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跟著城市嚮導「老臺北胃」,用味道認識臺北很多朋友來臺北, 我怎麼選出這 10 大臺北小吃?在臺北, 一吃就知道:這就是臺灣味燒烤、火鍋很好吃, 不只是好吃,而是有「臺北日常感」臺北的小吃迷人,
吃完之後,你會記得臺北最後一個標準很簡單。 接下來的 10 樣臺北小吃, 第 1 家:饌堂-黑金滷肉飯(雙連店)|一碗就懂臺灣人的日常
如果只能用一道料理, 為什麼第一站,我會選饌堂? 不只是好吃,而是「現在的臺北感」 老臺北胃的帶路小提醒
這不是那種吃完會驚呼「哇!」的料理, 地址:103臺北市大同區雙連街55號1樓 電話:0225501379 第 2 家:富宏牛肉麵|臺北深夜也醒著的一碗熱湯
如果說滷肉飯代表的是臺灣人的日常, 為什麼老臺北胃會帶你來吃富宏? 不分時間,任何時候都適合的一碗麵 老臺北胃的帶路小提醒
這不是精緻料理, 地址:108臺北市萬華區洛陽街67號 電話:0223713028 菜單:https://www.facebook.com/pages/富宏牛肉麵-原建宏牛肉麵/ 第 3 家:士林夜市・吉彖皮蛋涼麵|臺北夏天最有記憶點的一口清爽
如果你在夏天來到臺北, 為什麼在夜市,我會帶你吃涼麵? 皮蛋,是靈魂,也是臺灣味的關鍵 老臺北胃的帶路小提醒
這不是華麗的小吃, 原來臺北的小吃,連氣候都一起考慮進去了。 地址:111臺北市士林區基河路114號 電話:0981014155 菜單:https://www.facebook.com/profile.php?id=100064238763064 第 4 家:胖老闆誠意肉粥|臺北人深夜最踏實的一碗粥
如果你問我, 為什麼這一碗粥,會被叫做「誠意」? 這不是觀光小吃,而是臺北人的生活片段
這些畫面, 老臺北胃的帶路小提醒
這不是為了拍照而存在的小吃, 地址:10491臺北市中山區長春路89-3號 電話:0913806139 第 5 家:圓環邊蚵仔煎|夜市裡最不能缺席的臺灣經典
如果要選一道 為什麼蚵仔煎,這麼能代表臺灣? 圓環邊,吃的是記憶感 老臺北胃的帶路小提醒
蚵仔煎不是細嚼慢嚥的料理, 地址:103臺北市大同區寧夏路46號 電話:0225580198 菜單:https://oystera.com.tw/menu 第 6 家:阿淑清蒸肉圓|第一次吃肉圓,就該從這裡開始
說到臺灣小吃, 清蒸肉圓,和你想像的不一樣 為什麼我會推薦給第一次來臺北的旅客? 老臺北胃的帶路小提醒
這不是夜市裡熱鬧喧囂的料理, 地址:242新北市新莊區復興路一段141號 電話:0229975505 第 7 家:胡記米粉湯|一碗最貼近臺北早晨的味道
如果說前面幾樣小吃, 為什麼米粉湯,這麼「臺北」? 配菜,才是這一碗的靈魂延伸 老臺北胃的帶路小提醒
這不是為了觀光而存在的小吃, 地址:106臺北市大安區大安路一段9號1樓 電話:0227212120 第 8 家:藍家割包|一口咬下的臺灣街頭記憶
如果要選一道 割包,為什麼被叫做「臺灣漢堡」? 藍家割包不是走浮誇路線, 老臺北胃的帶路小提醒
割包不是精緻料理, 地址:100臺北市中正區羅斯福路三段316巷8弄3號 電話:0223682060 菜單:https://instagram.com/lan_jia_gua_bao?utm_medium=copy_link 第 9 家:御品元冰火湯圓|臺北夜晚最溫柔的一碗甜
吃了一整天的臺北小吃, 為什麼叫「冰火」?這碗湯圓的關鍵就在這裡 這是一碗,會讓人慢下來的甜點 老臺北胃的帶路小提醒
這不是為了拍照而存在的甜點, 地址:106臺北市大安區通化街39巷50弄31號 電話:0955861816 菜單:https://instagram.com/lan_jia_gua_bao 第 10 家:頃刻間綠豆沙牛奶專賣店|把臺北的味道,留在最後一口清甜
走到這一站, 綠豆沙牛奶,為什麼這麼「臺灣」? 為什麼我會用它當作最後一站? 老臺北胃的帶路小提醒
這一杯, 地址:111臺北市士林區小北街1號 電話:0228818619 菜單:https://instagram.com/chill_out_moment?igshid=YmMyMTA2M2Y= 如果只有 3 天的自助旅行在臺北,怎麼吃這 10 家?第一次來臺北, 臺北 3 天小吃推薦行程表(老臺北胃版本)
雖然每個小吃的地點都有一點距離,但是你也知道,好吃的小吃,是值得你花一點時間前往品嘗
當你照著這 3 天走完, 老臺北胃帶路|這 10 口,就是我心中的臺北
寫到這裡, 如果你問我,
如果你是第一次來臺北, 胡記米粉湯值得吃嗎? 走完這 10 家, 你可能會發現一件事頃刻間綠豆沙牛奶專賣店需要加料嗎? 臺北的小吃,其實不急著被你記住。 它們就安靜地存在在街角、夜市、轉彎處,富宏牛肉麵容易接受嗎? 等你有一天,再回到這座城市。圓環邊蚵仔煎份量有誠意嗎? 如果你是第一次來臺北,胖老闆誠意肉粥一定要點嗎? 希望這份「老臺北胃帶路」的清單, 能幫你少一點猶豫、多一點安心。 不用擔心踩雷,圓環邊蚵仔煎點這個對嗎? 也不用為了排行而奔波,頃刻間綠豆沙牛奶專賣店不排隊會可惜嗎? 只要照著節奏走, 你就會吃到屬於自己的臺北味道。 而如果你已經來過臺北, 那更希望這篇文章,胡記米粉湯好吃嗎? 能帶你走進那些 你可能錯過、卻一直都在的日常小吃。 因為真正迷人的旅行, 從來不是把清單全部打勾, 而是某一天, 你突然想起那碗飯、那口湯、那杯甜,藍家割包當點心適合嗎? 然後在心裡對自己說一句:頃刻間綠豆沙牛奶專賣店好吃嗎? 「下次再去臺北,還想再吃一次。」 把這篇文章存起來、分享給一起旅行的人, 或是在規劃行程時,再回來看看。 讓味道,成為你認識臺北的方式。 下一次來臺北, 別急著走遠。 老臺北胃,阿淑清蒸肉圓真的有誠意嗎? 會一直在這些地方, 等你再回來。 Diegoalerus with fossil. Credit: San Diego Natural History Museum Paleontologists describe saber-toothed mammal new to science, offering view into evolution of meat-eaters. The fossil, housed in The Nat’s paleontology collection, offers a window into what the Earth was like during the Eocene Period, more than 40 million years ago. The specimen includes a lower jaw and well-preserved teeth, giving us new information about the behavior and evolution of some of the first mammals to have an exclusively meat-based diet. “Today the ability to eat an all-meat diet, also called hypercarnivory, isn’t uncommon. Tigers do it, polar bears can do it. If you have a house cat, you may even have a hypercarnivore at home. But 42 million years ago, mammals were only just figuring out how to survive on meat alone,” said Dr. Ashley Poust, a postdoctoral researcher at The Nat. “One big advance was to evolve specialized teeth for slicing flesh—which is something we see in this newly described specimen.” Dr. Ashley Poust, a post-doctoral researcher at The Nat, has just described what is now the earliest known cat-like predator in North America, west of the Rocky Mountains. The fossil in his hand belonged to Diegoaelurus, a bobcat-sized carnivore that lived around 42 million years ago. Diegoaelurus was much smaller than the commonly known Smilodon, or saber-tooth cat, seen in the background. Smilodon evolved roughly 40 million years after Diegoaelurus went extinct, but both animals were saber-toothed, hyper-carnivorous predators, meaning their diets consisted almost entirely of meat. Diegoaelurus and its few relatives, from Wyoming and China, were the first predators to evolve saber-teeth, though several other unrelated animals developed this adaptation much later in time. Credit: San Diego Natural History Museum This early meat-eating predator is part of a mysterious group of animals called Machaeroidines. Now completely extinct, they were not closely related to today’s living carnivores. “We know so little about Machaeroidines, so every new discovery greatly expands our picture of them,” said co-author Dr. Shawn Zack of the University of Arizona College of Medicine. “This relatively complete, well-preserved Diegoaelurus fossil is especially useful because the teeth let us infer the diet and start to understand how Machaeroidines are related to each other,” said Zack. Zack, Poust, and their third coauthor Hugh Wagner, also from The Nat, named the predator Diegoaelurus vanvalkenburghae. The name honors San Diego County where the specimen was found and scientist Blaire Van Valkenburgh, past president of the Society of Vertebrate Paleontology, whose foundational work on the evolution of carnivores influenced this research. About the Discovery D. vanvalkenburghae was about the size of a bobcat, but with a downturned bony chin to protect its long upper saber teeth. It would have been a powerful and relatively new kind of hunter. “Nothing like this had existed in mammals before,” said Poust. “A few mammal ancestors had long fangs, but Diegoaelurus and its few relatives represent the first cat-like approach to an all-meat diet, with saber teeth in front and slicing scissor teeth called carnassials in the back. It’s a potent combination that several animal groups have independently evolved in the millions of years since.” The Diegoaelurus jawbone fossil has been in The Nat’s collection since 1988. It was recovered from a construction site in Oceanside by the museum’s PaleoServices team. When this carnivorous animal was alive 42 million years ago, San Diego was covered in rainforests populated by many small, unusual rodents, marsupials, primates and hooved mammals. Credit: San Diego Natural History Museum This animal and its relatives represent a sort of evolutionary experiment, a first stab at hypercarnivory—a lifestyle that is followed today by true cats. With only a handful of fossil specimens from Wyoming and Asia, the machaeroidines are so poorly understood that scientists weren’t even sure if there were multiple species living within the same time period. “This fossil finding shows that machaeroidines were more diverse than we thought,” says Zack. “We already knew there was a large form, Apataelurus, which lived in eastern Utah. Now we have this smaller form, and it lived at approximately the same time. It raises the possibility that there may be more out there to find.” In addition to this overlapping existence, Poust points out they may have coexisted with other saber-toothed animals. “Diegoaleurus, though old, is the most recent of these machaeroidine predators. That puts it within striking distance of the time that the next cat-like animals arrived in North America, the nimravids or saber-tooth false-cats,” he said. “Did these groups ever meet, or even compete for space and prey? We don’t know yet, but San Diego is proving to be a surprisingly important place for carnivore evolution.” About the Santiago Formation The fossil comes from San Diego County in southern California, at a location first discovered in the 1980s by a local 12-year-old boy. Since then, “Jeff’s Discovery Site” has become an important fossil bed within a larger group of rocks called the Santiago Formation. Fossils of an entire ecosystem have been discovered in these 42 million-year-old rocks, painting a picture of a very different San Diego than the one we know today. Though largely inaccessible, these important fossil beds are occasionally exposed by construction projects and road expansions, allowing scientists from The Nat to keep digging for evidence of California’s ancient, tropical past. “Not only was San Diego further south due to tectonic plate movements, but the Eocene was a wetter, warmer world,” said Poust. “The Santiago Formation fossils show us a forested, wet California where tiny rhinos, early tapirs, and strange sheep-like, herbivorous oreodonts grazed under trees while unusual primates and marsupials clung to the canopy above. This richness of prey species would have been a smorgasbord for Diegoaelurus, allowing it to live the life of a specialized hunter before most other mammals.” The article “Diegoaelurus, a new machaeroidine (Oxyaenidae) from the Santiago Formation (late Uintan) of southern California and the relationships of Machaeroidinae, the oldest group of sabertooth mammals” is published in PeerJ. About the 3D Model The jaw of the newly named meat-eater is available to view in 3D for free on the San Diego Natural History Museum’s website. To access this 3D model and view in your browser, go here. Reference: “Diegoaelurus, a new machaeroidine (Oxyaenidae) from the Santiago Formation (late Uintan) of southern California and the relationships of Machaeroidinae, the oldest group of sabertooth mammals” by Shawn P. Zack, Ashley W. Poust and Hugh Wagner, 15 March 2022, PeerJ. DOI: 10.7717/peerj.13032 About the San Diego Natural History Museum The San Diego Natural History Museum (The Nat) is one of California’s oldest and most respected cultural and scientific institutions. Founded in 1874 by a small group of citizen scientists, the Museum works to preserve and protect this amazing place we call home. TU Delft researchers have developed a new method to assemble and image the molecular motor CMG in DNA replication, offering unprecedented resolution and insights into the replication process. This advancement could lead to a better understanding of genetic disorders and cancer development. DNA replication is the process whereby cells make an exact copy of their DNA before cell division. A key part of the intricate DNA replication machinery is a molecular motor called CMG, which has the vital task of separating the two strands of the DNA double helix so that they can be copied. An interdisciplinary team of researchers from TU Delft has now developed a new methodology to assemble and image the motion of CMG with unprecedented resolution. Their findings, published on 14th April 2023 in the open-access journal Nature Communications, will pave the way for further discoveries in the study of DNA replication. DNA replication is fundamental to life, as the faithful transmission of genetic information between generations of cells is crucial for the survival and health of all living organisms. It is carried out by an intricate cellular machinery, known as the replisome, that is made up of protein building blocks. A key component of this machinery is CMG, the molecular motor that powers the replisome during DNA replication. CMG has the important task of separating the two strands of the DNA double helix, so that the message that they encode can be read and copied. “Understanding how CMG moves along DNA is crucial for our understanding of DNA replication,” says Daniel Ramírez Montero, researcher and first author of the publication. Studying DNA replication is very important because errors in this process can lead to genetic disorders or cancer. Diagram of the experimental setup: (Top) Schematic of a CMG-containing DNA molecule held in place with optical tweezers (red beams) while a scanning laser (green beam) is taking a picture of it; CMG motors are depicted in blue. (Bottom) Actual image of a fluorescently labelled CMG molecular motor (green spot) on an unlabelled DNA molecule held in place with optical tweezers. Credit: Adapted from Ramirez Montero, et al, Nature Communications, 2023 Motion on Film In living cells, CMG is assembled and activated via an intricate cascade of biochemical reactions that involves 36 different proteins. A group of TU Delft researchers led by Spinoza laureate Professor Nynke Dekker, in collaboration with Francis Crick Institute group leader Dr. John Diffley, has developed a way to carry out this tightly controlled process outside of the cell and measure the motion of individual CMG molecular motors. The researchers extracted all 36 proteins from cells to build up CMG on DNA. By attaching fluorescent labels to some of the proteins, they could directly observe the movement of the CMG molecular motor under a fluorescent microscope. “With this new approach, we were able to visualize the motion of individual CMGs made from scratch. We used optical tweezers to hold the CMG-containing DNA still for easier visualization, and then took movies of CMG as it moved along the DNA. This way, we could measure its motion at the single-molecule level for the first time,” explains Ramírez Montero. Example of CMG motors moving along a DNA molecule held in place by an optical trap. Credit: Taken from Ramírez Montero, et al., Nature Communications, 2023. New insights Using their bottom-up approach, which combines cutting-edge biochemistry and biophysics, the group of researchers was able to directly visualize the motion of individual CMG motors assembled from scratch for the first time, and measure this motion with unprecedented resolution. In addition, they made the unexpected discovery that CMG can move randomly along the DNA when a key molecule called ATP is absent; furthermore, they show that subsequent re-binding of ATP allows CMG to tightly hold onto the DNA, thereby halting its random motion. This halting is important, as it likely facilitates the activation of CMG, a critical process in the initiation of DNA replication. This work will pave the way for further studies that may uncover unknown details of key processes in DNA replication. These discoveries can in turn get us closer to understanding how cells manage to faithfully transmit their genetic information with every cell division, as well as to better understand the errors in the process that can contribute to the development of genetic disorders or cancer. Ramírez Montero: “Biological systems can look very complicated and chaotic at first sight, but by observing them at this resolution, we can understand the simple and elegant physics behind them.” Reference: “Nucleotide binding halts diffusion of the eukaryotic replicative helicase during activation” by Daniel Ramírez Montero, Humberto Sánchez, Edo van Veen, Theo van Laar, Belén Solano, John F. X. Diffley and Nynke H. Dekker, 14 April 2023, Nature Communications. DOI: 10.1038/s41467-023-37093-9 Researchers have documented painted lady butterflies’ transoceanic migration of over 4200 km, linking Europe and South America through genetic and environmental evidence. This study highlights the significant ecological implications of such long-distance migrations, especially under changing global climatic conditions. Scientists at CSIC have documented a 4200 km oceanic flight from West Africa to French Guiana in South America. An international team of researchers, led by the Spanish National Research Council (CSIC), has documented a transoceanic flight of more than 4,200 km (2,600 miles) by painted lady butterflies (Vanessa cardui), setting a record for an insect. The study, published in the journal Nature Communications, involved researchers from the Botanical Institute of Barcelona (IBB), a joint center of the CSIC and the Natural Sciences Museum of Barcelona, as well as from the W. Szafer Botanical Institute (Poland), the University of Ottawa (Canada), the Institute of Evolutionary Biology (IBE, CSIC-Universitat Pompeu Fabra), and Harvard University (USA). In October 2013, Gerard Talavera, a CSIC researcher at the Botanical Institute of Barcelona, identified several painted lady butterflies on the Atlantic beaches of French Guiana. These observations were completely unusual, as this species is not found in South America. Where did they come from? A Sum of Novel Techniques Solves the Enigma A multidisciplinary approach has deciphered the route and origin of these butterflies. The initial hypotheses were that they could have originated in North America, where the nearest populations are found, or that they traveled from Africa or Europe. By analyzing wind trajectories, researchers observed a sustained directional pattern from West Africa, opening the possibility that they had crossed the Atlantic. By studying the genetic diversity of the butterflies, which required collecting samples from populations on all continents, they determined that the specimens observed in South America were related to populations in Europe and Africa, ruling out the possibility of a North American origin. The researchers also analyzed the pollen DNA that the butterflies carried on their bodies, and identified two plant species found only in tropical Africa, thus proving that the butterflies visited flowers in that region. A painted lady Butterfly. Credit: Gerard Talavera Lastly, the scientists analyzed the stable isotopes of hydrogen and strontium from the butterflies’ wings. The wings preserve isotopic signatures unique to the place where they were raised in their larval stage, allowing inference of their natal origin. With this data, they determined that their origin was most likely in western European countries such as France, Ireland, the United Kingdom, or Portugal. “The painted lady butterflies reached South America from West Africa, flying at least 4200 km (2600 miles) over the Atlantic. But their journey could have been even longer, starting in Europe and passing through three continents, implying a migration of 7000 km (4350 miles) or more. This is an extraordinary feat for such a small insect,” explains Clément Bataille, a professor at the University of Ottawa in Canada and co-author of the study. “We tend to see butterflies as a symbol of the fragility of beauty, but science shows us that they can perform incredible feats. There is still much to discover about their capabilities,” says Roger Vila, a researcher at the Institute of Evolutionary Biology (IBE, CSIC-Universitat Pompeu Fabra) and co-author of the study. With the Help of the Wind The researchers have modeled the energetic cost of the journey and calculated that the flight across the ocean, without any stop, lasted between 5 and 8 days. This was energetically possible because it was facilitated by favourable wind currents. “The butterflies could only have completed this flight using a strategy alternating between minimal effort to avoid falling into the sea, facilitated by ascending winds, and active flight, which requires more energy consumption. We estimate that without wind, the butterflies could have flown a maximum of 780 km (480 miles) before exhausting all their fat and thus their energy,” comments Eric Toro-Delgado, one of the authors of the paper. The researchers highlight the importance of the Saharan air layer as a potential aerial highway for dispersion. These wind currents, which are prevalent throughout the year, transport large amounts of Saharan dust from Africa to America and participate in important biogeochemical cycles. However, the biological components transported, including living organisms, should be studied in depth. The Potential Impact of Migration in the Context of Global Change This finding suggests that natural aerial corridors connecting continents may exist, facilitating the dispersal of species on a much larger scale than previously imagined. “This discovery opens new perspectives on the capabilities of insects to disperse over long distances, even across seas and oceans. It is possible that we are underestimating the frequency and impact of these movements on our ecosystems,’ comments Gerard Talavera, leader of the study. “Throughout history, migratory phenomena have been important in defining the distributions of species that we observe today,” he adds. The researchers emphasize that with global warming and changing climatic patterns, it is likely that we will observe greater alterations and even an increase in these long-distance dispersal events, which could have significant implications for biodiversity and ecosystems worldwide. “It is essential to promote systematic monitoring routines for dispersing insects, which could help predict and mitigate potential risks to biodiversity resulting from global change,” concludes Gerard Talavera. Reference: “A trans-oceanic flight of over 4,200 km by painted lady butterflies” by Tomasz Suchan, Clément P. Bataille, Megan S. Reich, Eric Toro-Delgado, Roger Vila, Naomi E. Pierce and Gerard Talavera, 25 June 2024, Nature Communications. DOI: 10.1038/s41467-024-49079-2 RE98915RGPOIOKJ 圓環邊蚵仔煎需要特地跑一趟嗎? 》台北夜市美食絕對要吃的10家餐廳|台中人私藏推薦士林夜市-吉彖皮蛋涼麵推薦點什麼? 》台北美食餐廳推薦Top10|吃貨實測大公開,這些店真的值得再訪嗎?阿淑清蒸肉圓份量有誠意嗎? 》台北夜市美食最值得吃的10家餐廳|實訪整理 |
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