Zecchin Annalisa, Stapor Peter C, Goveia Jermaine, Carmeliet Peter
Laboratory of Angiogenesis & Neurovascular Link, Vesalius Research Center, VIB, Leuven, Belgium; Laboratory of Angiogenesis & Neurovascular Link, Department of Oncology, KU Leuven, Leuven, Belgium.
Laboratory of Angiogenesis & Neurovascular Link, Vesalius Research Center, VIB, Leuven, Belgium; Laboratory of Angiogenesis & Neurovascular Link, Department of Oncology, KU Leuven, Leuven, Belgium.
Curr Opin Biotechnol. 2015 Aug;34:73-81. doi: 10.1016/j.copbio.2014.11.022. Epub 2014 Dec 11.
For eukaryotic cells to function properly, they divide their intracellular space in subcellular compartments, each harboring specific metabolic activities. In recent years, it has become increasingly clear that compartmentalization of metabolic pathways is a prerequisite for certain cellular functions. This has for instance been documented for cellular migration, which relies on subcellular localization of glycolysis or mitochondrial respiration in a cell type-dependent manner. Although exciting, this field is still in its infancy, partly due to the limited availability of methods to study the directionality of metabolic pathways and to visualize metabolic processes in distinct cellular compartments. Nonetheless, advances in this field may offer opportunities for innovative strategies to target deregulated compartmentalized metabolism in disease.
为了使真核细胞正常运作,它们会将细胞内空间划分为亚细胞区室,每个区室都具有特定的代谢活动。近年来,越来越清楚的是,代谢途径的区室化是某些细胞功能的先决条件。例如,这已在细胞迁移中得到证明,细胞迁移依赖于糖酵解或线粒体呼吸在细胞类型依赖性方式下的亚细胞定位。尽管令人兴奋,但该领域仍处于起步阶段,部分原因是研究代谢途径方向性和可视化不同细胞区室中代谢过程的方法有限。尽管如此,该领域的进展可能为针对疾病中失调的区室化代谢的创新策略提供机会。