAC方法相比,FSeDR在这些细胞系中被标记的唾液糖蛋白更多。最后,通过fsedr介导的代谢标记,我们能够在这些激素敏感的癌细胞的发展过程中探测唾液化糖缀合物的细胞表达水平和空间分布。综上所述,这些有希望的结果表明FSeDR策略具有有效和系统地识别和研究唾液酸底物的潜力,并有可能在多种对人类疾病至关重要的糖基化蛋白上进行代谢工程。
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来源期刊
ACS Bio & Med Chem Au
ACS Bio & Med Chem Au 药物、生物、化学-
CiteScore
4.10
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0
期刊介绍: ACS Bio & Med Chem Au is a broad scope open access journal which publishes short letters comprehensive articles reviews and perspectives in all aspects of biological and medicinal chemistry. Studies providing fundamental insights or describing novel syntheses as well as clinical or other applications-based work are welcomed.This broad scope includes experimental and theoretical studies on the chemical physical mechanistic and/or structural basis of biological or cell function in all domains of life. It encompasses the fields of chemical biology synthetic biology disease biology cell biology agriculture and food natural products research nucleic acid biology neuroscience structural biology and biophysics.The journal publishes studies that pertain to a broad range of medicinal chemistry including compound design and optimization biological evaluation molecular mechanistic understanding of drug delivery and drug delivery systems imaging agents and pharmacology and translational science of both small and large bioactive molecules. Novel computational cheminformatics and structural studies for the identification (or structure-activity relationship analysis) of bioactive molecules ligands and their targets are also welcome. The journal will consider computational studies applying established computational methods but only in combination with novel and original experimental data (e.g. in cases where new compounds have been designed and tested).Also included in the scope of the journal are articles relating to infectious diseases research on pathogens host-pathogen interactions therapeutics diagnostics vaccines drug-delivery systems and other biomedical technology development pertaining to infectious diseases.
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