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Nature may have a preferred tempo

From flashing fireflies to human music, many biological rhythms appear to converge on the same rhythmic range By Anirban Mukhopadhyay edited by Sarah Lewin Frasier While in Thailandโ€™s mangrove foreโ€ฆ

Nature may have a preferred tempo
Scientific American โ€” 7 September 2026
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From flashing fireflies to human music, many biological rhythms appear to converge on the same rhythmic range

While in Thailandโ€™s mangrove forests filming Pteroptyx malaccae fireflies , known for synchronized flashing, researchers noticed a coincidence: nearby crickets appeared to chirp in time with the flashing insects. โ€œI thought, whoa, could the two be interacting?โ€ says Northwestern University biophysicist Guy Amichay, lead author of a new study on the phenomenon. โ€œIt also blew my mind because itโ€™s light versus sound.โ€

A closer analysis showed that both produced signals at nearly the same tempoโ€”about 2.4 hertz, or roughly 145 beats per minute.

While the temposโ€™ extreme closeness may indeed be coincidental, a survey of animal communication studies revealed that a broader rangeโ€”around 0.5 to 4 hertz, or 30 to 240 beats per minuteโ€”appeared repeatedly across animals varying enormously in size, from fireflies and fiddler crabs to fish, birds, apes and humans.

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The researchers, who reported their findings in PLOS Biology , also screened 124 recordings from the vast wildlife sound archive xeno-canto and identified 50 species with regular rhythmic signals. These, too, clustered within the same tempo range, with a peak around 180 beats per minute.

โ€œThat there might be a common rhythm across a remarkably diverse set of species and communication systems is very intriguing indeed,โ€ says University of Amsterdam music cognition researcher Henkjan Honing, who was not involved in the study. Most popular Western music fits within this range at around 120 beats per minute (2 hertz), he adds.

Many of these species are physically capable of signaling at tempos outside this range, too. So why donโ€™t they? To answer that question, the researchers shifted their attention from signal senders to receiversโ€”because all signals are ultimately processed by nervous systems that are made up of neurons.

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