Engelhardt Institute of Molecular Biology, Russian Academy of Sciences, Vavilova 32, 119991 Moscow, Russia.
Institute of Higher Nervous Activity and Neurophysiology, Russian Academy of Sciences, Butlerova 5A, 117485 Moscow, Russia.
Int J Mol Sci. 2023 Mar 29;24(7):6455. doi: 10.3390/ijms24076455.
In multicellular organisms, interactions between cells and intercellular communications form the very basis of the organism's survival, the functioning of its systems, the maintenance of homeostasis and adequate response to the environment. The accumulated experimental data point to the particular importance of intercellular communications in determining the fate of cells, as well as their differentiation and plasticity. For a long time, it was believed that the properties and behavior of cells were primarily governed by the interactions of secreted or membrane-bound ligands with corresponding receptors, as well as direct intercellular adhesion contacts. In this review, we describe various types of other, non-classical intercellular interactions and communications that have recently come into the limelight-in particular, the broad repertoire of extracellular vesicles and membrane protrusions. These communications are mediated by large macromolecular structural and functional ensembles, and we explore here the mechanisms underlying their formation and present current data that reveal their roles in multiple biological processes. The effects mediated by these new types of intercellular communications in normal and pathological states, as well as therapeutic applications, are also discussed. The in-depth study of novel intercellular interaction mechanisms is required for the establishment of effective approaches for the control and modification of cell properties both for basic research and the development of radically new therapeutic strategies.
在多细胞生物中,细胞间的相互作用和细胞间通讯构成了生物体生存、系统功能、内稳态维持以及对环境做出适当反应的基础。积累的实验数据表明,细胞间通讯在决定细胞命运、分化和可塑性方面具有特别重要的意义。长期以来,人们一直认为细胞的特性和行为主要由分泌或膜结合配体与相应受体的相互作用以及直接的细胞间黏附接触决定。在这篇综述中,我们描述了最近备受关注的各种其他非经典细胞间相互作用和通讯方式,特别是广泛的细胞外囊泡和膜突。这些通讯是由大型大分子结构和功能集合介导的,我们在这里探讨了它们形成的机制,并介绍了目前揭示它们在多种生物学过程中作用的相关数据。我们还讨论了这些新型细胞间通讯在正常和病理状态下以及治疗应用中的介导作用。深入研究新型细胞间相互作用机制对于建立控制和修饰细胞特性的有效方法是必要的,无论是基础研究还是开发全新的治疗策略都需要这种方法。