Bat DNA
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The Secret to Longevity and Destroying Cancer May Hide in Bat DNA

Bat DNA may hold clues to a long and healthy life, according to an international team of researchers.

These small creatures grace the night skies with extremely long lifespans and low cancer rates—traits that may ultimately benefit humanity if scientists can figure out how bats achieve them. Now, in a recent paper published in Nature, scientists from the University of Vermont and Penn State University led an international team investigating batsimmune systems.

The paper’s crucial discovery was that bat DNA reveals the creatures encode genomic changes to handle exposure to environmental pathogens.

The Miraculous Bat

“Pathogen adaptation, longevity, and cancer resistance—they are fundamentally linked,” explained co-lead author Elise Lauterbur, an assistant professor of evolutionary biology at the University of Vermont. “Many of the genes that have adapted to viruses in bats are genes that are also involved in longevity and cancer resistance.”

Bats make an ideal study subject as they are only second to rodents in diversity, allowing scientists to study a wide variety of features in a single order.

“If you look at two bats, the same size, one lives 3 years the other lives 30 years and they are very closely related, like humans and Neanderthals, you can essentially find a very small number of genetic changes that leads to a very big change in their lifespan,” said co-lead author Juan Manuel “Manny” Vazquez, an assistant professor at Penn State University. “And that is kind of the Holy Grail for evolutionary medicine.”

The work focused on Myotis, one of the largest bat genera, whose members are found across much of the globe outside Antarctica. Eight Myotis species came under the microscope, with the team experimenting on cultured cells and analyzing their genomes. Among the species sampled were little brown bats (Myotis lucifugus), known both for their long lifespans, even among bats, and their susceptibility to the deadly white-nose syndrome, a fungal disease.

Even the researchers’ sample-collection methods were novel. They developed a technique akin to ear-piercing to collect small tissue samples from bat wings, which were then used to establish cell cultures. The team says this both spared the animals’ lives and produced more scientifically useful samples.

Bat Evolution

In their detailed examination, the researchers identified evidence of past events in which Myotis bats encountered pathogens and how adaptations to those viruses were selected for during their evolution.

Their work identified specific genomic changes, including the duplication or deletion of genes, associated with adaptation to environmental pathogens. This illuminated important differences in bats’ responses to DNA and RNA viruses compared with humans and other primates, potentially contributing to bats’ long, healthy lifespans.

Comparatively, human evolution shows stronger selection involving proteins that interact with RNA viruses like influenza, while bats show stronger selection involving proteins that interact with DNA viruses such as herpesviruses. These differences may help explain the distinct ways bats and primates have adapted to viral threats.

Cancer Resistance

The team also identified genetic mechanisms that could help explain bats’ resistance to cancer and other age-related diseases. In some cases, duplicated genes can diversify their functions, allowing different copies to perform distinct roles. According to the researchers, this may provide immune advantages that help bats combat multiple viruses while also contributing to pathways associated with longevity.

Another important finding was that while most mammals contain one copy of the immune-related gene PRKN, some bat species contain two or even three copies, suggesting that additional copies may offer evolutionary advantages. The team says this could provide important insights for future cancer research, given bats’ unusual ability to repair or eliminate damaged cells.

The research doesn’t point to immediate treatments for humans, but it does provide starting points for reconsidering human illness in the context of bat immunology and evolution.

“Everything is connected,” Vazquez concluded. “Everything uses the same shared set of biology. … We don’t have to treat all of these different problems as silos. We can now start focusing on systems like bats to understand how we can solve multiple human age-related diseases.”

The paper, “Insights into Longevity and Virus-Driven Adaptation from Myotis Bat Genomes,” appeared in Nature on August 26, 2026.

Ryan Whalen covers science and technology for The Debrief. He holds an MA in History and a Master of Library and Information Science with a certificate in Data Science. He can be contacted at ryan@thedebrief.org, and follow him on Twitter @mdntwvlf.