Laboratoire de Physiologie Cellulaire et Végétale, CNRS, CEA, INRAE, Univ. Grenoble Alpes, IRIG, CEA Grenoble, Grenoble, France.
Methods Mol Biol. 2024;2776:205-230. doi: 10.1007/978-1-0716-3726-5_13.
In plants and algae, the glycerolipidome changes in response to environmental modifications. For instance, in phosphate starvation, phospholipids are degraded and replaced by non-phosphorus lipids, and in nitrogen starvation, storage lipids accumulate. In addition to the well-known applications of oil crops for food, algae lipids are becoming a model for potential applications in health, biofuel, and green chemistry and are used as a platform for genetic engineering. It is therefore important to measure accurately and quickly the glycerolipid content in plants and algae. Here we describe the methods to extract the lipid and quantify the fatty acid amount of the lipid extract and the different lipid classes that are present in these samples.
在植物和藻类中,甘油脂组会响应环境变化而发生改变。例如,在磷酸盐饥饿的情况下,磷脂会被降解,由非磷脂类物质取代,而在氮饥饿的情况下,储存的脂质会积累。除了人们熟知的油料作物在食品方面的应用之外,藻类脂质也正在成为健康、生物燃料和绿色化学潜在应用的模型,并被用作遗传工程的平台。因此,准确、快速地测量植物和藻类中的甘油脂含量非常重要。在这里,我们描述了提取脂质并定量分析脂质提取物中脂肪酸含量以及这些样品中存在的不同脂质种类的方法。