Department of Plant Pathology and Microbiology, Texas A&M University, College Station, Texas 77843.
Mycologia. 2023 Jul-Aug;115(4):456-469. doi: 10.1080/00275514.2023.2202689. Epub 2023 May 17.
Filamentous fungi produce specialized cells called hyphae. These cells grow by polarized extension at their apex, which is maintained by the balance of endocytosis and exocytosis at the apex. Although endocytosis has been well characterized in other organisms, the details of endocytosis and its role in maintaining polarity during hyphal growth in filamentous fungi is comparatively sparsely studied. In recent years, a concentrated region of protein activity that trails the growing apex of hyphal cells has been discovered. This region, dubbed the "endocytic collar" (EC), is a dynamic 3-dimensional region of concentrated endocytic activity, the disruption of which results in the loss of hyphal polarity. Here, fluorescent protein-tagged fimbrin was used as a marker to map the collar during growth of hyphae in three fungi: , and . Advanced microscopy techniques and novel quantification strategies were then utilized to quantify the spatiotemporal localization and recovery rates of fimbrin in the EC during hyphal growth. Correlating these variables with hyphal growth rate revealed that the strongest observed relationship with hyphal growth is the distance by which the EC trails the apex, and that measured endocytic rate does not correlate strongly with hyphal growth rate. This supports the hypothesis that endocytic influence on hyphal growth rate is better explained by spatiotemporal regulation of the EC than by the raw rate of endocytosis.
丝状真菌产生专门的细胞,称为菌丝。这些细胞通过其顶端的极化延伸来生长,顶端的平衡通过内吞作用和外排作用来维持。尽管内吞作用在其他生物体中已经得到了很好的描述,但内吞作用的细节及其在丝状真菌菌丝生长过程中维持极性的作用相对研究较少。近年来,人们发现了一个在菌丝细胞生长的顶端后面跟踪的蛋白质活性集中区域。这个区域,被称为“内吞环”(EC),是一个集中的内吞作用的三维区域,其破坏会导致菌丝极性的丧失。在这里,荧光蛋白标记的 fimbrin 被用作标记物,以在三种真菌: 、 和 中绘制菌丝生长过程中的环。然后,使用先进的显微镜技术和新的定量策略来定量在菌丝生长过程中 fimbrin 在 EC 中的时空定位和恢复率。将这些变量与菌丝生长速率相关联表明,与菌丝生长速率最密切相关的是 EC 跟踪顶端的距离,而测量的内吞作用速率与菌丝生长速率没有很强的相关性。这支持了这样一种假设,即内吞作用对菌丝生长速率的影响可以通过 EC 的时空调节来更好地解释,而不是通过内吞作用的原始速率来解释。