Before I hit the road again here's a sneak peak at the colour version of this year's SVP logo that will appear on the t-shirts for sale at the conference. Both the logo and the colour art are by Bill Stout.
The Society of Vertebrate Paleontology has all the info on the conference.
See you soon!
Saturday, August 09, 2008
Hypacrosaurus Growth Rates
Relative growth rates of predator and prey dinosaurs reflect effects of predation. 2008. L. Cooper et al. Proc. Royal Soc. B. Published on-line August 05, 2008.
From the press release:
With long limbs and a soft body, the duck-billed hadrosaur had few defenses against predators such as tyrannosaurs. But new research on the bones of this plant-eating dinosaur suggests that it had at least one advantage: It grew to adulthood much faster than its predators, giving it superiority in size.
Scientists compared growth rate data from the hadrosaur, Hypacrosaurus, to three predators: the tyrannosaurs Albertosaurus and its gigantic relative Tyrannosaurus rex, as well as the small Velociraptor-like Troodon.
The research suggests that it took 10 to 12 years for Hypacrosaurus to become fully grown. Tyrannosaurs, however, reached adulthood after 20 to 30 years, said Drew Lee.
"Our duck-billed dinosaur grew three to five times faster than any potential predators that lived alongside it," Lee said. "By the time the duck-billed dinosaur was fully grown, the tyrannosaurs were only half grown – it was a huge size difference."
Hypacrosaurus also reached sexual maturity early, at only two or three years of age, Cooper said.
"That's another added bonus when facing predators – if you can keep reproducing, you're set," she said. "It's the stuff of evolution."
Cooper conducted the original analysis of the hadrosaur while an undergraduate student at Montana State University. Working with scientists Jack Horner and Mark Taper, Cooper looked at thin sections of the long leg bones of a specimen of Hypacrosaurus and counted and measured the growth rings, which each represent one year of life.
"We were shocked at how fast they grew. If you look at a cross section of the bone of a nestling or even from within the egg, there are huge spaces in which blood supply was going through the bone, which means they were growing like crazy," she said.
From the press release:
With long limbs and a soft body, the duck-billed hadrosaur had few defenses against predators such as tyrannosaurs. But new research on the bones of this plant-eating dinosaur suggests that it had at least one advantage: It grew to adulthood much faster than its predators, giving it superiority in size.
Scientists compared growth rate data from the hadrosaur, Hypacrosaurus, to three predators: the tyrannosaurs Albertosaurus and its gigantic relative Tyrannosaurus rex, as well as the small Velociraptor-like Troodon.
The research suggests that it took 10 to 12 years for Hypacrosaurus to become fully grown. Tyrannosaurs, however, reached adulthood after 20 to 30 years, said Drew Lee.
"Our duck-billed dinosaur grew three to five times faster than any potential predators that lived alongside it," Lee said. "By the time the duck-billed dinosaur was fully grown, the tyrannosaurs were only half grown – it was a huge size difference."
Hypacrosaurus also reached sexual maturity early, at only two or three years of age, Cooper said.
"That's another added bonus when facing predators – if you can keep reproducing, you're set," she said. "It's the stuff of evolution."
Cooper conducted the original analysis of the hadrosaur while an undergraduate student at Montana State University. Working with scientists Jack Horner and Mark Taper, Cooper looked at thin sections of the long leg bones of a specimen of Hypacrosaurus and counted and measured the growth rings, which each represent one year of life.
"We were shocked at how fast they grew. If you look at a cross section of the bone of a nestling or even from within the egg, there are huge spaces in which blood supply was going through the bone, which means they were growing like crazy," she said.
Wednesday, August 06, 2008
SADRG Update 3
We finished off our month in southern Alberta and had - once again - great success. Many thanks to everyone who helped out! We collected two hadrosaurs, lots of juvenile hadrossaur material from a bone bed, a couple of pachycephalosaur skull caps, plus tons of other stuff, and found some excellent prospects for next year.
I`ve got a limited amount of time before I head over to Mongolia, but I wanted to post a few photos before I left.

A crew works the `Foremost Hadrosaur`.

David Evans pedestals the Foremost Hadrosaur

Another view of the spectacular Milk River badlands.

Fording the river to get to the 4most hadrosaur.

The field crew at the end of week 3.
Back row (L to R): Nick Campione (UofT), David Evans (ROM-UofT), Me (CMNH), Ian Morrison (ROM), Derek Larson (UofA), Jaime Boyle (CASE), Ryan Schott (UofT), Calib Brown(UofC), Nick Longrich(UofC), Cecil Nesmo.
Front row (L to R): Wendy Sloboda, Bregita Petro (UofT), Evan Scott (CASE), Vern (The Crocodile Man) Lewis (UofT), Robin Sissons (UofA), Mike Densmore (Harvard), and Ace Tech David Lloyd (RTMP; who took all these photos!).
Other folks who joined us over the 4 weeks included Dave Eberth (RTMP), Jill Gallimore (UofT), Tristan Birkemeier (Wyo Dino Ctr), plus a few that I`m sure I`ve forgotten.

The `dump`hadrosaur ready to flip. This duck-bill was 1st shown to Wann Langston, Jr., sometime in the early 60`s. The ROM`s Ian Morrison was in charge of this quarry.

The block flipped beautifully thanks to help from Kevin Kruger and Wendy`s husband, Keith. Unfortunately, the winches on their trucks could not handle the 4-5 ton block.

Our hero! Fortunately a rigging crew in the area lent us a hand and pulled the block up to praire level for us.

One of the rig crew helps oversee the pull.

Helping the block along. That`s Kevin K. in the foreground.

The block ready to be transported.
I`ve got a limited amount of time before I head over to Mongolia, but I wanted to post a few photos before I left.

A crew works the `Foremost Hadrosaur`.

David Evans pedestals the Foremost Hadrosaur

Another view of the spectacular Milk River badlands.

Fording the river to get to the 4most hadrosaur.

The field crew at the end of week 3.
Back row (L to R): Nick Campione (UofT), David Evans (ROM-UofT), Me (CMNH), Ian Morrison (ROM), Derek Larson (UofA), Jaime Boyle (CASE), Ryan Schott (UofT), Calib Brown(UofC), Nick Longrich(UofC), Cecil Nesmo.
Front row (L to R): Wendy Sloboda, Bregita Petro (UofT), Evan Scott (CASE), Vern (The Crocodile Man) Lewis (UofT), Robin Sissons (UofA), Mike Densmore (Harvard), and Ace Tech David Lloyd (RTMP; who took all these photos!).
Other folks who joined us over the 4 weeks included Dave Eberth (RTMP), Jill Gallimore (UofT), Tristan Birkemeier (Wyo Dino Ctr), plus a few that I`m sure I`ve forgotten.

The `dump`hadrosaur ready to flip. This duck-bill was 1st shown to Wann Langston, Jr., sometime in the early 60`s. The ROM`s Ian Morrison was in charge of this quarry.
The block flipped beautifully thanks to help from Kevin Kruger and Wendy`s husband, Keith. Unfortunately, the winches on their trucks could not handle the 4-5 ton block.
Our hero! Fortunately a rigging crew in the area lent us a hand and pulled the block up to praire level for us.

One of the rig crew helps oversee the pull.

Helping the block along. That`s Kevin K. in the foreground.

The block ready to be transported.
Monday, July 28, 2008
Died This Day: Francis Crick
June 8, 1916 – July 28, 2004
From Today In Science History:
Crick was a British biophysicist, who, with James Watson and Maurice Wilkins, received the 1962 Nobel Prize for Physiology or Medicine for their determination of the molecular structure of deoxyribonucleic acid (DNA), the chemical substance ultimately responsible for hereditary control of life functions.
Crick and Watson began their collaboration in 1951, and published their paper on the double helix structure on April 2, 1953 in Nature. This accomplishment became a cornerstone of genetics and was widely regarded as one of the most important discoveries of 20th-century biology.
From Today In Science History:
Crick was a British biophysicist, who, with James Watson and Maurice Wilkins, received the 1962 Nobel Prize for Physiology or Medicine for their determination of the molecular structure of deoxyribonucleic acid (DNA), the chemical substance ultimately responsible for hereditary control of life functions.
Crick and Watson began their collaboration in 1951, and published their paper on the double helix structure on April 2, 1953 in Nature. This accomplishment became a cornerstone of genetics and was widely regarded as one of the most important discoveries of 20th-century biology.
[ a palaeoblog autopost]
Tuesday, July 22, 2008
Born This Day: Gregor Mendel
July 22, 1822 – Jan. 6, 1884
From Today In Science History:
Mendel was an Austrian pioneer in the study of heredity. He spent his adult life with the Augustinian monastery in Brunn, where as a geneticist,
botanist and plant experimenter, he was the first to lay the mathematical foundation of the science of genetics, in what came to be called Mendelism.
Over the period 1856-63, Mendel grew and analyzed over 28,000 pea plants. He carefully studied for each their plant height, pod shape, pod color, flower position, seed color, seed shape and flower color. He made two very important generalizations from his pea experiments, known today as the Laws of Heredity. Mendel coined the present day terms in genetics: recessiveness and dominance.
From Today In Science History:
Mendel was an Austrian pioneer in the study of heredity. He spent his adult life with the Augustinian monastery in Brunn, where as a geneticist,

botanist and plant experimenter, he was the first to lay the mathematical foundation of the science of genetics, in what came to be called Mendelism.
Over the period 1856-63, Mendel grew and analyzed over 28,000 pea plants. He carefully studied for each their plant height, pod shape, pod color, flower position, seed color, seed shape and flower color. He made two very important generalizations from his pea experiments, known today as the Laws of Heredity. Mendel coined the present day terms in genetics: recessiveness and dominance.
[ a palaeoblog autopost]
Sunday, July 20, 2008
Born This Day: Sir Richard Owen
July 20, 1804 – Dec. 18, 1892
From Today In Science History:
Owen was an English anatomist and paleontologist who is remembered for his contributions to the study of fossil animals and for his strong opposition to the views of Charles Darwin.
He coined the word "Dinosaur" meaning "terrible reptile" (1842). Owen synthesized French anatomical work, especially from Cuvier and Geoffroy, with German transcendental anatomy. He gave us many of the terms still used today in anatomy and evolutionary biology, including "homology". In 1856, he was appointed Superintendent of the British Museum (Natural History).
From Today In Science History:
Owen was an English anatomist and paleontologist who is remembered for his contributions to the study of fossil animals and for his strong opposition to the views of Charles Darwin.He coined the word "Dinosaur" meaning "terrible reptile" (1842). Owen synthesized French anatomical work, especially from Cuvier and Geoffroy, with German transcendental anatomy. He gave us many of the terms still used today in anatomy and evolutionary biology, including "homology". In 1856, he was appointed Superintendent of the British Museum (Natural History).
[ a palaeoblog autopost]
Monday, July 14, 2008
Born This Day: Florence Bascom
From Today In Science History:
Bascom was an American geologist and teacher. She was the first woman to receive a doctorate from Johns Hopkins University. Two years later she launched the geology department at Bryn Mawr. Bascom was the first woman to work as a geologist for the U.S. Geological Survey and to be made a fellow of the Geological Society of America. Bascom was an expert in crystallography, mineralogy, and petrography. She is known for inventing techniques that used microscopic analysis in the study of the oil-bearing rocks.
[ a palaeoblog autopost]
Friday, July 11, 2008
SADRG Update #2
A few more photos from the Southern Alberta Dinosaur Research Group:

Swimming in the Milk River after a hard day in "Club Med Bone Bed".

David Eberth (background) collects a bentonite for dating from above one of the newly discovered ceratopsian bone beds in the Oldman Formation. David Evans (ROM) is in the foreground.
A few of the students working with us:

Robin Sessons, U of Alberta grad student.

Caleb Brown, U of Calgary grad student.

Derek Larsons, U of Alberta grad student.

Plus, David Lloyd, RTMP technician.

Swimming in the Milk River after a hard day in "Club Med Bone Bed".

David Eberth (background) collects a bentonite for dating from above one of the newly discovered ceratopsian bone beds in the Oldman Formation. David Evans (ROM) is in the foreground.
A few of the students working with us:

Robin Sessons, U of Alberta grad student.

Caleb Brown, U of Calgary grad student.

Derek Larsons, U of Alberta grad student.

Plus, David Lloyd, RTMP technician.
Monday, July 07, 2008
Died This Day: Sir Arthur Conan Doyle
May 22, 1859 – July 7, 1930
From HERE:
Sir Arthur Conan Doyle was a British writer and creator of Sherlock Holmes. He was born in Edinburgh. His father and uncle were both book illustrators and his mother encouraged his son to explore the world of books. Doyle studied at Edinburgh University and in 1884 he married Louise Hawkins. Doyle qualified as doctor in 1885 and practiced medicine as an eye specialist in Hampshire until 1891 when he became a full time writer. Doyle's first novel about Sherlock Holmes,’ A Study in Scarlet’, was published in 1887.
During the South African war (1899-1902) Doyle served for a few months as senior physician at a field hospital, and wrote ‘The War in South Africa’, in which he defended England's policy. When his son Kingsley died from wounds incurred in World War I, the author dedicated himself in spiritualistic studies.
Doyle's stories of Professor George Edward Challenger in ‘The Lost World’ (1912). The model for the professor was William Rutherford, Doyle's teacher from Edinburgh. Doyle's practice, and other experiences, expeditions as ship's surgeon to the Arctic and West Coast of Africa, service in the Boer War, defenses of George Edalji and Oscar Slater, two men wrongly imprisoned, provided much material for his writings.
The Lost World:
From HERE:
Sir Arthur Conan Doyle was a British writer and creator of Sherlock Holmes. He was born in Edinburgh. His father and uncle were both book illustrators and his mother encouraged his son to explore the world of books. Doyle studied at Edinburgh University and in 1884 he married Louise Hawkins. Doyle qualified as doctor in 1885 and practiced medicine as an eye specialist in Hampshire until 1891 when he became a full time writer. Doyle's first novel about Sherlock Holmes,’ A Study in Scarlet’, was published in 1887.
During the South African war (1899-1902) Doyle served for a few months as senior physician at a field hospital, and wrote ‘The War in South Africa’, in which he defended England's policy. When his son Kingsley died from wounds incurred in World War I, the author dedicated himself in spiritualistic studies.
Doyle's stories of Professor George Edward Challenger in ‘The Lost World’ (1912). The model for the professor was William Rutherford, Doyle's teacher from Edinburgh. Doyle's practice, and other experiences, expeditions as ship's surgeon to the Arctic and West Coast of Africa, service in the Boer War, defenses of George Edalji and Oscar Slater, two men wrongly imprisoned, provided much material for his writings.
The Lost World:
[ a palaeoblog autopost]
Sunday, July 06, 2008
SADRG Update #1
The Southern Alberta Dinosaur Research Group is just finishing off the first of four weeks in southern Alberta working in the badlands adjacent to the Milk and Oldman rivers. Dr. Michael Ryan (your palaeoblogger) from the Cleveland Museum of Natural Museum and Dr. David Evans from the Royal Ontario Museum have a crew of about 15 people per week working on a series of projects including the collection of two potentially new duck-billed dinosaurs, and the on-going excavation of a juvenile duck-billed dinosaur bone bed from the Belly River Group and earlier sediments. The crews are made up of collaborators such as Dr. Nick Longrich from the U of Calgary; technician Ian Morrison, undergrad and grad students from the U of Toronto; Technician David Lloyd from the Royal Tyrrell Museum; grad students from U of Calgary and Alberta; with undergrad students from Case Western Reserve U. to arrive later this month (I’m sure that I’ve forgetting someone).
It’s been a busy week and I’ve not taken many photos but here’s a short selection:

The rattler that greeted us as we set up camp.

The red arrow points to the first hadrosaur quarry that we opened this week. Here the crew is removing overburden.

More overburden removal in the same quarry. The specimen is the brown bone exposed in the sandstone under the hard capstone. The specimen was originally reported to Wann Langston, Jr., in 1960.

David Evans takes a break in the quarry.

Ian Morrison (white cap) does the impossible by fixing a broken jackhammer starter spring with a multitool. A week of jack hammering was required to take off the capstone.

U of T undergrad, Jill Gallimore, rocks out in the quarry

A double rainbow seen from camp after a recent evening thunderstorm.
It’s been a busy week and I’ve not taken many photos but here’s a short selection:

The rattler that greeted us as we set up camp.

The red arrow points to the first hadrosaur quarry that we opened this week. Here the crew is removing overburden.

More overburden removal in the same quarry. The specimen is the brown bone exposed in the sandstone under the hard capstone. The specimen was originally reported to Wann Langston, Jr., in 1960.

David Evans takes a break in the quarry.

Ian Morrison (white cap) does the impossible by fixing a broken jackhammer starter spring with a multitool. A week of jack hammering was required to take off the capstone.

U of T undergrad, Jill Gallimore, rocks out in the quarry

A double rainbow seen from camp after a recent evening thunderstorm.
Saturday, July 05, 2008
Born This Day: Ernst Mayr
Any student of biology, or anyone with an interest in the natural world, will be familiar with Ernst Mayr who passed away on February 3rd in Bedford, Mass. Born in Kempton, Germany he joined the American Museum of Natural History as a curator in 1931. In 1953 he left the museum to work at Harvard University where he stayed until his retirement in 1975.
While working on the problem of speciation in the birds of New Guinea, Mayr realized that the multitude of species and and subspecies that he saw could best be explained as being a snapshot of evolution in action. He suggested that new species could arise when the range of one species was fractured long enough for members in different parts of the range to evolve characters that would not allow individuals to reproduce when they were brought back together again. This lead to him developing the “biological species concept” in which species are defined as populations of interbreeding organisms rather than just a collection of characters. This idea, along with his theory of “allopatric speciation” was published in his book “Systematics and the Origin of the Species” (1942) and later contributed to the “Punctuated Equilibrium” theory of Niles Eldredge and Stephen Jay Gould.
Ernst Mayr was himself inspired by the work of geneticist Theodosius Dobzhansky on the fruit fly Drosophila melanogaster and his book “Genetics and the Origin of the Species” (1937). These two men, together with the paleontologist George Gaylord Simpson, combined the sciences of genetics, zoology and paleontology into what is now known as “the new synthesis” that provides the modern experimental underpinning to the concepts that Charles Darwin presented in his book, “On the Origin of the Species” .
For anyone interested in learning more about modern evolutionary theory I’d recommend Mayr’s recent book “What Evolution Is” (2002). It’s written in an engaging and readable format from the perspective of someone who’s thought about evolution all his life.
While working on the problem of speciation in the birds of New Guinea, Mayr realized that the multitude of species and and subspecies that he saw could best be explained as being a snapshot of evolution in action. He suggested that new species could arise when the range of one species was fractured long enough for members in different parts of the range to evolve characters that would not allow individuals to reproduce when they were brought back together again. This lead to him developing the “biological species concept” in which species are defined as populations of interbreeding organisms rather than just a collection of characters. This idea, along with his theory of “allopatric speciation” was published in his book “Systematics and the Origin of the Species” (1942) and later contributed to the “Punctuated Equilibrium” theory of Niles Eldredge and Stephen Jay Gould.
Ernst Mayr was himself inspired by the work of geneticist Theodosius Dobzhansky on the fruit fly Drosophila melanogaster and his book “Genetics and the Origin of the Species” (1937). These two men, together with the paleontologist George Gaylord Simpson, combined the sciences of genetics, zoology and paleontology into what is now known as “the new synthesis” that provides the modern experimental underpinning to the concepts that Charles Darwin presented in his book, “On the Origin of the Species” .
For anyone interested in learning more about modern evolutionary theory I’d recommend Mayr’s recent book “What Evolution Is” (2002). It’s written in an engaging and readable format from the perspective of someone who’s thought about evolution all his life.
[ a palaeoblog autopost]
Sunday, June 29, 2008
Died This Day: Thomas Huxley
May 4, 1825 - June 29, 1895
From the UC Berkeley Page:
Huxley was born in Ealing, near London, the seventh of eight children in a family that was none too affluent. At 21, Huxley signed on as assistant surgeon on the H.M.S. Rattlesnake, a Royal Navy frigate assigned to chart the seas around Australia and New Guinea. Huxley collected and studied marine invertebrates, in particular cnidarians,
tunicates, and cephalopod mollusks. After leaving the Navy in 1854, Huxley managed to secure a lectureship at the School of Mines in London.
Huxley was a passionate defender of Darwin's theory -- so passionate that he has been called "Darwin's Bulldog" – and also a great biologist in his own right, who did original research in zoology and paleontology.
He is best known for his famous debate in June 1860, at the British Association meeting at Oxford. His opponent, Archbishop Samuel Wilberforce, was not-so-affectionately known as "Soapy Sam" for his renowned slipperiness in debate. During the debate, Archbishop Wilberforce ridiculed evolution and asked Huxley whether he was descended from an ape on his grandmother's side or his grandfather's. Accounts vary as to exactly what happened next, but according to one telling of the story, Huxley muttered "The Lord hath delivered him into my hands," and then rose to give a brilliant defense of Darwin's theory, concluding with the rejoinder, "I would rather be the offspring of two apes than be a man and afraid to face the truth."
All accounts agree that Huxley trounced Wilberforce in the debate, defending evolution as the best explanation yet advanced for species diversity.
However, Huxley did not blindly follow Darwin's theory, and critiqued it even as he was defending it. In particular, where Darwin had seen evolution and a slow, gradual, continuous process, Huxley thought that an evolving lineage might make rapid jumps, or saltations. As he wrote to Darwin just before publication of the Origin of Species, "You have loaded yourself with an unnecessary difficulty in adopting Natura non facit saltum [Nature does not make leaps] so unreservedly."

Huxley's most famous writing, published in 1863, is Evidence on Man's Place in Nature. This book, published only five years after Darwin's Origin of Species, was a comprehensive review of what was known at the time about primate and human paleontology and ethology. More than that, it was the first attempt to apply evolution explicitly to the human race. Huxley explicitly presented evidence for human evolution.
Huxley founded a remarkable dynasty of English scientists and thinkers. His son Leonard was a noted biographer and "man of letters." Leonard's oldest son Julian was one of the authors of the evolutionary synthesis of the early 20th century; Julian's son Francis became a noted anthropologist. Julian's brother Aldous Huxley was a novelist, screenwriter and essayist; his best-known book is the anti-utopia Brave New World.
From the UC Berkeley Page:
Huxley was born in Ealing, near London, the seventh of eight children in a family that was none too affluent. At 21, Huxley signed on as assistant surgeon on the H.M.S. Rattlesnake, a Royal Navy frigate assigned to chart the seas around Australia and New Guinea. Huxley collected and studied marine invertebrates, in particular cnidarians,
tunicates, and cephalopod mollusks. After leaving the Navy in 1854, Huxley managed to secure a lectureship at the School of Mines in London.Huxley was a passionate defender of Darwin's theory -- so passionate that he has been called "Darwin's Bulldog" – and also a great biologist in his own right, who did original research in zoology and paleontology.
He is best known for his famous debate in June 1860, at the British Association meeting at Oxford. His opponent, Archbishop Samuel Wilberforce, was not-so-affectionately known as "Soapy Sam" for his renowned slipperiness in debate. During the debate, Archbishop Wilberforce ridiculed evolution and asked Huxley whether he was descended from an ape on his grandmother's side or his grandfather's. Accounts vary as to exactly what happened next, but according to one telling of the story, Huxley muttered "The Lord hath delivered him into my hands," and then rose to give a brilliant defense of Darwin's theory, concluding with the rejoinder, "I would rather be the offspring of two apes than be a man and afraid to face the truth."
All accounts agree that Huxley trounced Wilberforce in the debate, defending evolution as the best explanation yet advanced for species diversity.
However, Huxley did not blindly follow Darwin's theory, and critiqued it even as he was defending it. In particular, where Darwin had seen evolution and a slow, gradual, continuous process, Huxley thought that an evolving lineage might make rapid jumps, or saltations. As he wrote to Darwin just before publication of the Origin of Species, "You have loaded yourself with an unnecessary difficulty in adopting Natura non facit saltum [Nature does not make leaps] so unreservedly."

Huxley's most famous writing, published in 1863, is Evidence on Man's Place in Nature. This book, published only five years after Darwin's Origin of Species, was a comprehensive review of what was known at the time about primate and human paleontology and ethology. More than that, it was the first attempt to apply evolution explicitly to the human race. Huxley explicitly presented evidence for human evolution.
Huxley founded a remarkable dynasty of English scientists and thinkers. His son Leonard was a noted biographer and "man of letters." Leonard's oldest son Julian was one of the authors of the evolutionary synthesis of the early 20th century; Julian's son Francis became a noted anthropologist. Julian's brother Aldous Huxley was a novelist, screenwriter and essayist; his best-known book is the anti-utopia Brave New World.
[ a palaeoblog autopost]
Friday, June 27, 2008
Drumheller IGA T. rex Is Back

The newly repainted T. rex has reappeared on the IGA here in Drumheller.
I'm finishing up my week here at the RTMP editing the 'Horned Dino' book, and will be off shortly to southern Alberta with a big crew for the month of July.
Tuesday, June 24, 2008
Fedex Caveman
This is old news now, but I just saw it thanks to Don C. and had to share it. I'm almost in the field....!
Friday, June 20, 2008
Off To The Field: Stay Tuned For Updates
It's that time of year again gentle readers...
Of course I'll post intermittently as access to the 'net allows, and post field photos from time to time. I'll be out of the office from about now until the end of Sept(!). Have a good summer!
Of course I'll post intermittently as access to the 'net allows, and post field photos from time to time. I'll be out of the office from about now until the end of Sept(!). Have a good summer!
New Discovery Proves Selfish Gene Exists
Four QTLs that Influence Worker Sterility in the Honey Bee (Apis mellifera). 2008. P.R. Oxley et al. Genetics Published Ahead of Print: June 18, 2008, Copyright © 2008.
Since renowned British biologist Richard Dawkins ("The God Delusion") introduced the concept of the 'selfish gene' in 1976, scientists the world over have hailed the theory as a natural extension to the work of Charles Darwin.
In studying genomes, the word 'selfish' does not refer to the human-describing adjective of self-centered behavior but rather to the blind tendency of genes wanting to continue their existence into the next generation. Ironically, this 'selfish' tendency can appear anything but selfish when the gene does move ahead for selfless and even self-sacrificing reasons.
For instance, in the honey bee colony, a complex social breeding system described as a 'super-organism,' the female worker bees are sterile. The adult queen bee, selected and developed by the worker bees, is left to mate with the male drones.
Because the 'selfish' gene controlling worker sterility has never been isolated by scientists, the understanding of how reproductive altruism can evolve has been entirely theoretical, until now.
Researchers have, for the first time-ever, isolated a region on the honey bee genome that houses this 'selfish' gene in female workers bees. This means that the 'selfish' gene does exist, not just in theory but in reality. "We don't know exactly which gene it is, but we're getting close."
A new discovery provides conclusive evidence which supports decades-old evolutionary doctrines long accepted as fact.From the press release:
Since renowned British biologist Richard Dawkins ("The God Delusion") introduced the concept of the 'selfish gene' in 1976, scientists the world over have hailed the theory as a natural extension to the work of Charles Darwin.
In studying genomes, the word 'selfish' does not refer to the human-describing adjective of self-centered behavior but rather to the blind tendency of genes wanting to continue their existence into the next generation. Ironically, this 'selfish' tendency can appear anything but selfish when the gene does move ahead for selfless and even self-sacrificing reasons.
For instance, in the honey bee colony, a complex social breeding system described as a 'super-organism,' the female worker bees are sterile. The adult queen bee, selected and developed by the worker bees, is left to mate with the male drones.
Because the 'selfish' gene controlling worker sterility has never been isolated by scientists, the understanding of how reproductive altruism can evolve has been entirely theoretical, until now.
Researchers have, for the first time-ever, isolated a region on the honey bee genome that houses this 'selfish' gene in female workers bees. This means that the 'selfish' gene does exist, not just in theory but in reality. "We don't know exactly which gene it is, but we're getting close."
Indy Gets The Paper
Apparently Pete Von Sholly did not think much of the latest Indy flick...
Gryposaurus: #2 With A Bullet
Something called the “International Institute for Species Exploration” at Arizona State University has listed their top ten new species for 2007. Coming in at #2 is Gryposaurus monumentensis.
The Palaeoblog needs one of them new-fangled institutes, too.
The Amphioxus Genome
The amphioxus genome and the evolution of the chordate karyotype. 2008. N. H. Putnam et al. Nature 453: 1064-1071.
“amphioxus and humans had a common ancestor 550 million years ago, which allows us to use amphioxus as a surrogate for that ancestor in terms of understanding how vertebrate genomes evolved. If you compare the 23 chromosomes of humans with the 19 chromosomes of amphioxus, you find that both genomes can be expressed in terms of 17 ancestral pieces. So, we can say with some confidence that 550 million years ago, the common ancestor of amphioxus and humans had 17 chromosomal elements.”
Each of those 17 ancestral segments was duplicated twice in the evolution of vertebrates, after which most of the routine "housekeeping" genes lost the extra copies. Those left, totaling a couple thousand genes, found new functions that make us different from all other creatures.
"These few thousand genes have been retooled to make humans more elaborate than their simpler ancestors. They are involved in setting up the body plan of an animal and differentiating different parts of the animal. The hypothesis, pretty strongly supported by this data, is that the multiplication of this particular kind of gene and differentiation into different functions was important in the formation of vertebrates as we know them."
The researchers are trying to reconstruct what happened at the end of the Cambrian period 550 million years ago, when a creature similar to the lancelet evolved and diverged into three types of chordates: cephalocordates like the lancelet; urochordates like the sea squirt; and vertebrates like us. Cephalocordates and urochordates are invertebrates that have a flexible notochord rather than a bony spine protecting their spinal cord.
Interestingly, the sea squirt Ciona intestinalis, a tunicate, was previously thought to belong to the the earliest chordate lineage because of the sea squirt's very simple body plan. Comparison of the lancelet, sea squirt and human genomes, however, show instead that the lancelet lineage diverged before the tunicates and vertebrates.
The newly sequenced genome of the lancelet (amphioxus) provides the evidence that vertebrates evolved over the past 550 million years through a four-fold duplication of the genes of more primitive ancestors.From the press release:
“amphioxus and humans had a common ancestor 550 million years ago, which allows us to use amphioxus as a surrogate for that ancestor in terms of understanding how vertebrate genomes evolved. If you compare the 23 chromosomes of humans with the 19 chromosomes of amphioxus, you find that both genomes can be expressed in terms of 17 ancestral pieces. So, we can say with some confidence that 550 million years ago, the common ancestor of amphioxus and humans had 17 chromosomal elements.”
Each of those 17 ancestral segments was duplicated twice in the evolution of vertebrates, after which most of the routine "housekeeping" genes lost the extra copies. Those left, totaling a couple thousand genes, found new functions that make us different from all other creatures.
"These few thousand genes have been retooled to make humans more elaborate than their simpler ancestors. They are involved in setting up the body plan of an animal and differentiating different parts of the animal. The hypothesis, pretty strongly supported by this data, is that the multiplication of this particular kind of gene and differentiation into different functions was important in the formation of vertebrates as we know them."
The researchers are trying to reconstruct what happened at the end of the Cambrian period 550 million years ago, when a creature similar to the lancelet evolved and diverged into three types of chordates: cephalocordates like the lancelet; urochordates like the sea squirt; and vertebrates like us. Cephalocordates and urochordates are invertebrates that have a flexible notochord rather than a bony spine protecting their spinal cord.
Interestingly, the sea squirt Ciona intestinalis, a tunicate, was previously thought to belong to the the earliest chordate lineage because of the sea squirt's very simple body plan. Comparison of the lancelet, sea squirt and human genomes, however, show instead that the lancelet lineage diverged before the tunicates and vertebrates.
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