One February night in 1966, out of curiosity, he clipped the electrodes of a polygraph machine to a plant and watered it. To his surprise, the plant responded.
The electrical signature was similar to what he had seen countless times before, resembling how a person would feel when they are happy or excited. The plant was apparently happy after being watered.
Backster considered burning a leaf to see the plant’s reaction. Even before he struck a match, however, the polygraph needle jolted across the page, tracing a line similar to the human response to fear or stress.
Backster wanted to run out into the street yelling, “Plants can think!”
The prevailing view among scientists contradicted his claim that plants are conscious. Backster faced intense backlash for his work. Experiments failed to yield reproducible results in subsequent testing.
However, the rejection didn’t conclude that plants were inert. Rather, science continued to focus on more modest phenomena, something that it could recognize, verify, and reproduce.
Communicating Without Words
While plants lack neurons, they still readily communicate, including relaying danger cues.
When a caterpillar bites a plant, it releases a molecule known as glutamate—the same neurotransmitter used in humans’ nervous system. Glutamate triggers wound-related signaling throughout the plant. Its release primes undamaged parts for defense against pests.
Making Decisions and Emitting Sounds
Inside the trap are tiny trigger hairs. When touched once, nothing happens. A second touch within 15 to 20 seconds causes it to snap shut.
Even with the trap closed, the plant doesn’t start digesting immediately—it waits to confirm if it caught something alive. The plant tracks movement inside the trap as the insect struggles, repeatedly activating the trigger hairs. Once these hairs are stimulated about five times, the plant decides to activate enzymes to digest its prey.
The Venus flytrap effectively keeps a count and uses that information to make a real decision, despite having no brain to perform this task.
What else can you do once you know how to count? Gamble.
Researchers tested whether peas preferred a stable or a less predictable resource by observing how the plant invested in its root growth. When the pot with a constant nutrient supply offered enough for survival, the plants played it safe and directed more root growth toward that dependable source. But when that reliable supply was too low for survival, the plant took a risk and shifted toward the pot with an unpredictable nutrient supply—effectively favoring a risky possibility of obtaining enough resources over the certainty of scarcity.
Researchers concluded that plants have “risk sensitivity”—this is logic similar to that an investor uses.
Research has found that plants can also be vocal and whine when stressed. So a woodland quiet to us may be loud to many other life forms.
The emitted sounds were specific enough that a machine-learning model could use them to determine whether a plant was dried out or cut.
To us humans, a forest might sound silent, but to other ears, it may be quite loud.
Memory Without a Brain
Her team dropped a potted Mimosa a short distance onto a cushion, producing a mild but harmless disturbance. At first, the Mimosa folded its leaves after each drop. After several drops, however, the response diminished, and the plant stopped reacting, suggesting that it had learned to stop expending energy on a harmless stimulus.
However, when exposed to a different, unfamiliar stimulus, the plant folded again. Moreover, when the plant was tested weeks later, the effect persisted, suggesting a form of retained memory lasting nearly a month.
The authors conclude that: “the process of remembering may not require the conventional neural networks and pathways of animals; brains and neurons are just one possible, undeniably sophisticated, solution, but they may not be a necessary requirement for learning.”
What If ‘Mind’ Is Too Small a Word?
Disagreement in this field is partly empirical but also conceptual.
Few researchers would dispute that plants sense their surroundings, communicate chemically, transmit electrical signals, and adapt and develop according to changing conditions. The dispute begins when those capacities are described as “intelligence” or “consciousness.”
The skeptics somewhat argue in a circle. If consciousness is defined as something that brains produce, then concluding that brainless organisms don’t possess it simply restates the definition. Perhaps we don’t need to define the term so narrowly nor define it from scratch. Let’s look at the past.
Between Machine and Mind
Historical ideas may help clarify, if not settle, the modern debate.
Around 2,400 years ago, Aristotle didn’t view plants as conscious creatures, but he also didn’t treat them as inert, lifeless objects. He called them “threptikē psychē”—a vegetative soul—neither mind nor feelings, but an inner principle of growth and survival.
Classical Chinese thought offers a parallel in ziran (自然), often translated into English as “nature,” but really meaning something closer to “self-so”: the way something unfolds from a being’s own nature without requiring a conscious agent behind it. A root finding water or a leaf reaching for light—the action is its own, the agency is there in the unfolding.
We gradually lost that middle category between “mechanical object” and “conscious mind,” and the debate over plants continues.
It’s not necessarily that ancient philosophers proved plants are conscious. As humans, we have an intuitive gut sense that we need a brain in order to have an inner sense of our own belief and not something that’s ever been tested.
Backster spent the rest of his life convinced that plants have a secret inner life. The science that followed complicated some of his findings. Yet he was right to be astonished. He looked at the houseplant nobody noticed and asked whether anyone was home.
The honest answer is that we still don’t fully know. Plants may have no minds, or they may possess the kind that remains beyond our understanding.


















