While a great many animal species avoid decomposing organic matter, Chinese researchers have, for the first time, highlighted a similar mechanism in plants.
Saprotropism
In plants, there exist a number of tropisms, or growth directions triggered by external stimuli such as sunlight (phototropism) or gravity (geotropism). In work published in the journal Science, Yuzhou Zhang and colleagues documented a new one: saprotropism (“sapro” meaning rotten in Greek), a response to the presence of decomposing matter driven by the soil’s pH.
“Animals instinctively steer away from rotting food, which is more likely to harbor harmful microorganisms,” the team notes. “We therefore wanted to know whether plants, immobile, had developed a similar underground strategy.”
To investigate this, Zhang and colleagues placed small amounts of decomposing organic matter, of animal and plant origin, near the roots of actively growing plants.
Chinese researchers have found that plant roots can actively avoid areas containing decaying plant material and high concentrations of pathogens, revealing a previously unknown plant defense mechanism.
Published in the journal Science, the study revealed that fungi-driven… pic.twitter.com/dJTI4q4noI— China Science (@ChinaScience) July 15, 2026
It turned out that the roots specifically skirted the plant matter, whether fleshy parts (fruits and leaves) or woody material (wood shavings), and that this particular response was closely tied to the levels of acids produced by microorganisms such as fungi responsible for their decomposition. “When this warning signal faded, the roots ceased to avoid it,” notes Zhang.
Implications
More broadly, these findings confirm that decomposing plant matter is not merely a passive source of nutrients: it creates a chemical landscape that roots can decode. “In the case of saprotropism, they interpret the soil’s microbial activity and adapt their growth accordingly,” the researchers write.
Observing this phenomenon in the species Arabidopsis thaliana as well as cultivated plants such as canola, tomato, and wheat suggests a mechanism that is widely distributed across the plant kingdom, with implications for soil management and the resilience of crops.
“Current practices involve the excessive incorporation of undecomposed plant residues, which roots cannot always circumvent, thereby increasing disease risk,” concludes Zhang.
Earlier this year, a study revealed that plants in close contact warn one another when facing environmental stress, and that this biological communication significantly boosts their resilience.
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