Tindemans Simon H, Kern Norbert, Mulder Bela M
FOM-Institute for Atomic and Molecular Physics, Kruislaan 407, 1098 SJ Amsterdam, The Netherlands.
J Theor Biol. 2006 Feb 21;238(4):937-48. doi: 10.1016/j.jtbi.2005.07.004. Epub 2005 Aug 18.
We propose the diffusive vesicle supply center model for tip growth in fungal hyphae. The model is based on the three-dimensional vesicle supply center (VSC) model [Gierz, G., Bartnicki-García, S., 2001. A three-dimensional model of fungal morphogenesis based on the vesicle supply center concept: J. Theor. Biol. 208, 151-164], but incorporates two aspects of a more realistic vesicle delivery mechanism: vesicle diffusion from the VSC and a finite rate constant for vesicle fusion with the cell membrane. We develop a framework to describe tip growth for a general class of models based on the vesicle supply center concept. Combining this with a method for calculating the steady state distribution of diffusive vesicles we iteratively solve for stationary cell shapes. These show a blunter tip than predicted by the original VSC model, which we attribute to increased forward-directed vesicle delivery via diffusion. The predicted distance between the VSC and the utmost tip of the cell is set by the ratio between the diffusion constant and the rate constant for vesicle exocytosis. Combined with the cell radius, these define the only dimensionless parameter for our model.
我们提出了用于真菌菌丝顶端生长的扩散性囊泡供应中心模型。该模型基于三维囊泡供应中心(VSC)模型[吉尔兹,G.,巴尔蒂尼茨基 - 加西亚,S.,2001年。基于囊泡供应中心概念的真菌形态发生三维模型:《理论生物学杂志》208,151 - 164],但纳入了更现实的囊泡递送机制的两个方面:囊泡从VSC的扩散以及囊泡与细胞膜融合的有限速率常数。我们基于囊泡供应中心概念开发了一个框架来描述一类通用模型的顶端生长。将此与计算扩散性囊泡稳态分布的方法相结合,我们迭代求解静止细胞形状。这些形状显示出比原始VSC模型预测的更钝的顶端,我们将其归因于通过扩散增加的向前定向囊泡递送。VSC与细胞最顶端之间的预测距离由扩散常数与囊泡胞吐作用速率常数的比值设定。结合细胞半径,这些定义了我们模型的唯一无量纲参数。