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: It's one of the origins-of-life chicken-or-egg problems: How could RNA have helped give rise to the first cells before there were cells to contain it? Without the compartmentalization of a cell, it would have been extremely difficult for these vulnerable molecules to have found enough of each other in the proverbial primordial soup, let alone survive the harsh conditions of the early Earth.
The answer could lie in RNA's ability to assemble into liquid-like droplets, or condensates. These membraneless compartments could have concentrated RNA molecules, increasing opportunities for them to interact and potentially sheltering them from a hot and acidic environment. Now, a new study led by the University at Buffalo is shedding light on what makes RNA particularly adept at forming these droplets.
Published July 31 in Nature Communications under the journal's early access guidelines, the study found that a tiny chemical difference between RNA and DNA helps explain why RNA more readily organizes into droplets when temperatures rise—and why those droplets are more prone to becoming rigid, gel-like networked structures. "These findings reveal, for the first time, how remarkably small changes in molecular chemistry can control the emergence of much larger, self-organized biomolecular structures like RNA condensates," says lead corresponding author Priya R. Banerjee, PhD, Twentieth Century Club Professor in the UB Department of Physics.
"They could allow us to eventually address even deeper questions, like whether these condensates helped bridge the gap between simple molecules and the earliest forms of life." The study was done in collaboration with Jerelle Joseph, PhD, assistant professor of chemical and biological engineering at Princeton University. It was supported by the National Institutes of Health, the National Science Foundation and Hypothesis Fund. The work is part of Banerjee's research related to RNA world theory, which suggests that RNA played a central role in the origin of life on Earth.
RNA molecules can both carry genetic information and catalyze chemical reactions, which could have allowed them to perform the chemistry that eventually gave rise to DNA, proteins and the first cells. But RNA world theory faces fundamental questions, including how unstable RNA could have persisted under harsh prebiotic conditions and how enough RNA molecules could have become concentrated in one place to interact before cells existed. RNA droplets could provide an answer.
A 2023 study led by Banerjee found that RNA has a tendency to organize itself into liquid-like droplets under high temperatures. Building on that work, the current study compared RNA's droplet-forming abilities with single-stranded DNA containing essentially the same sequences. In their experiments, Banerjee's group showed that RNA began forming droplets at temperatures roughly 10 degrees Celsius lower than the corresponding DNA, showing that RNA had a stronger tendency to condense.
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