Mycorrhizal Infrastructure Map
a-hidden-infrastructure.spun.earth
a-hidden-infrastructure.spun.earth
> We then used these observations to train a machine learning model. The model was built using dozens of geospatial environmental layers, including climate, vegetation, soils, and land use. By learning how measured hyphal density varied across these environmental conditions, the model allowed us to predict the density of AM fungal networks across Earth’s terrestrial ecosystems at a fine spatial resolution of approximately 1 km². We also used spatial uncertainty analyses, including bootstrapping, to understand where predictions were more or less certain.
This is absolutely mindblowing work! One of the best things I've ever seen on the internet. I only wish it was granular enough to help identify mother trees[0] in individual forests
[0] https://www.scientificamerican.com/article/mother-trees-are-...
Naturally, plants get over 80% of their phosophorus from mycorrhizal fungi. They typically exhaust the immediately available stock near their roots before they start exuding the hormones that start the mycorrhizal association. Fertilizers (phosphorus being the most common) interrupt this natural chemical handshake.
Tilling, allowing soil to go fallow with no cover crops, and heavy machinery—especially when used in combination—are also well documented to be extremely destructive to soil microbiology.
The central valley is especially heartbreaking because just a few hundred years ago it was home to Tulare Lake which was the largest freshwater lake west of the Mississippi River. It was dried up to strip native Californians of a vital source of food and lifeways (though it occasionally reappears when we get historic rainfalls).
One of the biggest problems with the central valley today is high salinity (partly due to fertilizer use). The lake used to naturally manage its salinity with halophytic flora and periodic high-water flushing
Imagine that.