2011年 7/23 Neil 上課

mane 馬、獅等的)鬃毛

The horse tossed his mane. 馬甩甩鬃毛。
A zebra has black stripes. 斑馬有黑色的條紋。








http://www.lion.my/lion-animal/Lion%20Mane.htm


Also unlike any other cat, the lion possesses a mane of long, fine hair around the head. Only male lions have manes, which can be from a light tawny color, to a ruddy yellow, dark brown to almost jet black. The lion's mane is thought to make the animal look bigger, and so frighten off any animals, like hyenas, that would want to attack the pride. It is also speculated by some scientists that the lion's mane is a sexual cue to the females. It is discovered that females preferred male lions with fuller and darker manes. Unfortunately, the male lion cannot hunt for itself due to its mane; it does indeed make the lion look bigger, and so it cannot hide as well as the females in the grass, and becomes conspicuous to prey animals.


The Asian lion's mane is much smaller than its African cousin's. Because it is smaller, the Asian lion's ears are visible; African lion's ears are often obscured by their thicker manes. It takes a male lion 5-7 years for its mane to grow to its full length. It starts out as longer hairs on the sides of the head and a ray of hair extending from the front of the skull to the back along the neck, then it fills out from there. Some lions have very thick manes and some have sparse thin manes, depending on where they live. Mane production is directly related to sex hormones; this has been proven in captivity, where male lions that had been castrated lost their manes entirely. It is due to this mane of hair that the lion has become so popular, and is portrayed as the "King of Beasts" in so many cultures.


http://www.environment.ucla.edu/ctr/news/article.asp?parentID=10947

How the Zebra Changed its Stripes: Evolution of Stripe Variation in the Plains Zebra
by Brenda Larison, Ph.D., Researcher, Ecology and Evolutionary Biology and Center for Tropical Research, Institute of the Environment and Sustainability, UCLA

Download File: Larison_FeatureArticle_S11-im-cwd.pdf


Have you ever wondered why zebra have stripes? There are many hypotheses, including crypsis, predator confusion, thermoregulation, and avoidance of tsetse fly bites (through which a trypanosome causing sleeping sickness is transmitted), but no one really knows the answer. Variation is an important key to understanding how and why zebra stripes evolved. If all zebra looked alike we would have no easy way of understanding how stripes evolved - what genes code for stripes or what ecological forces have selected for stripes. Fortunately, plains zebra show a lot of variation in stripe pattern that we can make use of, including populations with zebra that are fully striped from head to toe and others in which zebra have few or no stripes on their legs. The extinct quagga subspecies only had stripes to the shoulder.



Striped variation in the plains zebra.
Working with collaborators at UCLA and elsewhere, I am taking advantage of this stripe variation to study both the genetic basis (how) and adaptive reasons (why) for zebra stripes. To identify genes responsible for stripe variation, we are sampling in several wild populations, including some with fully striped zebra and others with zebra with less striping. We also will take advantage of something rarely available for studies of this sort - a captive population that has been under human-mediated selection for a trait that is exhibited in the wild. The Quagga Project was started more than 20 years ago with 18 wild founder zebra and has been breeding zebra for four generations in an effort to bring back the minimally striped phenotype of the quagga subspecies. They have been very successful at breeding zebra with very little striping. Sampling from both wild and domestic populations allows us to leverage the different advantages each has to offer.



Left: A 1793 illustration of King Louis XVI’s quagga stallion by Nicolas Marechal. Right: Henry – a fourth generation Quagga Project zebra.
To correlate genes with stripe pattern, we need a good photo and plenty of high-quality DNA. The least invasive way to get the DNA we need is to collect a remote biopsy sample. We use a dart gun to shoot a syringe affixed with a biopsy needle. When the needle hits the zebra, it cuts a tiny bit of skin tissue and then falls out. The zebras may startle a little when they are hit, but they typically calm down right away and go back to grazing. We then locate where the dart fell and collect the sample.





Darted zebra at Etosha National Park, Namibia.

In 2009, CTR Director Tom Smith and I visited Etosha National Park in Namibia and Hluhluwe-Imfolozi National Park in South Africa to collect samples. Sampling was easy in these well-visited parks where animals are used to cars and people. We also visited the Quagga Project in the Cape region of South Africa, but these zebra were skittish as they are less used to human traffic. The Quagga Project will be collecting blood samples for us during their upcoming capture effort as they plan for a 5th generation, and I will revisit the project this fall with blinds and salt licks to try to get close enough to dart some myself. Using the samples we previously collected in Africa, I have been working in Professor Robert Wayne’s lab at UCLA and Professor Sergey Nuzhdin’s lab at the University of Southern California, using high-throughput genome sequencing technologies to generate tens of thousands of markers across the entire genome that we can use to discover correlations between genetic variation and stripe variation.
To understand the adaptive reasons for stripe pattern variation, we are using spatial modeling to correlate stripe pattern variation with environmental variation. So far, I have quantified striping in 107 zebra from 21 populations using my own photos, those of other researchers, and tourist photos from sites like Flikr (as long as the location is clearly stated). Working with Dr. Henri Thomassen, a Senior Research Fellow at CTR, I modeled the distribution of stripe pattern characteristics. The results so far are preliminary, but the map on the right shows the distribution of leg striping as predicted by 16 environmental variables and geographic distance. Modeling shows that several ecological variables are correlated with stripe variation even after geographic distance is accounted for, which suggests that there may be an adaptive component to stripe variation that merits further exploration.




Predicted distribution of leg stripes.
Blue/violet: more striped. Green/yellow: less striped.



As the graph shows, zebra from northern populations are fully striped on the legs, while zebra from southern populations are always less striped, but the extent of leg striping varies widely. The graph also illustrates maximum annual vegetation density (NDVImax), one of the environmental variables most strongly associated with the amount of striping on the legs. But why would vegetation density be important? Perhaps there is an interaction between vegetation density and stripe pattern that influences predation risk, or perhaps tsetse flies are more common in areas with higher vegetation density. Zebra stripes have been shown to deter tsetse fly bites, which predicts more striping where tsetse flies are common.





Graph plotting the amount of striping on legs against vegetation density. Black circles represent zebra populations from the northern part of their range. Open circles represent southern populations.


The stripe variation that I have described so far is just the tip of the iceberg. Zebra have a lot of other interesting stripe variants. An exciting but rare zebra pattern we plan to study is SPOTS! Yes, some zebra have spots. They may be light-colored zebra with dark spots instead of stripes, or they may be melanistic zebra with white spots. In Etosha National Park, there are a number of melanistic zebra that are not spotted, but their stripes blend together until their torsos are almost solid black. We are working with local veterinarians and others to collect DNA and photos of these rare individuals. By identifying the genes harboring the mutations that result in these beautiful patterns, we can shed additional light on the biological mechanisms responsible for zebra stripes.



Left: Spotted zebra photographed in Nairobi National Park in Kenya in 2009. Right: Spotted zebra from Botswana photographed in 1967.
Photos contributed by: Brenda Larison, Dan Rubenstein, Quagga Project, and Kenya Wildlife Service


Zulu story about the origin of zebra stripes
(as told to Brenda Larison by a researcher in Kwa-Zulu Natal)

“When the Creator first made the animals, they all had identical dull grey coats. One day the Creator got inspired and created many new coats with beautiful colors and patterns and the word went out that the animals could come claim them, first-come, first-pick. The animals headed off to claim their new coats, but the zebra got distracted and stopped to graze. When a giraffe passed by with its new coat, the zebra said to himself, ’Oh, how beautiful, I must go claim a coat for myself,’ but before long he stopped again to graze. This pattern repeated, with the zebra being newly inspired to go claim his own coat as newly beautiful lion, cheetah, kudu, and other animals passed by, but then, just as quickly, he would be distracted by all the delicious grass and return to grazing. When the zebra finally reached his destination, there was but a single solid black coat left, so he put it on. But he had grown so fat with grazing that the coat shredded as he pulled it over his swollen belly. The zebra decided the shredded black coat was still better than his old grey coat, so he kept it, and that is how the zebra got its stripes.”

William 英國行 資料




My name is Hung Wei Zeng. I get lost. 我迷路了Can you call my friend in England? 英國 This is the number
889034

Tube 地鐵
Underground 地鐵

Luggage 行李







The United Kingdom brings together the two kingdoms of England

and Scotland.


King 國王 kingdom王國
Land 土地


London is home to about 6.8 million people. On the south cost, a rail tunnel links
England with northern France.

Link 連接
Rail 鐵路
tunnel 隧道 KK [ˋtʌn!] DJ [ˋtʌnəl]
http://www.seat61.com/France.htm






The Palace of Westminster, the Clock Tower and Westminster Bridge




The Palace of Westminster, also known as the Houses of Parliament or Westminster Palace, is the meeting place of the two houses of the Parliament of the United Kingdom—the House of Lords and the House of Commons. It lies on the north bank of the River Thames[note 1] in the heart of the London borough of the City of Westminster, close to the historic Westminster Abbey and the government buildings of Whitehall and Downing Street. The name may refer to either of two structures: the Old Palace, a medieval building complex most of which was destroyed in 1834, and its replacement New Palace that stands today; it has retained its original style and status as a royal residence for ceremonial purposes.


西敏寺(Westminster Abbey



西敏市聖彼得牧師團教堂正面浮雕
西敏市聖彼得牧師團教堂(The Collegiate Church of St Peter at Westminster),通稱西敏寺(Westminster Abbey,音譯為「威斯敏斯特修道院」),是一座位於倫敦市中心西敏市區的大型哥德式建築風格的教堂,這裡一直是英國君主(從英格蘭、不列顛到英聯邦時期)安葬或加冕登基的地點。曾在1546–1556年短暫成為主教座堂,現為王家勝跡。1987年被列為世界文化遺產。




Buckingham Palace



1st Day: 聖保羅大教堂
http://www.backpackers.com.tw/forum/archive/index.php/t-2959.html


The British Museum
http://www.britishmuseum.org/
http://www.britishmuseum.org/default.aspx



聖保羅大教堂簡介
聖保羅大教堂位於英國英格蘭倫敦市中心、在倫敦塔與西敏寺之間的泰晤士河畔紐蓋特街,建於西元1675年至1710年,是英國國教的中心教堂所在,華麗的巴洛克風格為古典主義建築的紀念碑,由英國建築師C‧雷恩(Christopher Wren)設計,僅次羅馬聖彼得教堂是世界第二大圓頂教堂,聖保羅大教堂在西元1981年舉行查爾斯王子和昔日女王黛安娜的婚禮,不僅是英國倫敦相當神聖的地方,也深受當地民眾和觀光客的喜愛,成為英國倫敦都相當著名的旅遊景點。

聖保羅大教堂簡介St Paul's Cathedral [kəˋθidrəl]
聖保羅大教堂位於英國英格蘭倫敦市中心、在倫敦塔與西敏寺之間的泰晤士河畔紐蓋特街,建於西元1675年至1710年,是英國國教的中心教堂所在,華麗的巴洛克風格為古典主義建築的紀念碑,由英國建築師C‧雷恩(Christopher Wren)設計,僅次羅馬聖彼得教堂是世界第二大圓頂教堂,聖保羅大教堂在西元1981年舉行查爾斯王子和昔日女王黛安娜的婚禮,不僅是英國倫敦相當神聖的地方,也深受當地民眾和觀光客的喜愛,成為