[rael-science] Newts' Ability to Regenerate Tissue Replicated in Mouse Cells

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The Raelian Movement
for those who are not afraid of the future : http://www.rael.org
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Newts' Ability to Regenerate Tissue Replicated in Mouse Cells
http://www.sciencedaily.com/releases/2010/08/100805142949.htm

ScienceDaily (Aug. 6, 2010) — Tissue regeneration a la salamanders and
newts seems like it should be the stuff of science fiction. But it
happens routinely. Why can't we mammals just re-grow a limb or churn
out a few new heart muscle cells as needed? New research suggests
there might be a very good reason: Restricting our cells' ability to
pop in and out of the cell cycle at will -- a prerequisite for the
cell division necessary to make new tissue -- reduces the chances that
they'll run amok and form potentially deadly cancers.

Now scientists at the Stanford University School of Medicine have
taken a big step toward being able to confer this regenerative
capacity on mammalian muscle cells; they accomplished this feat in
experiments with laboratory mice in which they blocked the expression
of just two tumor-suppressing proteins. The finding may move us closer
to future regenerative therapies in humans -- surprisingly, by sending
us shimmying back down the evolutionary tree.

"Newts regenerate tissues very effectively," said Helen Blau, PhD, the
Donald E. and Delia B. Baxter Professor and a member of Stanford's
Institute for Stem Cell Biology and Regenerative Medicine. "In
contrast, mammals are pathetic. We can regenerate our livers, and
that's about it. Until now it's been a mystery as to how they do it."

Blau is the senior author of the research, which will be published in
Cell Stem Cell on Aug. 6. Kostandin Pajcini, PhD, a former graduate
student, and Jason Pomerantz, MD, a former postdoctoral scholar in
Blau's laboratory, are primarily responsible for the work and are
first author and co-senior author, respectively.

Although there's been a lot of discussion about using adult or
embryonic stem cells to repair or revitalize tissues throughout the
body, in this case the researchers weren't studying stem cells.
Instead they were investigating whether myocytes, run-of-the mill
muscle cells that normally don't divide, can be induced to re-enter
the cell cycle and begin proliferating. This is important because most
specialized, or differentiated, cells in mammals are locked into a
steady state that does not allow cell division. And without cell
division, it is not possible to get regeneration.

In contrast, the cells of some types of amphibians are able to replace
lost or damaged tissue by entering the cell cycle to give rise to more
muscle cells. While doing so, the cells maintain their muscle
identity, which prevents them from straying from the beaten path and
becoming other, less useful cell types.

Pomerantz and Blau wondered if it could be possible to coax mammalian
cells to follow a similar path. To do so, though, they needed to
pinpoint what was different between mammalian and salamander cells
when it comes to cell cycle control. One aspect involves a class of
proteins called tumor suppressors that block inappropriate cell
division.

Previous research had shown that a tumor suppressor called
retinoblastoma, or Rb, plays an important role in preventing many
types of specialized mammalian cells, including those found in muscle,
from dividing willy-nilly. But the effect of blocking the expression
of Rb in mammalian cells has been inconsistent: In some cases it has
allowed the cells to hop back into the cell cycle; in others, it
hasn't.

The researchers employed some evolutionary detective work to figure
out that another tumor suppressor called ARF might be involved. Like
Rb, ARF works to throw the brakes on the cell cycle in response to
internal signals. An examination of the evolutionary tree provided a
key clue. They saw that ARF first arose in chickens. It is found in
other birds and mammals, but not in animals like salamanders nestled
on the lower branches. Tellingly, it's also missing in cell lines that
begin cycling when Rb is lost, and it is expressed at
lower-than-normal levels in mammalian livers -- the only organ that we
humans can regenerate.

Based on previous investigators' work with newts, Blau said it "seemed
to us that they don't have the same limitations on growth. We
hypothesized that maybe, during evolution, humans gained a tumor
suppressor not present in lower animals at the expense of
regeneration."

Sure enough, Pajcini and Pomerantz found that blocking the expression
of both Rb and ARF allowed individual myocytes isolated from mouse
muscle to dedifferentiate and begin dividing. When they put the cells
back into the mice, they were able to merge with existing muscle
fibers -- as long as Rb expression was restored. Without Rb the
transplanted cells proliferated excessively and disrupted the
structure of the original muscle.

"These myocytes have reached the point of no return," said Blau. "They
can't just start dividing again. But here we show that temporarily
blocking the expression of just two proteins can restore an ancient
ability to contribute to mammalian muscle."

The key word here is "temporarily." As is clear from the mouse
experiments, blocking the expression of tumor suppressors in mammalian
cells can be a tricky gambit. Permanently removing these proteins can
lead to uncontrolled cell division. But, a temporary and
well-controlled loss -- as the researchers devised here -- could be a
useful therapeutic tool.

The research required some sophisticated technology to separate
individual myocytes from one another for study. To do so, Pajcini
traveled to Munich to learn how to optimize a technique normally used
on cryopreserved and fixed tissue sections -- "laser micro-dissection
catapulting" -- for use with living cells. But the effort paid off
when he was able to prove conclusively that once the expression of the
two proteins was blocked, individual live cells were, in fact,
dividing in culture.

Next, the researchers would like to see if the technique works in
other cell types, like those of the pancreas or the heart, and whether
they can induce it to happen in tissue at sites of injury. If so, it
may be possible to trigger temporary cell proliferation as a means of
therapy for a variety of ailments.

In addition to Blau, Pajcini and Pomerantz, other Stanford researchers
involved in the study include senior research scientist Stephane
Corbel, PhD, and assistant professor of pediatrics and genetics Julien
Sage, PhD. Pajcini is now at the University of Pennsylvania, and
Pomerantz is an assistant professor of surgery at the University of
California-San Francisco.

The research was supported by the National Institutes of Health and
the Baxter Foundation.


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~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
"Ethics" is simply a last-gasp attempt by deist conservatives and
orthodox dogmatics to keep humanity in ignorance and obscurantism,
through the well tried fermentation of fear, the fear of science and
new technologies.

There is nothing glorious about what our ancestors call history,
it is simply a succession of mistakes, intolerances and violations.

On the contrary, let us embrace Science and the new technologies
unfettered, for it is these which will liberate mankind from the
myth of god, and free us from our age old fears, from disease,
death and the sweat of labour.

Rael
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[rael-science] Two New Paths to the Dream: Regeneration

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The Raelian Movement
for those who are not afraid of the future : http://www.rael.org
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Two New Paths to the Dream: Regeneration
http://www.nytimes.com/2010/08/06/science/06cell.html
By NICHOLAS WADE
Published: August 5, 2010

Two research reports published Friday offer novel approaches to the
age-old dream of regenerating the body from its own cells.

Animals like newts and zebra fish can regenerate limbs, fins, even
part of the heart. If only people could do the same, amputees might
grow new limbs and stricken hearts be coaxed to repair themselves.

But humans have very little regenerative capacity, probably because of
an evolutionary trade-off: suppressing cell growth reduced the risk of
cancer, enabling humans to live longer. A person can renew his liver
to some extent, and regrow a fingertip while very young, but not much
more.

In the first of the two new approaches, a research group at Stanford
University led by Helen M. Blau, Jason H. Pomerantz and Kostandin V.
Pajcini has taken a possible first step toward unlocking the human
ability to regenerate. By inactivating two genes that work to suppress
tumors, they got mouse muscle cells to revert to a younger state,
start dividing and help repair tissue.

What is true of mice is often true of humans, and although scientists
are a long way from being able to cause limbs to regenerate, the
research is attracting attention. Jeremy Brockes, a leading expert on
regeneration at University College London, said the report was "an
excellent paper." Though there is a lot still to learn about the
process, "it is hard to imagine that it will not be informative for
regenerative medicine in the future," he said.

In recent years, most research in the field of regenerative medicine
has focused on the hope that stem cells, immature cells that give rise
to any specific type of cell needed in the body, can somehow be
trained to behave as normal adult cells do. Nature's method of
regeneration is quite different in that it starts with the adult cells
at the site of a wound and converts the cells to a stemlike state in
which they can grow and divide.

The Stanford team has taken a step toward mimicking the natural
process. "What I like is that it's built on what's happening in
nature," Dr. Blau said. "We mammals lost this regenerative capacity in
order to have better tumor suppression, but if we reawaken it in a
careful way we could make use of it in a clinical setting."

Dr. Pomerantz, a clinician, hopes the technique can be applied to
people, though many more animal experiments need to be done first. "We
have shown we can recapitulate in mammalian cells behavior of lower
vertebrate cells that is required for regeneration," he said. "We
would propose using it in amputations of a limb or part of a limb or
in cardiac muscle." After a heart attack, the muscle cells do not
regenerate, so any method of making them do so would be a possible
treatment.

Interfering with tumor suppressor genes is a dangerous game, but Dr.
Pomerantz said the genes could be inhibited for just a short period by
applying the right dose of drug. When the drug has dissipated, the
antitumor function of the gene would be restored.

Finding the right combination of genes to suppress was a critical step
in the new research. One of the two tumor suppressor genes is an
ancient gene, known as Rb, which is naturally inactivated in newts and
fish when they start regenerating tissue. Mammals possess both the Rb
gene and a backup, called the Arf gene, which will close down a
cancer-prone cell if Rb fails to do so.

The Stanford team found that newts did not have the Arf backup gene,
which mammals must have acquired after their lineage diverged from
that of amphibians. This suggests that the backup system "evolved at
the expense of regeneration," the Stanford researchers say in Friday's
issue of Cell Stem Cell.

The Stanford team shut off both Rb and Arf with a chemical called
silencing-RNA and found the mouse muscle cells started dividing. When
injected into a mouse's leg, the cells fused into the existing muscle
fibers, just as they are meant to.

The Stanford researchers have learned how to block two genes thought
to inhibit the natural regenerative capacity of cells, but it is
somewhat surprising that the regenerative mechanism should still exist
at all if mammals have been unable to use it for 200 million years.
"One school of thought is that regeneration is a default mechanism and
doesn't require its own program," Dr. Pomerantz said.

Dr. Brockes believes that this is true in part. Regeneration "depends
on a largely conserved cellular machinery," he said, meaning that it
is present in all animals. The machinery comes into play in wound
healing and tissue maintenance. But specific instances of
regeneration, like regrowing a whole limb, are invoked by genes
specific to various species. He has found a protein specific to
salamanders that coordinates regrowth of a salamander limb.

If the regeneration of a whole limb is a special ability that
salamanders have evolved, then humans would not have any inherent
ability to do the same. "I would beware of suggesting that this sort
of manipulation is capable of unlocking 'the newt within,' " Dr.
Brockes said.

A second, quite different approach to regenerating a tissue is
reported in Friday's issue of Cell by Deepak Srivastava and colleagues
at the University of California, San Francisco. Working also in the
mouse, they have developed a way of reprogramming the ordinary tissue
cells of the heart into heart muscle cells, the type that is
irretrievably lost in a heart attack.

The Japanese scientist Shinya Yamanaka showed three years ago that
skin cells could be converted to embryonic stem cells simply by adding
four proteins known to regulate genes. Inspired by Dr. Yamanaka's
method, Dr. Srivastava and his colleagues selected 14 such proteins
and eventually found that with only three of them they could convert
heart fibroblast cells into heart muscle cells.

To make clinical use of the discovery, Dr. Srivastava said he would
need first to duplicate the process with human cells, and then develop
three drugs that could substitute for the three proteins used in the
conversion process. The drugs could be loaded into a stent, a small
tube used in coronary bypass operations. With the stent inserted into
a heart artery, the drugs would convert some of the heart's tissue
cells into heart muscle cells.

Some researchers hope that with Dr. Yamanaka's method of turning skin
cells into embryonic stem cells, those stem cells can be converted
into usable heart muscle cells. One problem with this approach is that
any unconverted embryonic stem cells may form tumors. Dr. Srivastava's
method sidesteps this problem by avoiding the stem cell stage.


------------------------------------

~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
"Ethics" is simply a last-gasp attempt by deist conservatives and
orthodox dogmatics to keep humanity in ignorance and obscurantism,
through the well tried fermentation of fear, the fear of science and
new technologies.

There is nothing glorious about what our ancestors call history,
it is simply a succession of mistakes, intolerances and violations.

On the contrary, let us embrace Science and the new technologies
unfettered, for it is these which will liberate mankind from the
myth of god, and free us from our age old fears, from disease,
death and the sweat of labour.

Rael
~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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