Showing posts with label forensics. Show all posts
Showing posts with label forensics. Show all posts

Wednesday, February 1, 2017

An Overview of Dactylography

Two of my students prepared a powerful presentation on dactylography, the study of finger- and possibly toe-prints. The assignment was to choose a crime-related topic and for each person in the team to prepare a 3-4 minutes presentation, informing the audience of information previously unknown. Very unique topic, and very well done! And thanks, Han Woong and Hye Jeong, for allowing me to share your excellent efforts.










Tuesday, May 6, 2014

Skeletons Yield Secrets of the Black Plague

Skeletons Yield Secrets of the Black Plague — (Huffington Post)

LONDON (AP) — You can learn a lot from a tooth.
Molars taken from skeletons unearthed by work on a new London railway line are revealing secrets of the medieval Black Death — and of its victims.
This week, Don Walker, an osteologist with the Museum of London, outlined the biography of one man whose ancient bones were found by construction workers under London's Charterhouse Square: He was breast-fed as a baby, moved to London from another part of England, had bad tooth decay in childhood, grew up to work as a laborer, and died in early adulthood from the bubonic plague that ravaged Europe in the 14th century.
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The poor man's life was nasty, brutish and short, but his afterlife is long and illuminating.
"It's fantastic we can look in such detail at an individual who died 600 years ago," Walker said. "It's incredible, really."
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The 25 skeletons were uncovered last year during work on Crossrail, a new rail line that's boring 13 miles (21 kilometers) of tunnels under the heart of the city. Archaeologists immediately suspected the bones came from a cemetery for plague victims. The location, outside the walls of the medieval city, chimes with historical accounts. The square, once home to a monastery, is one of the few spots in the city to stay undisturbed for centuries.
To test their theory, scientists took one tooth from each of 12 skeletons, then extracted DNA from the teeth. They announced Sunday that tests had found the presence of the plague bacterium, Yersinia pestis, in several of the teeth, meaning the individuals had been exposed to — and likely died from — the Black Death.
The findings didn't stop there. Archaeologists, historians, microbiologists and physicists worked together to apply techniques from several scientific disciplines to the discovery.
Radiocarbon dating and analysis of pottery shards helped determine when the burials took place. Forensic geophysics — more commonly used in murder and war-crimes investigations — helped locate more graves under the square. Studying oxygen and strontium isotopes in the bones revealed details of diet and health.
These were, by and large, poor people. Many of the skeletons showed signs of malnutrition consistent with the "Great Famine" that struck Europe 30 years before the Black Death. Many had back injuries suggesting lives of hard labor. One man became a vegetarian late in life, indicating he may have entered an order of monks.
Archaeologists were surprised to discover that the skeletons lay in layers and appeared to come from three different periods: the original Black Death epidemic in 1348-1350, and later outbreaks in 1361 and the early 15th century.
"It suggests that the burial ground was used again and again for the burial of plague victims," said Jay Carver, Crossrail's lead archaeologist.
The Black Death is thought to have killed at least 75 million people, including more than half of Britain's population, yet the burials suggest a surprisingly high degree of social order — at first. As the plague ravaged continental Europe — borne westward by fleas on rats — city fathers leased land for an emergency burial ground. The burials were simple but orderly, the bodies wrapped in shrouds and laid out in neat rows, sealed with a layer of clay.
The later skeletons, however, show more signs of upper-body injuries, consistent with a period of lawlessness and social breakdown.
Archaeologists are planning a new dig this summer to learn how many bodies lie under the square. Carver says the number appears to be in the "low thousands."
And the teeth may not have yielded all their secrets. Experts in ancient DNA at McMaster University in Canada are working to sequence the plague genome found in the teeth, in order to learn more about a disease that still infects several thousand people a year around the world. Most patients recover if treated early with antibiotics.
Scientists want to know if the 14th-century disease is the same as the modern version, or whether the disease has evolved. Study of DNA from the teeth of skeletons discovered in the 1980s at another London plague cemetery suggested the bug was largely unchanged, but the scientific jury is still out.
Brendan Wren, a professor of molecular biology at the London School of Hygiene and Tropical Medicine, said the new information could help scientists "understand how the plague bacillus — and other nasty bugs — become so virulent to humans."
"It is useful information that could warn and avert potential epidemics and pandemics," he said.
Jill Lawless can be reached at https://twitter.com/JillLawless

Friday, November 2, 2012

Bone Development and the Growing Child

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The study of forensics, an aspect of anthropology, provides an internal perspective on the development of the human body; from birth until death years later, marked changes are documented in the bones and cartilage for the deciphering of the forensics specialist. Though I have never formally studied forensics, the random books I have read have provided a look at the human skeleton that even my nurse mother and nurse friends are surprised at. Humans in death, according to forensics, tell the story of their broader experiences, their diet and their development in life.

When the human infant is born, and sometimes quite forcibly with the use of forceps, care must be given to protect the child’s fragile head. Unlike the human adult, babies’ craniums are three unfused plates which fold in slightly on themselves so the large head can pass through the birth canal (Scheve 2012). Babies, in fact, are born with about 300 different bones and cartilage elements, and many of these fragments will eventually fuse together to form adult bones, of which human adults have 206 (ibid). Because babies have so many parts that will fuse, their bodies are more flexible, are softer, and therefore are more susceptible to slight bumps or injuries than the body of an older baby of two, whose three cranial plates have almost completely fused[1], or a child of six whose patella are beginning to join together and ossify, that is, harden into bones (Medical MultiMEDIA Group 2009-2011). Jean Auel (2002) in her anthropological fiction on Neanderthals compared a Neanderthal newborn baby with its hard head and fused neck and the baby’s ability to crawl, even walk, and follow its mother in pursuit of milk with the Homo sapien infant that was weak, fragile and needed care in lifting its wobbly head. According to Jean Auel, Neanderthals were much like baby animals at birth and their bones were already ossified to give them the strength and mobility to seek food and to flee from threat or enemy. Homo sapiens, on the other hand, were a unique group of creatures that were intelligent, linguistically capable but helpless, although the Neanderthals did observe that the helplessness gradually disappeared.

At birth human babies have many sesamoid cartilage embedded in tendons, and which are primarily located at joints—the wrists, hands, feet, and of course the knees where various sesamoid cartilage gather (Coutsoukis 1995-2007). After six or so months, babies begin to crawl around and fall on their knees and not damage the knee caps as their knee caps are still a soft collection of cartilage. By the age of six most of the cartilage has gathered and formed and from age six to twelve the kneecaps are ossifying (ibid). No more will the growing child fall on knees and not be hurt. Patella injuries are painful and damaging, but by the age of three and four the children have been stretched in growth and their center of balance is now in the midriff and no longer are they top-heavy with an upper body, out-of-balance center of balance. Children beyond age four rarely fall from a poor center of gravity, and so their kneecap development, as well as other sesamoid ossification, is harmonious with their kinesthetic development. Just an aside, forensics specialist use the kneecap development as one of the keys in determining skeletal age, gender and even sometimes race. In the instance of age, the knee cap reaches its maximal thickness of 6 mm (0.24 in) at 30 years of age (Wikipedia 3 Oct 2012), and so forensics anthropologists can determine age by the development, or lack of, by studying the patella.

Just as the cranium is fragile, so is the infant’s chest cavity. The infant has soft bone structure, which allowed it great fetal-position flexibility within the womb, but out in the real world of hard knocks, the baby is at a disadvantage and pressure upon its weak chest could cause great damage. According to Human Anatomy (2011), the sternum in the infant consists of two cartilaginous bars, which fuse and ossify over time. As the sternum is not fused at birth, neither are the ribs. The cartilaginous joinings for the clavicles appear at the age of six months but rarely unite with other centers on the sternum except in old age. Likewise, the first of four cartilaginous joints for joining the first four ribs (on each side) appear at six months for the first rib, at seven months for the second and third ribs, and at about one year of age for the fourth rib. At puberty, these four ribs and the sternum unite with each other. Then on the xiphoid process, the lowest small segment on the sternum, a cartilaginous joining appears between the fifth and the eighteenth year of life; this joining will never completely ossify (Human Anatomy 2011). Protecting the fragile chest cavity in an infant, therefore, is an imperative as the protective ribs are only a lightweight frame and, until ossification begins, pressure or blows to the chest could damage or kill. Forensics scientists, in understanding chest injuries and the age of the child, and even the age of when old injuries took place, see “documentation” of abuse, neglect or injury by studying the sternum and ribs of the injured rib cage.

An example of this is provided by Clea Koff (2004) in her book Bone Woman.  Clea tells how she as a forensics anthropologist opened mass graves in Rwanda, Bosnia, Croatia and Kosova, where thousands were victims of genocide. Her job was to document by the skeletal remains, by the remnants of clothing on the bodies and the contents of pockets, what was the identity of each victim, from small infant (some unborn) to the aged and decrepit elderly. By studying primarily the head and its sutures for gender and age, the hip bones to tell gender, the sternum and patella to confirm age or even tell age when necessary, Clea Koff provided evidence for the UN Tribunal that charged the afore-mentioned countries with genocide and war-time atrocities. According to Clea, the victims were “telling” of their diet (she noted malnutrition and diseases of infection in some skeletons), their development (the bones clearly stated their age, and after puberty, also their gender), and she documented the fractures which could readily be classed as blunt or sharp weapon injuries, and the scratches, impressions and punctures which clearly pointed to the type of weapons used—knives, shovels or other common tools.

People theoretically know that babies are fragile, but when looking at the structure of the bones from a forensics point of view, the truth about just how fragile and especially why infants are so fragile in their first months becomes obvious. As bones ossify and gain strength and sturdiness, the developing body needs less protection and can participate in the more rough-and-tumble of activity and sports. I do not remember where I read this, but bones in the teens and early twenties are lighter weight than in later years. Bones thicken, but why I do not know. Is it because of age and typically with the increase of age there is an increase of weight and so the body needs to “protect” itself to handle the greater weight stress load, or is the thickening just a phenomenon of isoblasts and isoclasts perpetually functioning to tear down and recreate bone? The Internet did not provide this answer, but someday I do plan to take a forensics class or two, just for the knowledge, and then maybe I will get the answer. What I do know, however, is that the ossification of bones from birth takes about 20 years to complete (Nemous Foundation 1995-2012) and with ossified bones instead of loose cartilage floating, the body is strengthened but at the cost of loss of flexibility.


Bibliography

Auel, J. (2002). The clan of the cave bears. New York: Bantam Books.

Coutsoukis, P. (1995-2007). The sesamoid bone. Human Anatomy. Retrieved from http://www.theodora.com/anatomy/the_sesamoid_bones.html.

Human Anatomy (2011). Sternum: Chest bone. MANanatomy. Retrieved from http://www.mananatomy.com/body-systems/skeletal-system/sternum-chest-bone.

Koff, C. (2004). The bone woman: A forensic anthropologist’s search for truth in the mass graves of Rwanda, Bosnia, Croatia and Kosovo. New York: Random House.

Manheim, M.H. (2000). The bone lady: Life as a forensic anthropologist. New York: Penguin Books.          

Medical MultiMEDIA Group LLC (2009-2011). An algorithm for the treatment of painful bipartite patella. Othropod. Retrieved from http://www.eorthopod.com/content/an-algorithm-for-the-treatment-of-painful-bipartite-patella.

Nemous Foundation. (1995-2012). Bones, muscles and joints. KidsHealth from Nemous. Retrieved from http://kidshealth.org/parent/general/body_basics/bones_muscles_joints.html?tracking=P_RelatedArticle#.

Scheve, T. (2012) Do babies have kneecaps? Fit & Health. Retrieved from http://health.howstuffworks.com/human-body/systems/musculoskeletal/babies-kneecaps1.htm.

Wikipedia (3 October 2012). Patella in Wikipedia. Retrieved from http://en.wikipedia.org/wiki/Patella.








[1] The sutures that fuse or hold the cranial plates together remain strong up to around the mid-sixties or seventies when the sutures begin to break apart. The elderly, for this reason, also must take more caution to prevent head injuries as the brain is not as protected by the solid cranium anymore (Manheim 2000).