{"id":543,"date":"2021-12-24T14:39:54","date_gmt":"2021-12-24T13:39:54","guid":{"rendered":"https:\/\/www.sciencefocus.com\/?p=107643"},"modified":"2021-12-24T14:53:12","modified_gmt":"2021-12-24T13:53:12","slug":"living-robots-that-are-capable-of-self-replicating-created-in-us-lab","status":"publish","type":"rss_feed","link":"https:\/\/c01.purpledshub.com\/bbcsciencefocus\/rss_feed\/living-robots-that-are-capable-of-self-replicating-created-in-us-lab\/","title":{"rendered":"Living robots that are capable of self-replicating created in US lab"},"content":{"rendered":"<p class=\"rssexcerpt\"><\/p><p class=\"rssauthor\">By Jason Goodyer\n                \t\t<\/p><p class=\"rssbyline\">Published: Friday, 24 December 2021 at 12:00 am<\/p><hr class=\"no-tts wp-block-separator\"\/><?xml version=\"1.0\" encoding=\"UTF-8\" standalone=\"yes\"?>\n<!DOCTYPE html PUBLIC \"-\/\/W3C\/\/DTD HTML 4.0 Transitional\/\/EN\" \"http:\/\/www.w3.org\/TR\/REC-html40\/loose.dtd\">\n<html><body><p>A team of researchers in the States have created living robots from frog cells that are able to build replicas of themselves.<\/p>\n<p>We spoke to <a href=\"\/\/skriegman.github.io\/&quot;\" target=\"&quot;_blank&quot;\" rel=\"&quot;noopener&quot; noopener noreferrer\">Sam Kriegman<\/a>, a roboticist and Postdoctoral Fellow at Harvard University and Tufts University, to find out more.<\/p>\n<h4 class=\"&quot;p1&quot;\"><span class=\"&quot;s1&quot;\">What\u2019s the starting point in designing something like this?<\/span><span class=\"&quot;s2&quot;\">.<\/span><\/h4>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">This project started out as a collaboration between developmental biologists and roboticists. Our goal was to learn about how animals grow and regenerate by building robots with similar abilities. We made our first robots out of silicone rubber, which can change shape and volume to mimic growth. From there we simply followed the scientific questions we found to be the most interesting. Our curiosity led us to the idea of building robots out of biological cells. Specifically, cells from the African clawed frog, <em>Xenopus laevis<\/em> \u2013 hence their nickname, xenobots.<\/span><\/p>\n<h4 class=\"&quot;p1&quot;\"><span class=\"&quot;s1&quot;\">So, you first designed the shapes of the xenobots using a computer simulation?<\/span><\/h4>\n<p class=\"&quot;p2&quot;\">That\u2019s correct, I built a simulation that tries to predict how cells will behave when arranged into different structures. If you look inside of the simulation you\u2019ll see a virtual petri dish containing virtual xenobots, each with its own design and unique behaviour. We run an evolutionary process of trial and error inside the simulation to find good xenobot designs.<\/p>\n<p class=\"&quot;p2&quot;\">Often the computer comes up with simple, efficient solutions that humans fail to see. It\u2019s entirely possible that human cognitive limits and biases will prevent us from ever manually designing truly useful xenobots. But, with computer software designing xenobots for us, the sky\u2019s the limit.<\/p>\n<div class=\"&quot;image-handler__container\" image-handler__container--full=\"\" style=\"&quot;padding-bottom:\" calc=\"\"> <picture><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?webp=true&amp;quality=90&amp;resize=300%2C192,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?quality=90&amp;resize=300%2C192,\" https:=\"\" type=\"&quot;image\/png&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?webp=true&amp;quality=90&amp;resize=355%2C227,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?quality=90&amp;resize=355%2C227,\" https:=\"\" type=\"&quot;image\/png&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?webp=true&amp;quality=90&amp;resize=405%2C259,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?quality=90&amp;resize=405%2C259,\" https:=\"\" type=\"&quot;image\/png&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?webp=true&amp;quality=90&amp;resize=554%2C354,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?quality=90&amp;resize=554%2C354,\" https:=\"\" type=\"&quot;image\/png&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?webp=true&amp;quality=90&amp;resize=620%2C396,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?quality=90&amp;resize=620%2C396,\" https:=\"\" type=\"&quot;image\/png&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?webp=true&amp;quality=90&amp;resize=408%2C261,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?quality=90&amp;resize=408%2C261,\" https:=\"\" type=\"&quot;image\/png&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?webp=true&amp;quality=90&amp;resize=556%2C356,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?quality=90&amp;resize=556%2C356,\" https:=\"\" type=\"&quot;image\/png&quot;\"><img class=\"&quot;wp-image-107659\" align=\"\" size-full=\"\" image-handler__image=\"\" image-handler__image--full=\"\" no-wrap=\"\" js-lazyload=\"\" data-src=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Screenshot-2021-12-21-at-14.28.56-40fbb52.png?quality=90&amp;resize=620%2C396&quot;\" width=\"&quot;620&quot;\" height=\"&quot;396&quot;\" alt=\"&quot;The\" team=\"\" used=\"\" computer=\"\" simulations=\"\" to=\"\" develop=\"\" xenobot=\"\" shapes=\"\" that=\"\" replicate=\"\" more=\"\" often=\"\" than=\"\" simple=\"\" spheres=\"\" douglas=\"\" blackiston=\"\" kriegman=\"\" title=\"&quot;Screenshot\" at=\"\"\/><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/picture><\/div><div class=\"&quot;caption-hold&quot;\"><figcaption class=\"&quot;wp-caption-text&quot;\"><span class=\"&quot;caption-copy&quot;\"><i class=\"&quot;icon-arrow\" icon-camera-circle=\"\"\/> The team used computer simulations to develop xenobot shapes that replicate more often than simple spheres \u00a9 Douglas Blackiston\/Sam Kriegman<\/span><\/figcaption><span class=\"&quot;im-image-caption&quot;\"\/><\/div>\n<h4 class=\"&quot;p1&quot;\"><span class=\"&quot;s1&quot;\">Why did you choose to build them using frog heart cells?<\/span><\/h4>\n<p class=\"&quot;p2&quot;\">We chose frog cells because that\u2019s what we had in the lab. These frogs lay thousands of eggs at a time, almost none of which survive in the wild. The next day, when the eggs are just one day old, we borrow a few to make xenobots. There\u2019s nothing much inside of the egg at this point, it\u2019s just a ball of mush \u2013 stem cells yet to take their form. There aren\u2019t any neurons or sense organs present, so we feel that this is an ethically responsible way to get our building materials. We steer the development of these cells into just two kinds of tissue \u2013 heart muscle and skin \u2013 because that\u2019s enough to create very simple xenobots.<\/p>\n<p class=\"&quot;p2&quot;\">For example, the very first xenobots we made could walk using heart cells, which contract and expand in volume like a piston, pushing the xenobot along the bottom of its dish. Our newest xenobots are made entirely of skin tissue that is covered in patches of small hairs called cilia. These hairs beat back and forth like flexible oars to propel the xenobot forward and let it swim. One of the nice properties of frog cells is that they are self-powered: they come preloaded with energy, similar to the yolk of a chicken egg, which keeps them going for weeks without needing to be recharged or fed.<\/p>\n<h4 class=\"&quot;p1&quot;\"><span class=\"&quot;s1&quot;\">How do you then produce the xenobots using the cells?<\/span><\/h4>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">Anyone with a steady hand can build a xenobot by following the instructions detailed in our published studies. All you really need is a microscope, sharp forceps, frog eggs, salt water, and a petri dish. First, we harvest specific cells from one-day-old frog eggs. If we bring enough of these cells into contact with each other they will stick together and compact into a sphere.<\/span><\/p>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">We can then carve out the computer-designed body shape by subtraction using sharpened forceps and a microcautery device that slightly burns the tissue so that it holds the desired shape. The resulting xenobot is less than a millimeter across, which is smaller than a grain of sand but visible to the naked eye as a small speck.<\/span><\/p>\n<p><strong>Read more:<\/strong><\/p>\n<ul><li><a href=\"&quot;https:\/\/www.sciencefocus.com\/future-technology\/biohybrid-design-how-to-build-a-biological-robot\/&quot;\">Biohybrid design: How to build a biological robot<\/a><\/li>\n<li><a href=\"&quot;https:\/\/www.sciencefocus.com\/news\/lip-syncing-robot-gets-one-step-closer-to-crossing-the-uncanny-valley\/&quot;\">Lip-synching robot gets one step closer to crossing the uncanny valley<\/a><\/li>\n<li><a href=\"&quot;https:\/\/www.sciencefocus.com\/news\/robotic-hybrid-heart-beats-like-a-real-organ\/&quot;\">Robotic hybrid heart beats like a real organ<\/a><\/li>\n<\/ul><h4 class=\"&quot;p1&quot;\"><span class=\"&quot;s1&quot;\">What was it like to go from the computer simulations to seeing the living xenobots?<\/span><\/h4>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">Every child dreams of building something out of Legos or Play-doh that magically becomes a walking, talking creature. So many books and movies explore this idea. The snowman in the movie Frozen, the Gingerbread Man, Pinocchio, Golem, Talos, Galatea. We have this fascination that dates back to ancient literature about bringing inanimate objects to life. Every xenobot starts out as digital computer bits \u2013 a virtual creature inside of a video game. If it exhibits interesting behaviours in the video game, we literally bring those computer bits to life. How cool is that? <\/span><\/p>\n<h4 class=\"&quot;p1&quot;\"><span class=\"&quot;s1&quot;\">So then you found that these xenobots could manufacture copies of one another?<\/span><\/h4>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">I think that is an excellent description of what\u2019s going on. We might say that they\u2019re reproducing, but reproduction in nature implies growth from a seed or an egg or a fragment of the parent. We found that if we sprinkled loose stem cells into the xenobot\u2019s dish, the xenobots would push the stem cells into piles. Piles containing at least 50 cells developed into xenobot children.<\/span><\/p>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">When we placed the children into a new dish, they acted just like their parents \u2013 they moved around and pushed loose cells into piles that developed into grandchildren. Grandchildren then build great-grandchildren, and so on. I understand that this process might sound like a party trick, but I believe it is an important scientific discovery \u2013 it\u2019s a previously unknown form of self-replication in biology that raises all kinds of new questions.<\/span><\/p>\n<div class=\"&quot;image-handler__container\" image-handler__container--full=\"\" style=\"&quot;padding-bottom:\" calc=\"\"> <picture><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?webp=true&amp;quality=90&amp;resize=300%2C225,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?quality=90&amp;resize=300%2C225,\" https:=\"\" type=\"&quot;image\/jpeg&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?webp=true&amp;quality=90&amp;resize=355%2C266,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?quality=90&amp;resize=355%2C266,\" https:=\"\" type=\"&quot;image\/jpeg&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?webp=true&amp;quality=90&amp;resize=405%2C304,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?quality=90&amp;resize=405%2C304,\" https:=\"\" type=\"&quot;image\/jpeg&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?webp=true&amp;quality=90&amp;resize=554%2C416,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(max-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?quality=90&amp;resize=554%2C416,\" https:=\"\" type=\"&quot;image\/jpeg&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?webp=true&amp;quality=90&amp;resize=620%2C465,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?quality=90&amp;resize=620%2C465,\" https:=\"\" type=\"&quot;image\/jpeg&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?webp=true&amp;quality=90&amp;resize=408%2C306,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?quality=90&amp;resize=408%2C306,\" https:=\"\" type=\"&quot;image\/jpeg&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?webp=true&amp;quality=90&amp;resize=556%2C417,\" https:=\"\" type=\"&quot;image\/webp&quot;\"><source media=\"&quot;(min-width:\" data-srcset=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?quality=90&amp;resize=556%2C417,\" https:=\"\" type=\"&quot;image\/jpeg&quot;\"><img class=\"&quot;wp-image-107655\" align=\"\" size-full=\"\" image-handler__image=\"\" image-handler__image--full=\"\" no-wrap=\"\" js-lazyload=\"\" data-src=\"&quot;https:\/\/images.immediate.co.uk\/production\/volatile\/sites\/4\/2021\/12\/Blackiston5-22c202d.jpg?quality=90&amp;resize=620%2C465&quot;\" width=\"&quot;620&quot;\" height=\"&quot;465&quot;\" alt=\"&quot;The\" smaller=\"\" spheres=\"\" shown=\"\" here=\"\" are=\"\" groups=\"\" of=\"\" stem=\"\" cells=\"\" that=\"\" have=\"\" been=\"\" compacted=\"\" together=\"\" by=\"\" ai-designed=\"\" parents=\"\" douglas=\"\" blackiston=\"\" kriegman=\"\" title=\"&quot;The\"\/><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/source><\/picture><\/div><div class=\"&quot;caption-hold&quot;\"><figcaption class=\"&quot;wp-caption-text&quot;\"><span class=\"&quot;caption-copy&quot;\"><i class=\"&quot;icon-arrow\" icon-camera-circle=\"\"\/> The smaller spheres shown here are \u2018offspring\u2019 groups of stem cells that have been compacted together by AI-designed parents \u00a9 Douglas Blackiston\/Sam Kriegman<\/span><\/figcaption><span class=\"&quot;im-image-caption&quot;\"\/><\/div>\n<h4 class=\"&quot;p1&quot;\"><span class=\"&quot;s1&quot;\">How did you make them replicate in this way?<\/span><\/h4>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">Well, you can\u2019t plug a USB cable into a xenobot yet. But we can program them in a sense by designing the parents\u2019 body shapes. As you might expect, some shapes are better at building piles than other shapes. Because their ability to replicate is tied to their ability to shovel cells into larger piles, better shovels are better replicators. The best replicator we know of is surprisingly simple \u2013 it looks like Pac-Man from the 1980s arcade game \u2013 a circular body with a single mouth cut out of its side.<\/span><\/p>\n<h4 class=\"&quot;p1&quot;\"><span class=\"&quot;s1&quot;\">Are there any future applications that you\u2019re thinking of??<\/span><\/h4>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">Given what we know about xenobots \u2013 that they are self-powered, biodegradable, very small, and aquatic \u2013 it\u2019s conceivable that they might have future underwater applications, perhaps cleaning up microplastics or other particles from lakes. They could also have medical applications further down the line. Now, you definitely do not want to inject frog cells into your body. But we could, in principle, make xenobots out of human cells instead of frog cells. <\/span><\/p>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">If we do that, then maybe someday in the future we will ingest xenobots as vehicles for intelligent drug delivery. Of course creating useful microrobotic medical devices is no easy task. If the robots look in any way like foreign invaders, they will trigger an immune response that tries to eliminate them. Think of an organ transplant that\u2019s going to save a patient\u2019s life, but their body rejects it anyway \u2013 this is a major problem in medicine. We can imagine a solution in which bespoke robots are created out of the human patient\u2019s own cells.<\/span><\/p>\n<p class=\"&quot;p2&quot;\"><span class=\"&quot;s1&quot;\">That way the body will recognise the robots as part of the team and allow them to do their job. We\u2019re nowhere near this yet, but we\u2019ve only been making xenobots for three years and they can already do some amazing things. Who knows where we\u2019ll be in 10 or 20 years.<\/span><\/p><\/body><\/html>\n<hr class=\"no-tts wp-block-separator\"\/>","protected":false},"excerpt":{"rendered":"<p>By Jason Goodyer Published: Friday, 24 December 2021 at 12:00 am A team of researchers in the States have created living robots from frog cells that are able to build replicas of themselves. We spoke to Sam Kriegman, a roboticist and Postdoctoral Fellow at Harvard University and Tufts University, to find out more. What\u2019s the [&hellip;]<\/p>\n","protected":false},"author":24,"featured_media":544,"template":"","categories":[1],"acf":{"readingTimeMinutes":"7"},"uagb_featured_image_src":{"full":["https:\/\/c01.purpledshub.com\/uploads\/sites\/42\/2021\/12\/living-robots-that-are-capable-of-self-replicating-created-in-us-lab.jpg",1200,646,false],"thumbnail":["https:\/\/c01.purpledshub.com\/uploads\/sites\/42\/2021\/12\/living-robots-that-are-capable-of-self-replicating-created-in-us-lab-150x150.jpg",150,150,true],"medium":["https:\/\/c01.purpledshub.com\/uploads\/sites\/42\/2021\/12\/living-robots-that-are-capable-of-self-replicating-created-in-us-lab-300x162.jpg",300,162,true],"medium_large":["https:\/\/c01.purpledshub.com\/uploads\/sites\/42\/2021\/12\/living-robots-that-are-capable-of-self-replicating-created-in-us-lab-768x413.jpg",768,413,true],"large":["https:\/\/c01.purpledshub.com\/uploads\/sites\/42\/2021\/12\/living-robots-that-are-capable-of-self-replicating-created-in-us-lab-1024x551.jpg",800,430,true],"1536x1536":["https:\/\/c01.purpledshub.com\/uploads\/sites\/42\/2021\/12\/living-robots-that-are-capable-of-self-replicating-created-in-us-lab.jpg",1200,646,false],"2048x2048":["https:\/\/c01.purpledshub.com\/uploads\/sites\/42\/2021\/12\/living-robots-that-are-capable-of-self-replicating-created-in-us-lab.jpg",1200,646,false]},"uagb_author_info":{"display_name":"importmanagerhub@sprylab.com","author_link":"https:\/\/c01.purpledshub.com\/bbcsciencefocus\/author\/importmanagerhubsprylab-com\/"},"uagb_comment_info":0,"uagb_excerpt":"By Jason Goodyer Published: Friday, 24 December 2021 at 12:00 am A team of researchers in the States have created living robots from frog cells that are able to build replicas of themselves. We spoke to Sam Kriegman, a roboticist and Postdoctoral Fellow at Harvard University and Tufts University, to find out more. What\u2019s the&hellip;","_links":{"self":[{"href":"https:\/\/c01.purpledshub.com\/bbcsciencefocus\/wp-json\/wp\/v2\/rss_feed\/543"}],"collection":[{"href":"https:\/\/c01.purpledshub.com\/bbcsciencefocus\/wp-json\/wp\/v2\/rss_feed"}],"about":[{"href":"https:\/\/c01.purpledshub.com\/bbcsciencefocus\/wp-json\/wp\/v2\/types\/rss_feed"}],"author":[{"embeddable":true,"href":"https:\/\/c01.purpledshub.com\/bbcsciencefocus\/wp-json\/wp\/v2\/users\/24"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/c01.purpledshub.com\/bbcsciencefocus\/wp-json\/wp\/v2\/media\/544"}],"wp:attachment":[{"href":"https:\/\/c01.purpledshub.com\/bbcsciencefocus\/wp-json\/wp\/v2\/media?parent=543"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/c01.purpledshub.com\/bbcsciencefocus\/wp-json\/wp\/v2\/categories?post=543"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}