Showing posts with label chimera. Show all posts
Showing posts with label chimera. Show all posts
Monday, July 08, 2013
Thylacine
Also known as the Tasmanian tiger or wolf, the thylacine was a large meat-eating marsupial that lived in Australia. It had a long, stiff tail, dark stripes on its back and rump, and a pouch similar to other marsupials like the koala and kangaroo. It was driven to extinction by human activity and the introduction of wild dogs onto the Australian mainland. The last confirmed wild thylacine was spotted in Tasmania in 1932, while the last captive one died in Tasmania's Hobart Zoo in 1936. Though widely considered to be extinct, sightings of this strange creature do still occur occasionally
Hamster eggs used to test human sperm fertility
Sperm Penetration Tests
Sperm penetration tests check to see whether a man's sperm can move through cervical mucus and the fallopian tubes to join with (fertilize) an egg. This test is usually done when a couple is having trouble becoming pregnant (infertility).
There are different sperm penetration tests.
The sperm mucus penetration test checks whether a man's sperm can move through the cervical mucus. This test is not done very often because there are other fertility tests that give more information about the fertility problem.
The sperm penetration assay (also called the hamster zona-free ovum test or hamster test) checks whether a man's sperm can join with an egg. Sperm are mixed with hamster eggs in a laboratory. The number of sperm that penetrate the egg (sperm capacitation index) is measured. This test is done most often at special fertility centers that do in vitro fertilization.
Why It Is Done
Sperm penetration tests may be done:
When other tests have not found a cause for infertility.
To see how the sperm function when a semen analysis test has shown some problems, such as slow movement or the sperm look abnormal.
To check when another test, the postcoital test, has found sperm dead or not moving in the cervical mucus.
To test sperm before doing in vitro fertilization.
Labels:
chimera,
dna,
genetics,
transgenetic,
transhuman
Goats with spider DNA produce silk
Got Silk?
Researchers are spinning spider silk from goats' milk
Spider silk and goat milk--what could possibly be the connection?
Let's start with the spiders.
Humans love spider webs, but aren't so crazy about their builders.
While spiders make some people flinch, there's no escaping the appreciation for their masterful web construction.
"There's a lot of interest in spider silk fibers because they're stronger than almost any other manmade fiber and they're also elastic," says Randy Lewis, professor of molecular biology at the University of Wyoming in Laramie.
Since ancient times, there's been a fascination with spider webs because of that combination of qualities. There's folklore going back to the first century A.D., when spider webs were used as dressings for wounds. Twenty-first century experts are looking at silk for many of the same reasons.
"So there are a lot of applications," continues Lewis. "People are interested in them for things like artificial ligaments and artificial tendons, bulletproof vests and even car airbags--something that would allow you to be contained, but not blown back in your seat."
But, whether it's for super-strong sutures for surgery or an air bag, how do you come up with enough raw material? Spider farms have been tried, but arachnids tend to kill each other.
"The problem is that the spiders are territorial, and so no matter what you do, there are only a certain number of spiders you can put in a certain space," says Lewis.
That's where the goats come in.
With help from the National Science Foundation (NSF), Lewis and his team have figured out a way to put the spider's silk-making genes into goats.
"So what we've done is we've actually cloned the genes for the protein that makes up every one of the spider silks. They make six different kinds of silk and a kind of glue. We know, in particular, (there is) a silk called dragline silk that they use to make the framework of a web, that's the one that most people are interested in," he explains.
Lewis, working with Nexia Biotechnologies, has put those silk genes in goats, in a way that they only make the protein in their milk.
"When the goats have kids, and they start lactating, we collect the milk, and we can purify that spider silk protein in much, much higher quantities," says Lewis.
This academic "Spiderman" is a hands-on guy, whether it's milking goats or wrangling spiders. The halls of his labs are covered with spider balloons and posters of the Spiderman from comic book fame. There are also crayoned, thank you notes from school children who have seen some of the spiders up close.
At the University of Wyoming Animal Science Livestock Center, a few miles from the main campus, Lewis is surrounded by seven lively and inquisitive kids, but these kids are goats that were born in early February 2010.
"We had three sets of twins and one single. We've done the blood tests on them, so we know that three of them do have the silk gene, and four of them do not. There are only so many copies of the gene, so it's like any other genetic factor, a certain percentage is going to get it, and some of them aren't," he explains.
So far, Lewis has not seen any differences in the health, appearance or behavior in the transgenic versus the "regular" goats.
"In lots of ways, these goats are a lot more pampered because they are very valuable," he notes.
Lewis knows that the topic is a little baffling, but says with the appropriate explanation, even youngsters can have an understanding of the research. The cool spiders and adorable baby goats help!
"We go to preschools, we take spiders and we talk about what we do. We talk to senior citizens at Rotary and Kiwanis clubs. So from 3- or 4-year-olds to 90-year-olds, I think most people can understand the kinds of things we are doing. They may not understand the details, but I think they get an idea; they understand about spider silk and they know that it's strong, and they understand that you can't just farm spiders, so you've got to come up with another way to make the material. And, I think they appreciate that," says Lewis.
Chemical engineer Heather Rothfuss says she never could have imagined the spider-goat combo before she began work on this project. She also educates the community as well as her students at the university about the research.
She recently took one of the large golden orb weaver spiders to her son's preschool.
"Most of the kids held her; the teachers were terrified," laughs Rothfuss.
Rothfuss says explaining the genetic engineering aspect of the project is important, since there are critics of such procedures.
"They may have opposition to different things but it's nice when it's based in reality," she says. "When people think you're doing 'the Frankenstein thing,' just out of scientific curiosity, then there's a lot of anger involved. But once you start talking about applications, people warm up. My students talk a lot about ethics and scientific implications."
Many of the applications for spider silk involve medical problems. The silk could be used for eye sutures, as well as for certain facial injuries. There is even research on jaw repair, especially for veterans returning home from Iraq and Afghanistan.
"These jawbone injuries are hard to heal as the jaw repair material has to be strong enough to allow use of the jaw during healing," Lewis explains. "Current materials have to be too thick to work so, by adding spider silk proteins to them, we hope to make them thin enough."
Even larger quantities of the silk might someday be produced if the silk genes can be introduced into alfalfa plants.
"We chose alfalfa for a couple of reasons," says Lewis. "One is it's produced and widely distributed across the country, so there's a good system for being able to harvest it and transport it. The other thing is alfalfa produces a pretty high protein content. It is 20-25 percent protein, so we think it's an ideal crop for this use."
And after extracting the silk protein from the alfalfa, the rest of the alfalfa plant could be used to make ethanol.
It may take a few more years before your doctor calls for the "spider silk suture" for a joint replacement or an organ transplant. But it takes awhile to catch up to the 400 million years spiders have had to perfect their spinning skills!
Labels:
chimera,
dna,
genetics,
transgenetic,
transhuman
Mouse with human ear
Back in 1997, a rather bizarre photograph suddenly became very famous. It showed a totally hairless mouse, with what appeared to be a human ear growing out of its back. That photograph prompted a wave of protest against genetic engineering, which continues today. But there was absolutely no genetic engineering involved in getting that ear to cover almost all of the mouse's back.
The layperson might ask, why would you want to have a "spare" human ear? The reason is that it's very difficult to repair the ear. The ear is mostly made of cartilage, which is tricky to work with, and at the same time, has a highly visible and complicated shape. So a spare ear would solve a lot of problems. The Indian surgeon, Sushruta, describes operations to repair the ear in 600 BC. The ear is often damaged in car accidents, fights or fires. There is also the disease called "microtia", which means literally "small ear". It can range from a slightly smaller ear, to almost complete absence of the external ear. It can occur in up to 1 in 1,000 births.
In August 1997, Joseph Vacanti and his colleagues wrote their ground-breaking paper in the journal, Plastic and Reconstructive Surgery. The publicity was enormous, helped by a film made by the BBC's Tomorrow's World.
On October 11, 1999, the anti-genetics group, Turning Point Project, placed a full-page ad in the New York Times showing the photo of the mouse with the human ear, with a misleading caption that read, "This is an actual photo of a genetically engineered mouse with a human ear on its back". In truth, the mouse was not genetically engineered, and the "ear" had no human cells in it.
A "genetically engineered mouse" would have to have its DNA (its genetic "blueprint") modified. The Turning Point propaganda implied that some DNA from a human (the section that has the blueprint for making the human ear) had been inserted into the DNA of the mouse. Then, this human DNA had somehow taken over the mouse DNA, and commanded it to grow a human ear. But it never happened - the mouse in the famous photo had never been genetically engineered.
The "mouse-ear" project began in 1989, when Charles Vacanti (brother of Joseph) managed to grow a small piece of human cartilage on a biodegradable scaffold. The scaffold was the same synthetic material (99% polyglycolic acid and 1% polylactic acid) used in dissolving surgical stitches. In the body, it degrades into carbon dioxide and water. The fibres of this material were woven into a loose mesh that was 97% air - leaving lots of room for cells to grow into. His surgeon colleagues had told him that the human ear was the body's most difficult cartilaginous tissue to reconstruct and rebuild - and that they would love to have a "spare" ear to transplant.
After 8 years, Charle's team got to the stage where they could mould their sterile biodegradable mesh into the exact shape of a 3 year-old's ear. The next step was to seed this ear-shaped scaffold with cartilage cells from the knee of a cow (remember how I said that the famous mouse-ear had absolutely no human cartilage cells in it). The team used a Nude Mouse. The Nude Mouse got its name thanks to a random mutation in the 1960s that left the mouse with no hair, and virtually no immune system. The lack of hair was irrelevant to their project, but the lack of immune system was critical. It meant that the mouse would not reject the foreign cow cartilage cells. The only purpose of the mouse in this project was to supply power to let the cow cartilage cells grow. The cartilaginous ear was implanted under the skin layer of the mouse, but over the muscle layer. Over some three months, the mouse grew extra blood vessels that nourished the cow cartilage cells, that then grew and infiltrated into the biodegradable scaffolding (which had the shape of a human ear). By the time that the scaffolding had dissolved away, the cartilage had enough structural integrity to support itself.
That cartilaginous structure that looked like a human ear was never transplanted onto a human, because it was full of cow cells and would have been rejected by a person's immune system.
But the same Tissue Technology was used for 12 year-old Sean G. McCormack, who was born with Poland's Syndrome. He had absolutely no bone or cartilage on his left chest. His heart and lungs were protected only by skin. This was a problem everyday, and especially in his beloved sport of baseball in which he was a star pitcher - because a single ball to the chest could kill him. The Vacanti brothers used McCormack's own cartilage cells to grow a "chest plate", the size of a CD, on their synthetic biodegradable polymer, that was moulded to the shape of his chest. They implanted the seeded cartilage in his chest, and it grew with him.
But like the mouse with the "human" ear, there was absolutely no genetic engineering involved - only genuine scientific invention…
Cows born with human DNA
| By Helen Briggs BBC News Online science reporter Monday, 12 August, 2002, 09:04 GMT 10:04 UK | |
The four cows have extra DNA which contains the genes for the part of the human immune system that makes disease-fighting antibodies.
Scientists believe cows could eventually be used to produce medicines to treat multiple sclerosis, infections and even cancer.
The cows have a human immune system
|
Yann Echelard, animal cloning expert
|
The work was carried out by researchers in the United States led by animal cloning pioneer James Robl.
The former Professor at the University of Massachusetts was the first to clone a transgenic cow in 1998.
New drugs
He is now President of Hematech in Westport, Connecticut, a biotechnology firm set up to manufacture human antibodies in cattle.
Dr Robl told BBC News Online: "The antibodies that we produce consist of a large collection of different types that will be particularly useful for killing infectious disease agents."
Dr James Robl (centre)
|
"We believe that by successfully transferring the antibody genes into cows we have overcome one of the most difficult challenges in the project."
Yann Echelard, an animal cloning expert at Genzyme Transgenics Corporation, Massachusetts, says the cloned cows could eventually have important medical applications.
"The cows have a human immune system," he told BBC News Online.
"You can immunise them, collect their blood, get the antibodies out, purify them and give them to patients."
'First step'
Antibodies are used for the treatment of many human diseases including immune deficiencies, infectious diseases, and autoimmune disorders.
They have to be extracted from blood donations and are in short supply.
But several hurdles must be overcome before human antibodies from cows could reach the hospital.
Scientists have to find a way to purify the human antibodies and make sure they are free of harmful viruses.
"This is an important step but it is a first step in a process that will go on for years before there is a medicine available to the general public," said Dr Echelard.
Artificial chromosome
The existence of the four cloned cattle is revealed in the journal Nature Biotechnology.
The first calf, Yoon, was born last November. She was named after a graduate student who spent many nights looking after the animals. About 20 similar cloned cows have been born since then.
The calves are known as transchromosomic. Unlike other cows they have an extra synthetic chromosome - one of the bundles of DNA and protein that carries genetic information.
An artificial chromosome has been put into the animals to carry human immune system genes.
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