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L-System model for the growth of arbuscular mycorrhizal fungi both within and outside of their host roots

机译:L系统模型用于在其根部内外的丛枝菌根真菌生长

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摘要

Development of arbuscular mycorrhizal fungal colonization of roots and the surrounding soil is the central process of mycorrhizal symbiosis, important for ecosystem functioning and commercial inoculum applications. To improve mechanistic understanding of this highly spatially and temporarily dynamic process, we developed a three-dimensional model taking into account growth of the roots and hyphae. It is for the first time that infection within the root system is simulated dynamically and in a spatially resolved way. Comparison between data measured in a calibration experiment and simulated results showed a good fit. Our simulations showed that the position of the fungal inoculum affects the sensitivity of hyphal growth parameters. Variation in speed of secondary infection and hyphal lifetime had a different effect on root infection and hyphal length, respectively, depending on whether the inoculum was concentrated or dispersed. For other parameters (branching rate, distance between entry points), the relative effect was the same independent of inoculum placement. The model also indicated that maximum root colonization levels well below 100%, often observed experimentally, may be a result of differential spread of roots and hyphae, besides intrinsic plant control, particularly upon localized placement of inoculum and slow secondary infection.
机译:根和周围土壤的丛枝菌根真菌定植发展是菌根共生的主要过程,对生态系统功能和商业接种应用至关重要。为了提高对这种高度空间和暂时动态过程的机械理解,我们开发了一个考虑根和菌丝生长的三维模型。根系统内的感染是首次动态模拟并以空间解析的方式进行模拟。在校准实验中测量的数据与模拟结果之间的比较显示出很好的拟合度。我们的模拟显示真菌接种物的位置会影响菌丝生长参数的敏感性。继发感染速度和菌丝寿命的变化对根部感染和菌丝长度的影响分别不同,这取决于接种物是集中还是分散。对于其他参数(分支速度,入口点之间的距离),相对效果是相同的,与接种物的放置无关。该模型还表明,通常通过实验观察到的最大根定植水平远低于100%,这可能是根与菌丝差异扩散的结果,除了固有的植物控制,特别是在局部接种接种和缓慢的继发感染后。

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