Friday, August 07, 2026

 

Why evolution made us overconfident — the ‘peacock’s tail’ of human behavior



The costs of overconfidence help signal who can afford to sustain it, new research finds



University of Bath





Researchers at the University of Bath and The London School of Economics and Political Science (LSE) believe they may have solved a long-standing evolutionary puzzle: why do humans remain stubbornly overconfident of their own abilities– even though it leads to costly mistakes?

The study, published in the Psychological Review, suggests that overconfidence, believing you are better than you actually are, persists not despite its costs - but because of them.

The researchers argue that overconfidence may operate much like a peacock’s tail. In nature, a peacock’s elaborate plumage is a burden: heavy, energy-intensive and highly visible to predators. Yet precisely because it is costly, it serves as a reliable signal - only the healthiest individuals can afford to carry it.

According to the study, human self-belief may function in a similar way, helping to reveal otherwise hidden ability.

“Overconfidence is strikingly common and often costly,” said Professor Chris Dawson, behavioural economist at the University of Bath’s School of Management. “It contributes to failed businesses, excessive risk-taking and poor decisions. But the real puzzle is why evolution hasn’t eliminated it. Our research suggests that those costs are exactly what makes it useful.”

Overconfidence leads to decision errors and excessive risk-taking. But these costs are not evenly distributed. People with greater underlying ability tend to make fewer, or less damaging, mistakes when they hold higher self-belief.

So just as only the healthiest peacocks can sustain the largest tails, only the most capable people can consistently sustain high self-belief without suffering severe consequences. This drive to impress others leads to general overconfidence, but ensures our egos remain an informative signal of true ability.

“If there were no costs associated with overconfidence, everyone could simply inflate their claims as much as possible, and self-belief would become meaningless,” said Professor Dawson. “What keeps it credible is that holding inflated self-beliefs is less costly for the more able.”

 

More confident individuals do not only bear lower costs from greater self-belief but also greater benefits.   

 

“Confidence opens doors,” said Professor Dawson. “But once those doors are open, it is real ability that determines who succeeds. That’s why the signal works. The more confident are more likely to gain influence, achieve higher status and access valuable opportunities - from leadership roles to promotions and relationships.”

 

 

The new study builds upon a famous theory by evolutionary biologist Robert Trivers, who argued that self-deception evolved because it helps us deceive others more effectively. Trivers noted that conscious bluffing often fails to convince due to subtle behavioural cues like nervousness or vocal strain. By genuinely believing our own hype, we suppress those cues and become highly persuasive.

However, the new research addresses a critical question that Trivers left unanswered: if overconfidence is so widespread, why don’t we simply discount confident claims as cheap talk?

"Trivers showed that truly believing what you say makes you more persuasive," said Professor David de Meza, from LSE’s Department of Management. "But an unresolved question has been why people don't simply assume that confident claims are exaggerated.

“Our research answers that: self-beliefs are discounted, but unless you are overconfident, you will be underestimated. It is precisely because excessive self-belief carries a price that it can carry information. Everything hangs together because only those who genuinely have something to offer can afford to make the boldest claims."

According to Professor Dawson: “This signalling logic explains why men tend to be more overconfident than women. Historically, the sexes faced different mating incentives. While men prioritized highly visible physical cues of fertility, women prioritized traits like status, commitment, and resource acquisition. Because these qualities are harder to observe directly, they must be signalled. Overconfidence evolved as a credible way for men to signal this underlying capability.”

The study also explains loss aversion - our irrational tendency to fear losses more than we value gains. Rather than being a malfunction, the researchers argue that loss aversion acts as a hidden handbrake on overconfidence.

While this caution offsets the worst dangers, it cannot fully wipe out the costs of overconfidence - meaning the signal remains genuinely costly and credible.

"People talk confidently but act cautiously," said Professor David de Meza. "This combination lets you project a high-status image while hidden caution doesn’t completely alleviate the costs, but it keeps you from taking fatal risks.

Crucially, this caution often remains hidden, meaning it does not undermine the confident image individuals present to others.

“Overconfidence and loss aversion are a well-matched pair," said de Meza.

The findings challenge the common assumption that biases should be eliminated wherever possible. The researchers say that policies or interventions aimed at removing overconfidence and loss aversion entirely could inadvertently do more harm than good: without overconfidence, people may struggle to persuade others or seize opportunities; and without loss aversion, they may take excessive risks.

Talking the Talk, Not Walking the Walk: The Coevolution of Overconfidence and Loss Aversion is published in Psychological Review at: https://doi.org/10.1037/rev0000644.

New research finds that singlehood can be a valuable opportunity for personal growth



Being single can be a unique and meaningful opportunity for personal growth, according to new research in Personality and Social Psychology Bulletin




Society for Personality and Social Psychology





Being single can be a unique and meaningful opportunity for personal growth, according to new research in Personality and Social Psychology Bulletin

The theory of self-expansion states that in getting to know another person, you tend to incorporate their ideas and experiences into your own sense of self. Previous studies primarily focused on this concept in the context of romantic relationships, but this new research shows that people can find similar growth in non-romantic relationships as well as in solitude. 

“Many single people maintain their singlehood because it makes them feel like they have the autonomy and freedom to focus on personal goals, like hobbies, their career, and travel,” says lead author Elina Moreno, who is a graduate student at the University of Toronto, but conducted this research at Simon Fraser University with Dr. Yuthika Girme as part of the Social-Personality Undergraduate Research mentorship program. “We wondered whether single people who believe that they are able to gain new experiences because of their singlehood status benefit from this mentality.” 

Researchers asked single people to report their perceived potential for self-expansion, then monitored their behavior over time. Those who believed that singlehood offers them the opportunity to expand themselves were more likely to engage in novel activities like learning new skills, playing team sports, or dining out with friends. These participants also reported: 

  • Less fear of being single 
  • More satisfaction with their singlehood 
  • Greater feelings of autonomy, competence, and connection to others in their life 
  • More happiness overall 

What does this mean for the average single person? Your mentality matters. 

“Seizing the opportunity to try new things, meet new people, and develop new hobbies can significantly improve not only the way you feel about being single, but also how you feel about your life in general,” says Moreno. 

Researchers also found that up to 82% of single people leverage non-romantic close relationships, like family or friends, to engage in self-expanding experience. Eighteen percent of participants reported engaging in self-expanding activities in solitude, suggesting that riding solo can also be an opportunity for growth. 

The share of adults in the United States living without a romantic partner has increased in recent years, according to the Pew Research Center. Moreno notes that while some single people desire a romantic relationship, others choose to remain single in order to focus on personal or professional goals. 

The researchers would like to see future studies on this subject test whether single people’s beliefs inspire changes in their behavior or if people who are generally happier in life also tend to be more optimistic about singlehood. 

Moreno explains that their team’s findings could be misinterpreted as placing singlehood status above romantic relationships as an outlet for self-expansion. What they would like to underscore is that being single can be another opportunity for people to expand their sense of self. 

“If people want to maintain their singlehood, self-expanding experiences could be beneficial for bolstering their well-being over time and providing them with opportunities to get to know themselves,” says Moreno. “Alternatively, if a single person is seeking a romantic relationship, they could still make the most of their singlehood and experience personal growth along the way.”

 

From planning to action: Fundamental insights on movement planning in the brain




University of Freiburg






3, 2, 1 – and go! When the signal sounds, all the runners push off from their starting blocks and set off sprinting. The reason why we are able to act within fractions of a second is because we plan movements in our brains in advance, before carrying them out. At the interdisciplinary research centre BrainLinks-BrainTools at the University of Freiburg, a team of 15 researchers from the fields of biology, artificial intelligence, and neurotechnology have investigated in greater detail how the transition from mentally preparing a movement to actually executing it with one’s muscles is controlled at the neural level. In their article, published in the journal Cell Reports, the researchers now propose an improved model for understanding the neural processes involved in movement planning.

‘Thanks to this basic research, we now have a better understanding of the neural processes in the brain for controlling movements. In the long term, these findings could be used to develop treatments or aids for people with mobility impairments. For example, sensors could detect movement signals in the brain and transmit them to a smart prosthesis.’, says Prof. Dr. Ilka Diester, spokesperson of the Centre BrainLinks-BrainTools and professor of optophysiology at the Faculty of Biology, who designed the study together with Prof. Dr. Joschka Bödecker, professor of computer science at the Faculty of Engineering.

Measurement of neural activity during movement planning and execution

For the study, the researchers trained rats to move a lever with their hand until they felt a vibration and then to release it. As a reward, they received a drop of sugar water. Their neural activities were recorded during this experiment.

With regard to movement planning and execution, the rodent brain is similar to the human brain. Both contain two specific areas that become active when movements are planned and executed: the premotor and the primary motor cortex. ‘Up to now, it was unclear precisely how movement planning is coordinated between these two areas of the brain. Above all, we wondered why these two brain regions show activity even before the movement is executed and without any premature movement occurring’, explains Dr. Julian Ammer, senior researcher in Diester’s Optophysiology Research Group and one of the first authors of the study, along with Dr. Mansour Alyahyay, Dr. Gabriel Kalweit, and Hao Zhu.

The switching population hypothesis

The research team has now succeeded in demonstrating how the commands are transmitted at the neural level: During movement planning, neurons in the premotor cortex communicate with both inhibitory and excitatory neurons in the primary motor cortex. The command to execute a movement can only be given once neural activity in the premotor cortex has shifted to neurons that communicate primarily with excitatory neurons in the primary motor cortex. Only then can an external signal – in the experiment, the vibration of the lever – trigger the execution of the movement.

The assumption that this shifting pattern of neural activity enables the precise execution of a planned movement is referred to by the research team as the switching population hypothesis. The researchers propose that this hypothesis should replace the two previously dominant hypotheses.

Interdisciplinary collaboration between biology, artificial intelligence, and anatomy

The findings were made possible through interdisciplinary collaboration at the BrainLinks-BrainTools research centre at the University of Freiburg: Diester’s research group is specialized in using light signals to influence the activity of individual neurons, thus finding out what function they perform. An AI model supported the interpretation of the activity patterns and their role in the planning and execution of movement. The model was developed by Bödecker and his team specifically for this study and enabled the researchers to predict which groups of neurons influence behaviour in what way.

In addition, Prof. Dr. Andreas Vlachos, Head of the Department of Neuroanatomy at the Institute of Anatomy and Cell Biology, used electron microscope images to demonstrate the connections between the neurons in the premotor cortex and the inhibitory and excitatory neurons in the primary motor cortex at the cellular level. This supports the switching population hypothesis from an anatomical perspective.

About BrainLinks-BrainTools

The research centre BrainLinks-BrainTools at the University of Freiburg is dedicated to taking the interface between brain and technology to a new level. Interdisciplinary collaborations result in solutions that not only advance basic research, but also enable clinical applications – from the treatment of neurological diseases to the development of intelligent assistance systems.

https://uni-freiburg.de/brainlinks-braintools/

Symposium on the topic of sensorimotor transformation on 15 and 16 October

To explore how goal-directed movements in humans and animals, as well as in robots, are enabled by sensory information, BrainLinks-BrainTools is organizing the ‘International Symposium on Sensorimotor Transformation’ at the University of Freiburg on 15 and 16 October. Around 200 researchers from the fields of neuroscience, neurotechnology, artificial intelligence, and robotics are expected to attend.

View the programme of the symposium:
https://uni-freiburg.de/brainlinks-braintools/international-symposium-on-sensorimotor-transformation/

Further Information

Contact
University and Science Communications
University of Freiburg
Tel.: +49 761 203 4302
E-Mail: kommunikation@zv.uni-freiburg.de

 

How ‘smart’ hydrogel packaging tells you if your food is still fresh



By fixing a natural pigment onto a metal-organic framework, Kyushu University researchers developed a self-healing hydrogel that reliably signals spoilage through color change while extending food shelf life




Kyushu University

Conceptual illustration of a self-healing smart hydrogel 

image: 

By fixing a natural pigment onto a metal-organic framework, Kyushu University researchers developed a self-healing hydrogel that reliably signals spoilage through color change while extending food shelf life.

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Credit: Fumihiko Tanaka / Kyushu University





Fukuoka, Japan—The cuts of meat in a supermarket case can look perfectly fresh even as bacteria are already multiplying inside the package. Is there a way to know before you open it?

Researchers at Kyushu University think the packaging itself should do the telling. In a study published in Chemical Engineering Journal, they developed a soft, flexible film embedded with a natural plant pigment that shifts color as food spoils, giving consumers a visible signal without opening the package. The material can also repair its own cuts, keeping bacteria out through shipping and handling.

Freshness has a chemical signature. Meat, for example, starts mildly acidic. As bacteria multiply, they break down proteins and release alkaline compounds, so the meat’s pH climbs steadily before any visible spoilage appears.

Anthocyanins—the pigments behind the color of purple sweet potatoes and red cabbage—track that shift directly. As pH rises, they turn from purple-red to yellow-green. This change is visible to the naked eye, and their natural origin also makes them safe for food contact. However, light and heat can easily disrupt their color response, causing false readings and making them unreliable as a long-term indicator.

The team sourced their anthocyanins from purple sweet potato, an affordable and widely available crop, then ground and freeze-dried them into a powder. For stabilization, they turned to UiO66-NH₂, a metal-organic framework (MOF) known for its thermal and chemical stability.

“MOFs have attracted enormous attention because of their unique porous structures and versatile functions, and I became curious whether they could be used for something closer to everyday life, like food preservation,” recalls Xirui Yan, corresponding author of the study and a JSPS researcher at Kyushu University’s Faculty of Agriculture. “At the HOPE Meetings with Nobel Laureates, I attended Professor Susumu Kitagawa's lecture on the sustainable use of functional porous materials. His perspective inspired me to think more broadly about how MOFs could create value in food systems.”

In their design, anthocyanin molecules adsorb onto the MOF's surface through multiple chemical interactions, anchoring it in place. Fixed and less mobile, the molecules are shielded from the oxygen, light, and heat that drive degradation while remaining sensitive to pH. In food tests using pork, the protected pigment proved consistently responsive: as the meat spoiled and alkaline gases accumulated, the material shifted continuously from purple-red to yellow-green, giving a readable signal at every stage.

The team then incorporated the anthocyanin-loaded MOF into a hydrogel, producing a soft, shapeable film that is largely plant-derived and biodegradable. Beyond freshness monitoring, the material also extended the shelf life of pork by about 12 hours compared to untreated samples.

“Another interesting thing about this material is that it doesn’t just protect food—it heals itself,” notes Fumihiko Tanaka, Professor at Kyushu University’s Faculty of Agriculture. When cut and pressed back together, the damage becomes nearly invisible within minutes, and tensile strength recovers to 99% within two hours. “In conventional packaging, any crack is permanent and becomes an entry point for bacteria. This material bonds back together on its own. The wound heals, and so does its ability to protect what’s inside, which makes it more durable and reliable in practical use.”

The team is now exploring a companion smartphone app, giving manufacturers, logistics companies, and shoppers a reliable, objective way to assess food quality in real time.

“This doesn’t have to stop at food packaging,” adds Fumina Tanaka, Associate Professor at the same faculty. “Smart materials built from natural ingredients and nanotechnology may have uses we haven’t imagined yet. If anyone sees a place where this could work, we'd love to hear about it.”

###

For more information about this research, see “Self-Healing Cellulose-based Hydrogel Smart Packaging Embedded with Anthocyanin-Immobilized Metal-Organic Frameworks for Food Preservation and Freshness Monitoring,” Fanze Meng, Xirui Yan, Shinobu Yasuo, Tiantian Ma, Jiao Zeng, Donghui Luo, Tran Thi Van, Reshaka Kavindi Malawara Arachchige, Laras Putri Wigati, Phuong Thi Hang Nguyen, Ata Aditya Wardana, Fumina Tanaka, Fumihiko Tanaka, Chemical Engineering Journal, https://doi.org/10.1016/j.cej.2026.176764

 

About Kyushu University 
Founded in 1911, Kyushu University is one of Japan's leading research-oriented institutions of higher education, consistently ranking as one of the top ten Japanese universities in the Times Higher Education World University Rankings and the QS World Rankings. Located in Fukuoka, on the island of Kyushu—the most southwestern of Japan’s four main islands—Kyushu U sits in a coastal metropolis frequently ranked among the world’s most livable cities and historically known as Japan’s gateway to Asia. Its multiple campuses are home to around 19,000 students and 8,000 faculty and staff. Through its VISION 2030, Kyushu U will “drive social change with integrative knowledge.” By fusing the spectrum of knowledge, from the humanities and arts to engineering and medical sciences, Kyushu U will strengthen its research in the key areas of decarbonization, medicine and health, and environment and food, to tackle society’s most pressing issues.

 

Protecting rare orchard wildlife with new conservation project



Aberystwyth






Scientists from Aberystwyth University are helping to safeguard some of the country's rarest orchard wildlife as part of a major conservation initiative. 

The three-year project will focus on four threatened species – the noble chafer beetle, red-horned cardinal click beetle, orchard toothcrust fungus and mistletoe marble moth.   

The initiative aims to build the knowledge and skills needed to identify and monitor these species, while supporting landowners to restore and create valuable orchard habitats in which they can thrive. 

Aberystwyth University will work alongside Worcestershire Wildlife Trust, Gloucestershire Wildlife Trust, Herefordshire Wildlife Trust and the People’s Trust for Endangered Species.  

Molecular ecology experts from the University's Department of Life Sciences will use innovative techniques involving pheromones and DNA to improve monitoring of noble chafer and red-horned cardinal click beetle populations.  

The work will help provide a clearer picture of the distribution and status of these rare insects, enabling conservationists to target recovery efforts more effectively. 

Dr Niall McKeown from the Department of Life Sciences at Aberystwyth University, said: 

“This project is an exciting opportunity to generate much needed insights into old wood orchard biodiversity. We will employ genetic methods to understand the ecology of these species and their interactions with their orchard habitats, and then to use this information to ensure we can appropriately conserve these species. 

“Traditional surveys can be challenging for species that are highly elusive or occur in very small populations. Therefore, in addition to generating ecological insights we will develop tools to detect and track species, providing vital information for their long-term conservation. 

“We are delighted to be working with colleagues from the Wildlife Trusts and the People's Trust for Endangered Species on a project that will not only benefit these threatened species but also support the wider recovery of traditional orchard habitats.” 

Steve Bloomfield, Head of Conservation for Worcestershire Wildlife Trust, said 

“One in six species in the UK are at risk of extinction. With the natural world underpinning everything from clean air and water to food production, we need to give it every chance we can of bouncing back. This is a great opportunity to do just that. 

“Over the next few years we’ll not only be working with and supporting landowners to do great things for wildlife but we’ll also be undertaking some really exciting research to learn more about these rare and elusive species.” 

Traditional orchards are among the UK’s most valuable yet threatened habitats, supporting a rich variety of wildlife. Conservation work carried out through the project is expected to benefit a wide range of species in addition to the four primary targets. 

The project is one of 130 conservation initiatives receiving support through the government’s ‘Wild Again: Restoring England’s Wildlife’ programme, which is investing £60 million in the recovery of 364 threatened species. 

The initiative is funded by Natural England’s Species Recovery Programme.

 

First complete marmoset genome will enable research on Alzheimer's, neurodegenerative diseases


The new reference is one in a collection of studies on end-to-end, or “T2T,” genomes



University of California - Santa Cruz

Prajna Hebbar 

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UC Santa Cruz Biomolecular Engineering and Bioinformatics Ph.D. student Prajna Hebbar led the effort to produce the first end-to-end genome sequence of the common marmoset. 

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Credit: Carolyn Lagattuta/ UC Santa Cruz





To study complex diseases like Alzheimer’s, scientists and clinicians analyze how genes change and malfunction in other species. Marmosets, a species of tiny monkey from South America, have become an important animal to study for understanding disease—but researchers have never had a complete baseline for understanding the primate’s DNA.

Now, the first complete genome of the common marmoset is available to the scientific community, thanks to the efforts of researchers at the University of California, Santa Cruz Genomics Institute. With this resource, researchers will be able to study marmoset genetics with high accuracy and detail, revealing unseen features and enabling future insights into disease and evolution. The results are detailed in a study published today in Cell

UC Santa Cruz Ph.D. student Prajna Hebbar and Professor of Biomolecular Engineering Benedict Paten led this project as part of the Telomere-to-Telomere (T2T) Consortium, a collaborative, multi-institution effort to create high quality, truly complete reference genomes. The consortium made history in 2022 with the first complete human genome, and have continued to advance and drive down the costs of the technologies and methods needed to create complete genomes. 

The marmoset genome is one in a package of studies released today that shows that the T2T approach is becoming routine enough to be applied not just to human genomes, but to different species. This more automated process could set the stage for “personalized genomics,” where everyone’s complete genome sequence could serve as their own unique reference for medical care, at a lower cost than ever before.

“Routine T2T genomics is making findings easier and more plausible, as we’re able to much more easily access these complex regions,” Hebbar said. “It’s great to be in an era where we’re not stuck with the technical problems—we can go into the biology and make discoveries relevant to human health.”

A better reference

Marmosets are increasingly studied by scientists because as a new world primate, they are more closely related to humans than other model species like mice, while their small size makes them easier to work with than other primates like macaques. New-world primates like marmosets experience age-related memory loss, which has made them a great model for studying these conditions. 

To study the genetic makeup of a species, scientists use a standardized DNA sequence called a reference genome. By comparing individuals to this reference, they can make insights into disease, traits, and evolution.

Scientists created the first marmoset reference genome in 2014, but this version contained gaps and errors, and left several regions of the genome unresolved, making it difficult for researchers to accurately identify genetic variation. 

Thanks to new algorithms for highly accurate genome assembly pioneered by the T2T consortium, the updated reference resolves these errors and provides the first record of several complex features of the marmoset genome. The researchers used the new reference to examine genetic differences across 230 marmosets, finding variation at many of the genes linked to Alzheimer's disease in humans, and those vital to the immune system.

Alzheimer's-associated genes

Because the marmoset is increasingly relevant as a model for studying neurodegenerative diseases, the researchers specifically searched for a shortlist of genes known to be linked to Alzheimer’s, Parkinson’s, and related neurodegenerative diseases in humans and provided high-quality references for 76 instances of matching genes in marmosets. This will enable other scientists to study the health impacts of these genes with much higher accuracy.   

“We see variation in these marmosets in the same genes that we do in humans, further reinforcing the idea that the marmoset is a good model for studying Alzheimer’s disease in humans,” Hebbar said. “Now, we have this really complete, high-quality resource that people can take advantage of.”

Using their new reference along with transcriptomic data, which allows researchers to see which genes are “turned on” and “turned off,” the team identified previously undescribed forms of several genes, including the PSEN1 gene, which is the most frequent cause of early-onset familial Alzheimer's disease. Further study will be needed to know the significance of these discoveries, but this will only be possible thanks to the T2T reference opening up new areas for researchers to explore.

Immune system genes, sex differences, and other discoveries 

The Major Histocompatibility Complex (MHC) is a cluster of genes that underlies the immune system, and is known to influence many autoimmune and other diseases, including type 1 diabetes, multiple sclerosis, and rheumatoid arthritis. The researchers provided a complete record of the marmoset MHC region, annotating several complex, previously un-catalogued genes.

The complete genome also revealed that marmosets shuffle sets of ribosomal DNA (rDNA), a crucial subset of DNA that enables protein production, between chromosomes more freely than expected, gaining and losing whole arrays on individual chromosomes in ways not previously documented in primates.

“We also identified sex differences in the distribution of these genes, a pattern that has previously been reported in orangutans and gibbons, widening our understanding  of these genes that are extremely important to the biosynthesis of cells,” Paten said. “While these sex differences may not have an effect on the species, now that we can do T2T sequences, we’ll find out more.”

The researchers also identified patterns in the centromeres, regions of the chromosomes vital for cell division, that will warrant further study.

For Hebbar, the most exciting aspect of this project is that so much discovery is now within reach. At UC Santa Cruz, she has the opportunity to work with many of the pioneers of the first T2T human genome sequence, and has been struck by the rate of findings that she and her collaborators have been able to make about regions of the genome that researchers worked around for decades because they were too tangled and repetitive to read. 

“It’s pretty crazy that I'm doing this research in what is one of the best times to be doing your Ph.D. in genomics,” Hebbar said. “It’s cool to be part of this era where you can actually study all of these complex regions.”

UC Santa Cruz researchers involved in this effort include Associate Professor of Biomolecular Engineering Karen Miga, Hailey Loucks, Joshua Gardner, Harrison Heath, Mira Mastoras, Brandy McNulty, Julian Menendez, William Seligmann, and Ivo Violich. This research was funded by the National Institutes of Health, and collaborating institutions include the Jackson Laboratory, the University of Pittsburgh, the University of Washington, the Oregon Health & Science University, the Stowers Institute for Medical Research, and the German Primate Center.