Technische Universität Dresden
Mathematical and Experimental Investigation of Yeast Colony Development – A Model System for the Growth of Filamentous Fungi in Heterogeneous Environments
Abstract
dc:description.abstractIn the presented study, dimorphic yeasts were applied as model organisms to study the growth of fungal mycelia. When environmental conditions are chosen appropriately, yeast colonies are built up of well separated individual cells. Thus, in contrast to fungal mycelia the translocation of nutrients and information within the colony can be neglected. The study focuses on the question of how the growth behaviour of a population of single cells is regulated, and which differences can be expected when nutrient translocation actually occurs. To answer this question, at first, an effective method for the highly resolved estimation of biomass distributions inside the colonies was developed. This method facilitates a dynamic non-invasive monitoring of colony development. Furthermore, mathematical models were established which describe the development of the colonies based on the behaviour of discrete individual cells. Growth simulations allow a quantitative prediction, and, thereby, an in silico testing of hypothetic regulatory mechanisms. The growth behaviour of yeast colonies was investigated applying the model organisms Candida boidinii and Yarrowia lipolytica. The yeasts were cultivated on solid agar substrates at various degrees of carbon and nitrogen limitation, respectively. The highest gain of understanding was achieved for the growth of both yeasts on glucose as the limiting carbon source: Investigations showed that mycelial yeast colonies adapt to declining nutrient concentrations by decreasing the cell density in their mycelium while the growth rate of the colony diameter remains constant. Under glucose limitation, the yeast C. boidinii grows diffusion-limited, i.e., the growth of the population is controlled by the amount of nutrient that diffuses towards the colony. The cessation of growth coincides with the depletion of the primary nutrient source glucose from the growth substrate. In contrast to these findings, it was shown that Y. lipolytica colonies continue to extend even after the complete consumption of glucose. In the absence of the primary nutrient source, the yeast assimilates biomass from the inner colony regions to facilitate the growth of the population. The suggested mechanism of coupled extension and decay processes was verified by a number of experiments. However, the mechanism which facilitates the transport of decay products to the growing colony boundary, i.e., the actual nature of the decay process, remains unclear. Mathematical simulations show that a continuous colony extension on the decay products of dying cells cannot be explained by the assumption that colonies are built up of uncoordinatedly growing single cells. Therefore, a hypothesis for the growth of Y. lipolytica colonies was derived which suggests that these populations are built up of tube-like hyphal cells. Accordingly, the measured drop of biomass density in the inner colony areas is the consequence of a cytoplasm transport towards the growing edge of the mycelium where it is assimilated as a secondary nutrient resource in the absence of glucose. It has to be emphasized that this hypothesis also provides a mechanistic explanation for the vacuolisation of hyphae in mycelia of higher fungi.
Degree
thesis:*- Level thesis:degree_level
- thesis.doctoral
- Grantor dc:publisher
- Technische Universität Dresden
- Year
- 2004
Author and committee
dc:creator, dc:contributor.*- Author dc:creator
-
- Walther, Thomas
- Contributors dc:contributor
-
- Bley, Thomas
- King, Rudibert
- Deutsch, Andreas