Part-human part-mouse brain developed in science breakthrough
Recorded: Sept. 17, 2026, 3 a.m.
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Part-human part-mouse brain developed in science breakthrough Skip to contentWatch LiveBritish Broadcasting CorporationHomeNewsSportBusinessTechnologyHealthCultureArtsTravelEarthAudioVideoLiveDocumentariesHomeNewsUS & CanadaUKUK PoliticsEnglandN. IrelandN. Ireland PoliticsScotlandScotland PoliticsWalesWales PoliticsAfricaAsiaChinaIndiaAustraliaEuropeLatin AmericaMiddle EastIn PicturesBBC InDepthBBC VerifySportBusinessWorld of BusinessTechnology of BusinessNYSE Opening BellTechnologyWatch DocumentariesArtificial IntelligenceIntelligence RevolutionAI v the MindTech NowHealthWatch DocumentariesCultureWatch DocumentariesFilm & TVMusicArt & DesignStyleBooksEntertainment NewsArtsWatch DocumentariesArts in MotionTravelWatch DocumentariesDestinationsAfricaAntarcticaAsiaAustralia and PacificCaribbean & BermudaCentral AmericaEuropeMiddle EastNorth AmericaSouth AmericaWorld’s TableCulture & ExperiencesAdventuresThe SpeciaListTo the Ends of the Earth EarthWatch DocumentariesScienceNatural WondersClimate SolutionsSustainable BusinessGreen LivingAudioPodcast CategoriesRadioAudio FAQsVideoWatch DocumentariesBBC MaestroDiscover the WorldLiveLive NewsLive SportDocumentariesSite searchHomeNewsSportBusinessTechnologyHealthCultureArtsTravelEarthAudioVideoLiveDocumentariesWeatherNewslettersWatch LivePart-human part-mouse brain developed in science breakthrough11 hours agoShareSaveAdd as preferred on GoogleVictoria Gill,Science correspondent andKate Stephens,Senior science journalistGetty ImagesThe research has raised questions about what it means to alter the way laboratory animals think and feel Neuroscientists in the US have successfully adapted mice to have functioning human cells inside their own brains.The researchers hope that potential treatments for psychiatric and neurodevelopmental diseases that only occur in humans could now be tested on the laboratory rodents.While mice with brains that are partly human might sound like a Kafkaesque experiment, the scientists said these are not "mice that think like humans".The animals are genetically engineered - and surgically altered - so that some of their brain tissue is human. The scientists said their work, published in the journal Nature, was carried out with independent ethical scrutiny.S Pasca/StanfordIn scans of the implanted mice, researchers were able to see connections between the human brain cells and the rest of the mouse brainThe aim of this ethically complicated breakthrough was to better understand the biology of brain disorders for which there are currently no effective treatments.Some conditions cannot be studied in a mouse, simply because rodents do not develop some of the brain disorders that we do. As lead researcher Prof Sergiu Pașca from Stanford University explained in a press conference, psychiatry has "one of the lowest success rates for clinical trials"."Even drugs that actually make it to clinical trial - that seem to be working really well in animal models - fail dramatically in clinic," he said in a press conference. "That tells us we're missing a lot of information about human biology and capturing that will be essential."The Stanford researchers said that, for some complex conditions, including epilepsy, autism and cerebral palsy, it has the potential to be "transformative".Pașca said: "Here we have a new model that allows us to actually capture aspects of human brain function in a way that has not been possible before."Luis AlvarezThe hope is that this will provide a new way to investigate the biology of some human brain disordersMice without their 'grey matter'The human brain is made up of billions of cells, interconnected in millions of circuits, making it difficult to understand its development and what exactly is happening – at the cellular level - when things go wrong.While this research is not the first time human neurons have been implanted in laboratory rodents, these scientists took that approach to a new level.First, they genetically-engineered mice to develop almost none of their own cerebral cortex – that is the outer layer of the brain sometimes referred to as "grey matter". It handles higher-level thinking, memory and senses.The researchers then used skin cells taken from humans and "reprogrammed" them, so they grew into pieces of brain-like tissue. These are structures called organoids – they are not whole brains grown in dishes, more collections of connected, living cells.When these organoids were implanted into the mouse brain the cells divided and organised themselves into the animal's existing brain circuitry, connecting with the rest of the mouse's brain and spinal cord.The cortex of the implanted mice is not perfect - normal cortex forms organised, structured layers. And as neuroscientist Dr Ilary Allodi put it, scans of these human-mouse brains look "a bit messy". After a few months though, the human cells started to look and function like the outer layer of the mouse's brain.About six months after the surgery, scientists put the mice through some basic behavioural tests - observing them as they moved around a small table-top arena.Pașca said they performed "largely as [the normal] mice did"."They don't have any enhancement," he added.Dr Sarah Chan, a reader in bioethics at the University of Edinburgh who was not involved in this research, told BBC News there was "no indication that what's being created here are mice that can think like humans, or a human brain in a mouse body."But she said the study "prompts us to think about what it might mean when we start changing animal cognition"."How can we know what it's like to be one of these mice? And how do we take account of that in the ways that we treat laboratory animals," she added.'A human program in a mouse environment'Dr Ilary Allodi, a neuroscientist from St Andrews University, who was not involved in the research, said the work the scientists had done was "very impressive".In particular, Allodi pointed to the fact that cell types that are found only in human and other primate brains - not in the brains of mice – spontaneously formed in the implanted mice. "You're keeping the human program inside the mouse environment – like the mouse is an incubator," she told BBC News.These mice, which the researchers said are engineered and reared under strict ethical and welfare guidelines, will most likely be used in a small number of labs for studies of a few, very specific brain disorders. Prof James Ainge, a neuroscientist who is also at St Andrews University, pointed out that while the development was technically very impressive, these mice could be "of limited use".This, he said, was partly due to the "ethical issues of raising living human brain tissue in a mouse and what that would mean for the experience of the animal".Neuroscientists who study the human brain, Allodi pointed out, all struggle with the same limitations. 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Neuroscientists have achieved a significant breakthrough by successfully engineering mice to incorporate functioning human cells within their own brains. This research presents a novel model for investigating the biology of brain disorders for which current treatments are lacking, particularly psychiatric and neurodevelopmental conditions. The scientists noted that this progress is foundational because traditional studies using rodents often fail to capture essential biological information, as indicated by the low success rates of clinical trials for psychiatric conditions. The methodology involved genetically engineering and surgically altering mice. To create the human tissue, researchers utilized skin cells from humans, which were reprogrammed into structures known as organoids, analogous to brain-like tissue. These organoids were then implanted into the mouse brains, where they spontaneously divided and organized themselves into the animal's existing brain circuitry, connecting with the mouse's brain and spinal cord. While scans revealed connections between the human and mouse brain cells, neuroscientist Dr Ilary Allodi observed that the resulting structure was somewhat disorganized, yet after several months, the human cells began to function similarly to the outer layer of the mouse brain. The implication of this work lies in creating a system where human biological processes can be studied within an animal environment. Dr Allodi highlighted that this setup allows researchers to keep the "human program inside the mouse environment," suggesting the mouse acts as an incubator for studying human cognitive processes. Although the research was technically impressive, a caveat exists regarding the utility of these models. Prof James Ainge suggested that while the development was impressive, the mice might have "limited use" due to the profound ethical issues surrounding the raising of living human brain tissue and the unknown experience of the animals involved. Ethical considerations are central to this advancement, prompting discussions about what it means to alter animal cognition and how to account for the experience of these experimental subjects when treating human conditions. It is crucial to distinguish the achievement from implying that these animals think like humans or that the resulting structure is a complete human brain. Nevertheless, this work opens a new avenue for neuroscience by providing a method to investigate complex human brain disorders by bridging the gap between human biology and existing animal models. |