The Ethics of Navigating Teen Gender Transitions
At first, Miriam Zachariah's teenage nephew Theo, who was born female, came out as gay. But he "presented as very gender fluid," she says, which suggested that he hadn't made "a clear choice one way or another."
Families, physicians, and psychologists have pondered whether it's better, neutral, or worse to postpone gender transitions until adulthood.
Zachariah decided to ask her nephew, "Do you think you might be trans?" While he answered "no," the question "broke something open for him," she recalls.
A month later, at age 13, he began identifying as trans. And at 14 1/2, he started undergoing gender transition with an endocrine-blocking injection. More recently, at age 16, he added testosterone injections, and soon he won't need the endocrine blocker any longer.
"His voice is deepening, and his muscle mass is growing," says Zachariah, a principal of two elementary schools in Toronto who became her nephew's legal guardian while he was starting to transition.
There are many medical and bioethical aspects associated with the transition to one's self-identified gender, especially when the process involves children and adolescents. Families, physicians, and psychologists have pondered whether it's better, neutral, or worse to postpone the transition until adulthood, while remaining cognizant of the potential consequences to puberty suppression with cross-sex hormones and the irreversibility of transgender surgeries.
Studies have found a higher prevalence of mental health issues among transgender and gender nonconforming youth, particularly if they are unable to express themselves in the self-identified gender. Research also has shown that transgender adults in the process of transitioning initially experienced worse mental health problems than their adolescent counterparts.
The Endocrine Society, a professional medical organization that provides recommendations for clinical practice, stipulates in its guidelines that the diagnosis of gender identity be limited to qualified mental health professionals for those under age 18. This is important because children are still evolving in their thought processes and capacity to articulate themselves, says endocrinologist Joshua Safer, inaugural executive director of the Center for Transgender Medicine and Surgery at the Icahn School of Medicine at Mount Sinai in New York.
A transition can begin safely in gradations, by allowing young children to experiment with haircuts and clothes of either gender before puberty. "If it just ends up being a stage of life, we haven't done anything permanent," says Safer, who is president of the United States Professional Association for Transgender Health as well as steering committee co-chair of TransNet, the international transgender research consortium.
After changes in appearance, the next step would be to try puberty blockers. Also used to halt precocious puberty, the injections are "a reasonably established intervention" for transgender youth, although there are some concerns that the drugs could interfere with bone health in the future, he says.
From a mental health standpoint, "hormones for youth who qualify for them have offered a tremendous boost in well-being and also a reduction in anxiety, depression, and suicidality that often plague transgender youth when they experience their bodies as totally discordant with their self-knowledge of their authentic gender," says psychologist Diane Ehrensaft, director of mental health in the Child and Adolescent Gender Center at Benioff Children's Hospital of the University of California at San Francisco.
Many of these youth have either known about or have been living in their authentic gender since early childhood; others discovered their true identities in adolescence, often with the onset of puberty, says Ehrensaft, associate professor of pediatrics. The effects of gender-affirming hormone treatments are at least partially reversible, she adds, whereas surgical procedures are irreversible. Regardless of reversibility, best practices include careful consideration of all interventions to ensure they are in a youth's best interests in promoting gender health and general well-being.
When a child exhibits signs of gender dysphoria, parents and guardians should at a minimum take these feelings seriously.
In determining readiness for a transgender operation, an assessment of maturity is as important as chronological age, says Loren Schechter, plastic surgeon and director of the Center for Gender Confirmation Surgery at Weiss Memorial Hospital in Chicago. With the consent of a parent or guardian, he commonly performs mastectomies on adolescents at age 17 and sometimes earlier, based on the clinical circumstances and along with a multidisciplinary team that includes a primary care provider and a mental health professional.
"Typically, before surgery, people have had the opportunity and time to consider their options," Schechter says, observing that "the incidence of regret or changing one's mind is extremely low." Others may opt to transition socially but not surgically. "We recognize that gender is not binary," he explains. Some individuals may not "discreetly fit into male or female" in how they perceive themselves.
When a child exhibits signs of gender dysphoria, parents and guardians should at a minimum take these feelings seriously, not dismiss them. They may want to enlist the assistance of a gender identity clinic to address the social environment and guide the child in exploring activities with the self-identified gender, says Kelly McBride Folkers, research associate in the Division of Medical Ethics at New York University School of Medicine.
At one end of the spectrum, some parents and guardians are overzealous in supporting their child's gender-identity pursuits while the youngster is still in an early phase of decision-making. On the flipside, other parents and guardians are not at all supportive, leaving the child at risk for long-term psychological effects, says Folkers, who is also associate director of the High School Bioethics Project at NYU, an educational program that aids teachers and students in examining ethical and conceptual concepts across various areas, one of which is gender.
"It's important to help children navigate through this process early, so that they have all of the social and familial support they need if and when they choose to seek medical options for gender affirmation later," she says.
There are various reasons why children and adolescents want to explore the opposite gender when they reach puberty. "It's a small percentage who will persist and insist and be consistent with that opposite gender identity," says Nicole Mihalopoulos, adolescent medicine physician and associate professor of pediatrics at the University of Utah School of Medicine in Salt Lake City.
Turning to a social work support system can help bring clarity for teens, parents, and guardians.
For those youth, it's appropriate to start the conversation about a medication to block puberty, but without actually promoting a hormonal transition to the opposite gender, in order for the child to further explore living as the opposite gender. "Children need to start at puberty because we need to know that their bodies are physiologically normal," Mihalopoulos says.
A lack of breast development in girls or a lack of testicular development in boys could point to an abnormality in the hypothalamus, pituitary gland, or ovaries/testicles. "That needs to be identified and corrected first," she explains, "before I would say, 'Let's start on the medical transition path of the alternate gender.' "
For parents and guardians, says Theo Zachariah's aunt Miriam, it's very tempting to misinterpret a child's struggling attempts to articulate being trans as an adolescent identity crisis. That's when turning to a social work support system can bring clarity. A youth mental health agency with experience in trans issues made a positive impact on Theo's family through one-on-one counseling and in groups for teens and parents.
"The dialogue they were able to engage in with my nephew, his mom and us," she says, was very instrumental "in helping us all figure out what to do and how to navigate the change."
Autonomous, indoor farming gives a boost to crops
The glass-encased cabinet looks like a display meant to hold reasonably priced watches, or drugstore beauty creams shipped from France. But instead of this stagnant merchandise, each of its five shelves is overgrown with leaves — moss-soft pea sprouts, spikes of Lolla rosa lettuces, pale bok choy, dark kale, purple basil or red-veined sorrel or green wisps of dill. The glass structure isn’t a cabinet, but rather a “micro farm.”
The gadget is on display at the Richmond, Virginia headquarters of Babylon Micro-Farms, a company that aims to make indoor farming in the U.S. more accessible and sustainable. Babylon’s soilless hydroponic growing system, which feeds plants via nutrient-enriched water, allows chefs on cruise ships, cafeterias and elsewhere to provide home-grown produce to patrons, just seconds after it’s harvested. Currently, there are over 200 functioning systems, either sold or leased to customers, and more of them are on the way.
The chef-farmers choose from among 45 types of herb and leafy-greens seeds, plop them into grow trays, and a few weeks later they pick and serve. While success is predicated on at least a small amount of these humans’ care, the systems are autonomously surveilled round-the-clock from Babylon’s base of operations. And artificial intelligence is helping to run the show.
Babylon piloted the use of specialized cameras that take pictures in different spectrums to gather some less-obvious visual data about plants’ wellbeing and alert people if something seems off.
Imagine consistently perfect greens and tomatoes and strawberries, grown hyper-locally, using less water, without chemicals or environmental contaminants. This is the hefty promise of controlled environment agriculture (CEA) — basically, indoor farms that can be hydroponic, aeroponic (plant roots are suspended and fed through misting), or aquaponic (where fish play a role in fertilizing vegetables). But whether they grow 4,160 leafy-green servings per year, like one Babylon farm, or millions of servings, like some of the large, centralized facilities starting to supply supermarkets across the U.S., they seek to minimize failure as much as possible.
Babylon’s soilless hydroponic growing system
Courtesy Babylon Micro-Farms
Here, AI is starting to play a pivotal role. CEA growers use it to help “make sense of what’s happening” to the plants in their care, says Scott Lowman, vice president of applied research at the Institute for Advanced Learning and Research (IALR) in Virginia, a state that’s investing heavily in CEA companies. And although these companies say they’re not aiming for a future with zero human employees, AI is certainly poised to take a lot of human farming intervention out of the equation — for better and worse.
Most of these companies are compiling their own data sets to identify anything that might block the success of their systems. Babylon had already integrated sensor data into its farms to measure heat and humidity, the nutrient content of water, and the amount of light plants receive. Last year, they got a National Science Foundation grant that allowed them to pilot the use of specialized cameras that take pictures in different spectrums to gather some less-obvious visual data about plants’ wellbeing and alert people if something seems off. “Will this plant be healthy tomorrow? Are there things…that the human eye can't see that the plant starts expressing?” says Amandeep Ratte, the company’s head of data science. “If our system can say, Hey, this plant is unhealthy, we can reach out to [users] preemptively about what they’re doing wrong, or is there a disease at the farm?” Ratte says. The earlier the better, to avoid crop failures.
Natural light accounts for 70 percent of Greenswell Growers’ energy use on a sunny day.
Courtesy Greenswell Growers
IALR’s Lowman says that other CEA companies are developing their AI systems to account for the different crops they grow — lettuces come in all shapes and sizes, after all, and each has different growing needs than, for example, tomatoes. The ways they run their operations differs also. Babylon is unusual in its decentralized structure. But centralized growing systems with one main location have variabilities, too. AeroFarms, which recently declared bankruptcy but will continue to run its 140,000-square foot vertical operation in Danville, Virginia, is entirely enclosed and reliant on the intense violet glow of grow lights to produce microgreens.
Different companies have different data needs. What data is essential to AeroFarms isn’t quite the same as for Greenswell Growers located in Goochland County, Virginia. Raising four kinds of lettuce in a 77,000-square-foot automated hydroponic greenhouse, the vagaries of naturally available light, which accounts for 70 percent of Greenswell’s energy use on a sunny day, affect operations. Their tech needs to account for “outside weather impacts,” says president Carl Gupton. “What adjustments do we have to make inside of the greenhouse to offset what's going on outside environmentally, to give that plant optimal conditions? When it's 85 percent humidity outside, the system needs to do X, Y and Z to get the conditions that we want inside.”
AI will help identify diseases, as well as when a plant is thirsty or overly hydrated, when it needs more or less calcium, phosphorous, nitrogen.
Nevertheless, every CEA system has the same core needs — consistent yield of high quality crops to keep up year-round supply to customers. Additionally, “Everybody’s got the same set of problems,” Gupton says. Pests may come into a facility with seeds. A disease called pythium, one of the most common in CEA, can damage plant roots. “Then you have root disease pressures that can also come internally — a change in [growing] substrate can change the way the plant performs,” Gupton says.
AI will help identify diseases, as well as when a plant is thirsty or overly hydrated, when it needs more or less calcium, phosphorous, nitrogen. So, while companies amass their own hyper-specific data sets, Lowman foresees a time within the next decade “when there will be some type of [open-source] database that has the most common types of plant stress identified” that growers will be able to tap into. Such databases will “create a community and move the science forward,” says Lowman.
In fact, IALR is working on assembling images for just such a database now. On so-called “smart tables” inside an Institute lab, a team is growing greens and subjects them to various stressors. Then, they’re administering treatments while taking images of every plant every 15 minutes, says Lowman. Some experiments generate 80,000 images; the challenge lies in analyzing and annotating the vast trove of them, marking each one to reflect outcome—for example increasing the phosphate delivery and the plant’s response to it. Eventually, they’ll be fed into AI systems to help them learn.
For all the enthusiasm surrounding this technology, it’s not without downsides. Training just one AI system can emit over 250,000 pounds of carbon dioxide, according to MIT Technology Review. AI could also be used “to enhance environmental benefit for CEA and optimize [its] energy consumption,” says Rozita Dara, a computer science professor at the University of Guelph in Canada, specializing in AI and data governance, “but we first need to collect data to measure [it].”
The chef-farmers can choose from 45 types of herb and leafy-greens seeds.
Courtesy Babylon Micro-Farms
Any system connected to the Internet of Things is also vulnerable to hacking; if CEA grows to the point where “there are many of these similar farms, and you're depending on feeding a population based on those, it would be quite scary,” Dara says. And there are privacy concerns, too, in systems where imaging is happening constantly. It’s partly for this reason, says Babylon’s Ratte, that the company’s in-farm cameras all “face down into the trays, so the only thing [visible] is pictures of plants.”
Tweaks to improve AI for CEA are happening all the time. Greenswell made its first harvest in 2022 and now has annual data points they can use to start making more intelligent choices about how to feed, water, and supply light to plants, says Gupton. Ratte says he’s confident Babylon’s system can already “get our customers reliable harvests. But in terms of how far we have to go, it's a different problem,” he says. For example, if AI could detect whether the farm is mostly empty—meaning the farm’s user hasn’t planted a new crop of greens—it can alert Babylon to check “what's going on with engagement with this user?” Ratte says. “Do they need more training? Did the main person responsible for the farm quit?”
Lowman says more automation is coming, offering greater ability for systems to identify problems and mitigate them on the spot. “We still have to develop datasets that are specific, so you can have a very clear control plan, [because] artificial intelligence is only as smart as what we tell it, and in plant science, there's so much variation,” he says. He believes AI’s next level will be “looking at those first early days of plant growth: when the seed germinates, how fast it germinates, what it looks like when it germinates.” Imaging all that and pairing it with AI, “can be a really powerful tool, for sure.”
Scientists make progress with growing organs for transplants
Story by Big Think
For over a century, scientists have dreamed of growing human organs sans humans. This technology could put an end to the scarcity of organs for transplants. But that’s just the tip of the iceberg. The capability to grow fully functional organs would revolutionize research. For example, scientists could observe mysterious biological processes, such as how human cells and organs develop a disease and respond (or fail to respond) to medication without involving human subjects.
Recently, a team of researchers from the University of Cambridge has laid the foundations not just for growing functional organs but functional synthetic embryos capable of developing a beating heart, gut, and brain. Their report was published in Nature.
The organoid revolution
In 1981, scientists discovered how to keep stem cells alive. This was a significant breakthrough, as stem cells have notoriously rigorous demands. Nevertheless, stem cells remained a relatively niche research area, mainly because scientists didn’t know how to convince the cells to turn into other cells.
Then, in 1987, scientists embedded isolated stem cells in a gelatinous protein mixture called Matrigel, which simulated the three-dimensional environment of animal tissue. The cells thrived, but they also did something remarkable: they created breast tissue capable of producing milk proteins. This was the first organoid — a clump of cells that behave and function like a real organ. The organoid revolution had begun, and it all started with a boob in Jello.
For the next 20 years, it was rare to find a scientist who identified as an “organoid researcher,” but there were many “stem cell researchers” who wanted to figure out how to turn stem cells into other cells. Eventually, they discovered the signals (called growth factors) that stem cells require to differentiate into other types of cells.
For a human embryo (and its organs) to develop successfully, there needs to be a “dialogue” between these three types of stem cells.
By the end of the 2000s, researchers began combining stem cells, Matrigel, and the newly characterized growth factors to create dozens of organoids, from liver organoids capable of producing the bile salts necessary for digesting fat to brain organoids with components that resemble eyes, the spinal cord, and arguably, the beginnings of sentience.
Synthetic embryos
Organoids possess an intrinsic flaw: they are organ-like. They share some characteristics with real organs, making them powerful tools for research. However, no one has found a way to create an organoid with all the characteristics and functions of a real organ. But Magdalena Żernicka-Goetz, a developmental biologist, might have set the foundation for that discovery.
Żernicka-Goetz hypothesized that organoids fail to develop into fully functional organs because organs develop as a collective. Organoid research often uses embryonic stem cells, which are the cells from which the developing organism is created. However, there are two other types of stem cells in an early embryo: stem cells that become the placenta and those that become the yolk sac (where the embryo grows and gets its nutrients in early development). For a human embryo (and its organs) to develop successfully, there needs to be a “dialogue” between these three types of stem cells. In other words, Żernicka-Goetz suspected the best way to grow a functional organoid was to produce a synthetic embryoid.
As described in the aforementioned Nature paper, Żernicka-Goetz and her team mimicked the embryonic environment by mixing these three types of stem cells from mice. Amazingly, the stem cells self-organized into structures and progressed through the successive developmental stages until they had beating hearts and the foundations of the brain.
“Our mouse embryo model not only develops a brain, but also a beating heart [and] all the components that go on to make up the body,” said Żernicka-Goetz. “It’s just unbelievable that we’ve got this far. This has been the dream of our community for years and major focus of our work for a decade and finally we’ve done it.”
If the methods developed by Żernicka-Goetz’s team are successful with human stem cells, scientists someday could use them to guide the development of synthetic organs for patients awaiting transplants. It also opens the door to studying how embryos develop during pregnancy.