半氨酸S-乙化是对代谢蛋白的广泛的翻译后修改
E Keith Keenan1,2, Akshay Bareja1,3, Yannie Lam1
1Duke Molecular Physiology Institute and Sarah W. Stedman Nutrition and Metabolism Center, Duke University Medical Center, Durham, NC, USA.
npj metabolic health and disease
|November 7, 2025
概括
囊乙化是一种新发现的广泛的翻译后修饰,影响哺乳动物的代谢酶. 这项研究揭示了它的作用超出了 lysine 乙化,影响蛋白质功能和细胞局部化.
科学领域:
- 生物化学 生物化学
- 蛋白质组学是指蛋白质组学.
- 分子生物学分子生物学
背景情况:
- 蛋白质乙化,主要是在氨酸残留物上,是关键的调节机制.
- 氨酸乙化作为哺乳动物广泛的翻译后修饰的作用以前没有得到充分的描述.
研究的目的:
- 在哺乳动物组织中体内系统地表征氨酸S-乙化.
- 识别囊乙化位点并了解它们的功能和组织特异性模式.
- 用GAPDH作为模型,研究囊乙化对蛋白质功能的影响.
主要方法:
- 开发专门的样本制备技术,以保持不稳定的乙烯键.
- 定量蛋白质组分析以识别和量化氨酸乙化位点.
- 在9个小鼠组织中进行比较蛋白质组调查.
- 对糖-3-酸盐脱酶 (GAPDH) 的功能研究.
主要成果:
- 在小鼠肝脏中识别了400多个氨酸乙化位点,其丰富度与氨酸乙化相当.
- 发现了特定于组织的氨酸乙化模式,特别丰富于细胞质代谢酶.
- 证明暴露于寒冷会诱导棕色脂肪组织氨酸瘤的显著重塑.
- 证据表明,GAPDH Cys150的氨酸乙化使酶失活,并促进核局部化.
结论:
- 囊乙化是哺乳动物代谢蛋白中广泛和显著的翻译后修饰.
- 半氨酸乙化模式是动态的,组织特异的,并且对生理变化 (如暴露在寒冷中) 产生反应.
- 这种修改扩大了已知的蛋白质乙化场景,为代谢调节提供了新的见解.
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