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Showing posts with label tiny. Show all posts
Showing posts with label tiny. Show all posts

Tuesday, December 31, 2019

A tiny Galaxy with a Big Heart!

Photo: Hubble image depicting galaxy ESO 495-21 at the center. From NASA/ESA

Evolution of our understanding of Black Holes (BH) has gone from the mathematical outcome with no physical counterpart, up to their detection at the center of various galaxies and visualization of their shadow through the reconstructed image presented for the first time just a few months ago by the EHT global initiative (https://resonancescience.org/the-first-image-of-a-black-hole-is-finally-here/). Now it is thought that every galaxy hosts a BH in its core. When the first BHs were inferred from cosmological observations, we believed they were an extravagant exceptional behavior in the universe. Since, they have proven not so exceptional as they are detected with increased frequency, but they remain an extravagancy, and not for the same reasons.
ESO 495-21 is a galaxy just 3.000 light years across in diameter, very small compared to the almost 53.000 of our Milky Way galaxy. Located 30 million light years away in the constellation of Pyxis, it presents two contrasting features with respect to our galaxy; it forms huge numbers of stars and it hosts an enormous BH in its center, much bigger that what could be expected by its galactic size.
Galaxies that form stars at exceptionally high rates -star nurseries- create stellar newborns up to 1000 times faster than our galaxy, and are called Starburst galaxies. ESO 495-21 is a dwarf starburst galaxy because it is small in size. Usually we would expect that bigger the galaxy more massive the BH in its center. If our galaxy hosts Sagittarius A*, a supermassive BH over four million times as massive as our Sun, one would expect Henize 2-10 -the BH at the center of ESO- to be much smaller. But, the second intriguing observation is that ESO 495-21 galaxy -a 3% size of our galaxy- hosts a supermassive BH at its core, million times as massive as our Sun, too!
This extremely unusual scenario raises questions about our current astrophysical models and the relation between Black holes, galaxies and the universe. This finding is a strong indication that black holes may have come first, and that galaxies form and evolve around them. The question is, how?
do the galaxies form first and then crush material at their centers into black holes, or do pre-existing black holes gather galaxies around them? Do they evolve together—or could the answer be something else entirely?
– ESA/Hubble Information Centre
The NASA/ESA studied the activity bursts and explored the very dense regions a few million years old within ESO 495-21, and the data comprising the images were gathered by the Hubble Space Telescope with the advance camera for surveys and the Wide Field Planetary Camera 2.

RSF in perspective:

This finding is a strong indication that Black Holes came first, so then a question remains… how can a galaxy form and evolve around it, if we have believed BHs to be devouring monsters? The Unified theory developed by Nassim Haramein finds that BHs not only came first but they are in fact the responsible for the matter and posterior galaxy formation, as he has claimed for more than 25 years. Fortunately, astronomical observations not only have been unable to discard his findings and on the contrary, they point out in that same direction. In this sense we could literally say that the BH at the core IS the pumping heart of the galaxy.
By Ines Urdaneta, Research Scientist at RSF
More at:
Hubble observed tiny galaxy with big heart: https://phys.org/news/2019-06-hubble-tiny-galaxy-big-heart.html

Tuesday, December 17, 2019

Why are giant pandas born so tiny?

Panda babies

Born pink, blind, and helpless, giant pandas typically weigh about 100 grams at birth -- the equivalent of a stick of butter. Their mothers are 900 times more massive than that.
This unusual size difference has left researchers puzzled for years. With a few exceptions among animals such as echidnas and kangaroos, no other mammal newborns are so tiny relative to their mothers. No one knows why, but a Duke University study of bones across 10 species of bears and other animals finds that some of the current theories don't hold up.
Duke biology professor Kathleen Smith and her former student Peishu Li published their findings this month in the Journal of Anatomy.
Baby panda skeletons are hard to come by, but the researchers were able to study the preserved remains of baby pandas born at the Smithsonian's National Zoo in Washington, D.C.
The National Zoo's first panda couple, Ling-Ling and Hsing-Hsing, had five full-term cubs in the 1980s, but none of them survived long after birth.
The researchers took micro-CT scans of two of those cubs, along with newborn grizzlies, sloth bears, polar bears, dogs, a fox, and other closely related animals from the Smithsonian National Museum of Natural History and the North Carolina State College of Veterinary Medicine.
They used the scans to create 3-D digital models of each baby's bony interior at birth.
As a baby animal grows and develops inside the womb, its bones and teeth do, too. The researchers examined the degree of ossification, or how much the skeleton has formed by the time of birth. They looked at whether the teeth had started to calcify or erupt, and the degree of fusion between the bony plates that make up the skull.
The panda may be an extreme example, but all bears have disproportionately small babies, Li said. A newborn polar bear's birthweight as a fraction of mom's is less than 1:400, or less than one-half of one percent of her body mass. For the vast majority of baby mammals, including humans, the average is closer to 1:26.
One decades-old idea links low birthweights in bears to the fact that, for some species, pregnancy overlaps with winter hibernation. Pregnant females don't eat or drink during this time, relying mostly on their fat reserves to survive, but also breaking down muscle to supply protein to the fetus.
The thinking is that, energetically, females can only afford to nourish their babies this way for so long before this tissue breakdown threatens their health. By cutting pregnancy short and giving birth to small, immature babies, bears would shift more of their growth to outside the womb, where babies can live off their mother's fat-rich milk instead of depleting her muscles.
Proponents of the theory concede that not all bears -- including pandas -- hibernate during the winter. But the idea is that small birthweight is 'locked in' to the bear family tree, preventing non-hibernating relatives from evolving bigger babies too.
"It's certainly an appealing hypothesis," Smith said.
But the Duke team's research shows this scenario is unlikely. The researchers didn't find any significant differences in bone growth between hibernating bears and their counterparts that stay active year-round and don't fast during pregnancy.
In fact, despite being small, the researchers found that most bear skeletons are just as mature at birth as their close animal cousins.
The panda bear is the one exception to this rule, results show. Even in a full-term baby panda, the bones look a lot like those of a beagle puppy delivered several weeks premature.
"That would be like a 28-week human fetus" at the beginning of the third trimester, Smith said.
Other factors might have pushed panda babies toward smaller sizes over time -- some researchers blame their bamboo-only diet -- but data are scarce, Li said. The researchers say the panda bear's embryonic appearance likely has to do with a quirk of panda pregnancy.
All bears experience what's called "delayed implantation." After the egg is fertilized, the future fetus enters a state of suspended animation, floating in the womb for several months before implanting in the uterine wall to resume its development and get ready for birth.
But while other bears gestate for two months after implantation, giant pandas are done in a month.
"They're basically undercooked," said Li, now a Ph.D. student at the University of Chicago.
The researchers say they only looked at skeletons in this study, and it could be that other organs like the brain tell a different story. But the new study suggests that baby pandas follow the same trajectory as other mammal relatives -- their bones mature in the same sequence and at similar rates -- but on a truncated timetable.
"Development is just cut short," Smith said.
Scientists are still searching for a complete explanation of why the panda's peculiar size differential evolved over geological time, and how.
"We really need more information about their ecology and reproduction in the wild," Smith said, and we may not have much time given their risk of extinction. But this study brings them one step closer to an answer.
This research was supported by a Shared Material Instrumentation Facility Undergraduate User Program grant, the Duke Department of Biology, and the Undergraduate Research Office at Duke.

Story Source:
Materials provided by Duke University. Original written by Robin A. Smith. Note: Content may be edited for style and length.