Materials and Interfaces Research Group, Interdisciplinary Biomedical Research Centre, School of Science and Technology, Nottingham Trent University, Nottingham, UK.
Fungal Genetics and Biology Group, School of Life Sciences, University of Nottingham, University Park, Nottingham, UK.
Fungal Biol. 2024 Jun;128(4):1868-1875. doi: 10.1016/j.funbio.2024.05.010. Epub 2024 May 25.
In the development of fungal based materials for applications in construction through to biomedical materials and fashion, understanding how to regulate and direct growth is key for gaining control over the form of material generated. Here, we show how simple 'chemical food' cues can be used to manipulate the growth of fungal networks by taking Aspergillus niger as an exemplar species. Chemotrophic responses towards a range of nitrogen and carbon containing biomolecules including amino acids, sugars and sugar alcohols were quantified in terms of chemotrophic index (CI) under a range of basal media compositions (low and high concentrations of N and C sources). Growth of filamentous networks was followed using fluorescence microscopy at single time points and during growth by an AI analytical approach to explore chemo sensing behaviour of the fungus when exposed to pairs (C-C, C-N, N-N) of biomolecules simultaneously. Data suggests that the directive growth of A. niger can be controlled towards simple biomolecules with CI values giving a good approximation for expected growth under a range of growth conditions. This is a first step towards identifying conditions for researcher-led directed growth of hyphae to make mycelial mats with tuneable morphological, physicochemical, and mechanical characteristics.
在开发应用于建筑、生物医学材料和时尚的真菌基材料的过程中,了解如何调节和指导生长是控制生成材料形态的关键。在这里,我们展示了如何使用简单的“化学食物”线索来操纵真菌网络的生长,以黑曲霉为例。在一系列基础培养基组成(低浓度和高浓度的 N 和 C 源)下,根据趋化指数(CI)定量测定了对一系列含氮和含碳生物分子(包括氨基酸、糖和糖醇)的趋化反应。使用荧光显微镜在单个时间点和生长过程中跟踪丝状网络的生长,并用人工智能分析方法来探索真菌在同时暴露于一对(C-C、C-N、N-N)生物分子时的化学感应行为。数据表明,A. niger 的定向生长可以用 CI 值控制向简单的生物分子,CI 值可以很好地近似在一系列生长条件下的预期生长。这是朝着确定由研究人员主导的菌丝定向生长条件迈出的第一步,以制造具有可调节形态、物理化学和机械特性的菌丝垫。