The Department of Biochemistry and Molecular Biology, The University of Nebraska Medical Center, Omaha, NE 68198, USA.
The Department of Biochemistry and Molecular Biology, The University of Nebraska Medical Center, Omaha, NE 68198, USA
J Cell Sci. 2018 Jul 6;131(13):jcs216499. doi: 10.1242/jcs.216499.
The early endosome (EE), also known as the sorting endosome (SE) is a crucial station for the sorting of cargoes, such as receptors and lipids, through the endocytic pathways. The term endosome relates to the receptacle-like nature of this organelle, to which endocytosed cargoes are funneled upon internalization from the plasma membrane. Having been delivered by the fusion of internalized vesicles with the EE or SE, cargo molecules are then sorted to a variety of endocytic pathways, including the endo-lysosomal pathway for degradation, direct or rapid recycling to the plasma membrane, and to a slower recycling pathway that involves a specialized form of endosome known as a recycling endosome (RE), often localized to the perinuclear endocytic recycling compartment (ERC). It is striking that 'the endosome', which plays such essential cellular roles, has managed to avoid a precise description, and its characteristics remain ambiguous and heterogeneous. Moreover, despite the rapid advances in scientific methodologies, including breakthroughs in light microscopy, overall, the endosome remains poorly defined. This Review will attempt to collate key characteristics of the different types of endosomes and provide a platform for discussion of this unique and fascinating collection of organelles. Moreover, under-developed, poorly understood and important open questions will be discussed.
早期内涵体(EE),也称为分选内涵体(SE),是细胞内物质分选的重要场所,通过内吞作用途径分选受体和脂质等货物。内涵体这一术语与这种细胞器的容器样性质有关,内吞的货物在从质膜内化后被引导到这个细胞器中。货物分子在内吞小泡与 EE 或 SE 融合后被递送到各种内吞途径,包括降解的内体溶酶体途径、直接或快速回收至质膜,以及涉及到一种特殊形式的内涵体的较慢回收途径,即再循环内涵体(RE),通常定位于核周内吞再循环隔室(ERC)。令人惊讶的是,“内涵体”在细胞中发挥着如此重要的作用,却一直没有得到准确的描述,其特征仍然模糊和异质。此外,尽管科学方法,包括在显微镜技术方面的突破取得了快速进展,但总体而言,内涵体仍然定义不明确。这篇综述将尝试总结不同类型内涵体的关键特征,并为讨论这个独特而迷人的细胞器集合提供一个平台。此外,还将讨论未开发、理解不充分和重要的开放性问题。