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Pigment found in beets linked to plants' adaptation to harsh environments

Pigment found in beets linked to plants' adaptation to harsh environments

phys.org 03.09.2026 20:00 1 views
The pigments that give beets their red color may have helped a major group of flowering plants repeatedly adapt to dry environments, setting the stage for the evolution of traits that allowed plants to adapt to some of t

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: The pigments that give beets their red color may have helped a major group of flowering plants repeatedly adapt to dry environments, setting the stage for the evolution of traits that allowed plants to adapt to some of the harshest environments on Earth, according to a University of Michigan study. The pigment, called betalain, is produced only by species in the flowering plant group Caryophyllales, which also has many drought-tolerant species.

Previously, researchers noted a link between plants that produce betalain and their ability to tolerate drought. Prior work has also shown that conditions that stress plants, such as exposure to salt, drought and intense ultraviolet light, cause them to produce more of the pigment. A study led by recent U-M postdoctoral researcher Tom Carruthers shows that betalain likely underpinned drought tolerance in Caryophyllales, allowing plants to evolve drought specializations such as succulence—thick, fleshy leaves and stems in which a plant stores water.

"Succulence is a really costly adaptation in most cases: You have these really thick leaves that you're filling with water, and there are a lot of costs associated with that," said Carruthers, who is now at University College Dublin. "It's likely that betalains are enabling plants to start to inhabit these dry conditions, and that's subsequently leading to succulents evolving." The group also found that the pigment evolved independently in several different species early in the plant group's evolution—something that was of particular interest to the researchers, according to study co-author and U-M scientist Stephen Smith. "One thing that has always struck me about Caryophyllales is how many different lineages have independently evolved to live in extremely dry environments.

We wanted to understand whether traits had made those repeated transitions possible," said Smith, professor of ecology and evolutionary biology. "Betalains stood out because they are unusual, they occur only in this group of flowering plants, and they repeatedly appear in lineages that have made that transition into arid environments. That made us wonder whether betalains were not simply associated with drought tolerance, but actually helped create the conditions that allowed other drought adaptations to evolve." Their results are published in the journal New Phytologist.

To examine the role of betalain in drought-resistant plants, the researchers first created an evolutionary tree for Caryophyllales, including about 4,500 of the group's species. The researchers ensured the evolutionary tree included species from across the breadth of Caryophyllales and fossil species that existed in the past. They then grouped the species according to whether they did or did not produce betalains, were or were not succulent, and were or were not drought tolerant.

The researchers then reconstructed the evolution of betalains, succulence and drought tolerance. "When we did that, we showed that the evolution of betalains across Caryophyllales is really closely associated with drought tolerance, and betalain pigmentation seems to be gaining at a much higher rate on lineages that go on to be drought tolerant," Carruthers said. Carruthers said betalain pigments may work by soaking up harmful metabolic byproducts that plants produce when stressed—for example, when plants lack water or if photosynthesis doesn't happen properly.

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