字體:小 中 大 |
|
|
|||||||||||||||||||||||||||||||||||||||||||||
| 2025/12/23 16:59:13瀏覽62|回應0|推薦0 | |||||||||||||||||||||||||||||||||||||||||||||
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, 胖老闆誠意肉粥推薦嗎? 走完這 10 家, 你可能會發現一件事御品元冰火湯圓不加辣好吃嗎? 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,藍家割包不排隊會可惜嗎? 等你有一天,再回到這座城市。富宏牛肉麵好吃嗎? 如果你是第一次來臺北,士林夜市-吉彖皮蛋涼麵有必要排隊嗎? 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,藍家割包年輕人會喜歡嗎? 也不用為了排行而奔波,胡記米粉湯怎麼點比較好? 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,御品元冰火湯圓值得排隊嗎? 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,胖老闆誠意肉粥原味就好嗎? 然後在心裡對自己說一句:御品元冰火湯圓回訪率高嗎? 「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,頃刻間綠豆沙牛奶專賣店觀光客推薦嗎? 會一直在這些地方, 等你再回來。 Scientists have identified crucial sites on the protein CK1δ that regulate our circadian rhythm, potentially offering new ways to treat sleep, metabolic, and other health disorders. A team of scientists from Singapore and the United States discovered how a protein that regulates our biological clock can alter its own function, potentially leading to new treatments for jet lag and seasonal adjustments. Researchers from Duke-NUS Medical School and the University of California, Santa Cruz, have uncovered the key to regulating our internal biological clock. They found that this regulator is located at the tail end of Casein Kinase 1 delta (CK1δ), a protein that serves as a pacemaker for our circadian rhythm—the natural 24-hour cycles that govern sleep-wake patterns and various daily functions. Published in the journal PNAS, their findings could pave the way for new approaches to treating disorders related to our body clock. CK1δ regulates circadian rhythms by tagging other proteins involved in our biological clock to fine-tune the timing of these rhythms. In addition to modifying other proteins, CK1δ itself can be tagged, thereby altering its own ability to regulate the proteins involved in running the body’s internal clock. Previous research identified two distinct versions of CK1δ, known as isoforms δ1 and δ2, which vary by just 16 building blocks or amino acids right at the end of the protein in a part called the C-terminal tail. Yet these small differences significantly impact CK1δ’s function. While it was known that when these proteins are tagged, their ability to regulate the body clock decreases, no one knew exactly how this happened. Unraveling the Mechanism Behind CK1δ Tagging Using advanced spectroscopy and spectrometry techniques to zoom in on the tails, the researchers found that how the proteins are tagged is determined by their distinct tail sequences. Howard Hughes Medical Institute Investigator Professor Carrie Partch from the Department of Chemistry & Biochemistry at the University of California, Santa Cruz and corresponding author of the study explained: “Our findings pinpoint to three specific sites on CK1δ’s tail where phosphate groups can attach, and these sites are crucial for controlling the protein’s activity. When these spots get tagged with a phosphate group, CK1δ becomes less active, which means it doesn’t influence our circadian rhythms as effectively. Using high-resolution analysis, we were able to pinpoint the exact sites involved—and that’s really exciting.” A peptide (shown in mesh) with attached phosphate tags (red and orange spheres) blocks the active site of CK1δ. Tagging the tail end of CK1δ, a process known as auto-phosphorylation, makes the protein less active, and with that less able to fine-tune the body’s internal clocks. Credit: Jon Philpott, Rajesh Narasimamurthy and David Virshup Having first studied this protein more than 30 years ago while investigating its role in cell division, Professor David Virshup, the director of the Cancer and Stem Cell Biology Programme at Duke-NUS and co-corresponding author of the study, elaborated: “With the technology we have available now, we were finally able to get to the bottom of a question that has gone unanswered for more than 25 years. We found that the δ1 tail interacts more extensively with the main part of the protein, leading to greater self-inhibition compared to δ2. This means that δ1 is more tightly regulated by its tail than δ2. When these sites are mutated or removed, δ1 becomes more active, which leads to changes in circadian rhythms. In contrast, δ2 does not have the same regulatory effect from its tail region.” This discovery highlights how a small part of CK1δ can greatly influence its overall activity. This self-regulation is vital for keeping CK1δ activity balanced, which, in turn, helps regulate our circadian rhythms. Broader Implications of the Research The study also addressed the wider implications of these findings. CK1δ plays a role in several important processes beyond circadian rhythms, including cell division, cancer development, and certain neurodegenerative diseases. By better understanding how CK1δ’s activity is regulated, scientists could open new avenues for treating not just circadian rhythm disorders but also a range of conditions. Professor Patrick Tan, Senior Vice-Dean for Research at Duke-NUS, commented: “Regulating our internal clock goes beyond curing jet lag—it’s about improving sleep quality, metabolism, and overall health. This important discovery could potentially open new doors for treatments that could transform how we manage these essential aspects of our daily lives.” The researchers plan to further investigate how real-world factors, such as diet and environmental changes, affect the tagging sites on CK1δ. This could provide insights into how these factors affect circadian rhythms and might lead to practical solutions for managing disruptions. Reference: “Isoform-specific C-terminal phosphorylation drives autoinhibition of Casein kinase 1” by Rachel L. Harold, Nikhil K. Tulsian, Rajesh Narasimamurthy, Noelle Yaitanes, Maria G. Ayala Hernandez, Hsiau-Wei Lee, Priya Crosby, Sarvind M. Tripathi, David M. Virshup and Carrie L. Partch, 2 October 2024, Proceedings of the National Academy of Sciences. DOI: 10.1073/pnas.2415567121 Image captured in glass filming vessel. Credit: University of South Florida Unlocking the Secrets of Jellyfish Swimming Efficiency New research led by the University of South Florida has uncovered one of the reasons jellyfish have come to be known as the “world’s most efficient swimmer.” Brad Gemmell, associate professor of integrative biology, found jellyfish produce two vortex rings, which are donut-shaped bodies of fluid underneath their translucent bodies, that spin in opposite directions. They appear as jellyfish squeeze and reopen throughout each swim cycle, providing a “ground effect” force as if they were to be pushing off the seafloor. The “ground effect” is most widely understood on airport runways. During take-off, air squeezes between the airplane and ground, which builds pressure and a force that boosts performance. Gemmell’s experiments have shown that jellyfish can use their two vortex rings in place of the ground. The vortex rings resist each other, creating a “virtual wall” that provides a similar boost in performance compared to animals that swim near the bottom. Never before has it been proven that an animal can create this phenomenon away from a solid boundary. High-speed camera captures jellyfish swimming through a laser sheet with tracer particles. Credit: University of South Florida “The fact that these simple animals have figured out how to achieve a ‘ground effect’ type boost in open water, away from any solid surfaces, has the potential to open up a range of new possibilities for engineered vehicles to take advantage of this phenomenon,” Gemmell said. In the study published in “Proceedings of the Royal Society B,” Gemmell captured the motion by recording the movements of eight jellyfish swimming in a glass filming vessel using a high-speed digital camera at 1,000 frames per second. He and his colleagues witnessed jellyfish that were in motion had a 41% increase in maximum swimming speed and a 61% increase in cumulative distance traveled per swimming cycle compared to those starting from rest. Anatomical features of a jellyfish and the vortex arrangement over the course of a swim cycle for the moon jellyfish. Credit: University of South Florida Unlike locomotion by propellers, jellyfish do not produce cavitation bubbles and are silent, allowing them to move quietly through the water. The high efficiency of swimming also helps them store energy for growth and reproduction. Several research groups use jellyfish as a model for developing underwater vehicles that can be equipped with sensors that monitor the ocean without disruption. These new findings may enhance development of these technologies and further understanding of the ocean. Reference: “The most efficient metazoan swimmer creates a ‘virtual wall’ to enhance performance” by Brad J. Gemmell, Kevin T. Du Clos, Sean P. Colin, Kelly R. Sutherland and John H. Costello, 6 January 2021, Proceedings of the Royal Society B. DOI: 10.1098/rspb.2020.2494 A new study reveals that plant evolution consists of long periods of gradual changes punctuated by brief bursts of large-scale innovations, particularly in response to environmental challenges. This challenges the previously held notion that plants evolved with a sudden change early in their history, similar to animals. A Study Reveals That Plant Evolution Was a Gradual Process Punctuated by Bursts of Innovation A recent study has uncovered intriguing insights into the evolution of plant biology, effectively rewriting the history of how they evolved over the past billion years. Published in the journal Nature Plants, the research reveals that plants gradually developed their range of anatomical designs throughout the passage of time, punctuated by episodic bursts of innovation to overcome and adapt to environmental challenges. Such findings overturn the long-held belief that, much like animals, the fundamental range of plant types evolved in a big burst of sudden change early in their evolutionary history. A diverse community of land plants, ranging from mosses to flowering species, grow together in a boggy stream in the Cairngorms National Park, Scotland. Credit: Sandy Hetherington, The University of Edinburgh, UK Co-lead author Philip Donoghue, Professor of Palaeobiology at the University of Bristol, said: “Although plants are extraordinarily diverse in their design and organization, they share a common ancestor which originated at sea more than a billion years ago. “We wanted to test whether they really evolved with a big bang early on in their history or whether their evolution was a slower and more continual process. Surprisingly, the results revealed plant evolution was a bit of a mix, with long periods of gradual change interrupted by short bursts of large-scale innovation, overcoming the challenges of living on dry land.” To test this theory the team of scientists analyzed the similarities and differences of 248 groups of plants, ranging from single-celled pond scum and seaweed to land plants including everything from mosses and ferns, to pines, conifers, and flowering plants. They also looked at 160 extinct groups known only from the fossil record, including species from the Devonian Rhynie Chert which lived more than 400 million years ago. More than 130,000 observations were generated by breaking down plant designs into their components and recording those present or absent in each of the main groups, living and fossil. Computerized statistical techniques measured the overall similarities and differences between groups and how they varied over time. The moss, Polytrichum commune, which is one of the closest living relatives of the ancestral land plant. Credit: Silvia Pressel, The Natural History Museum The scientists also tried to work out what led to these evolutionary innovations, like the introduction of spores, seeds, roots, leaves, pollen, and flowers. Genome Doubling and Evolutionary Innovation Co-lead author Dr James Clark, Research Associate in Biological Sciences at the University of Bristol, said: “We found changes in plant anatomical design occur in association with events in which the entire cellular genetic make-up was doubled. This has happened many times in plant evolutionary history, as a result of errors in the genome-copying process, creating duplicate copies of genes that are free to mutate and evolve new functions.” But the major pulses of plant anatomical evolution were found to be associated with the challenge of living and reproducing in increasingly dry environments, connected to the progressive emergence of plants from the sea on to land. Co-lead author Dr. Sandy Hetherington’s fascination with the evolution of land plants began as a budding geologist at the University of Bristol and now continues in his work at the University of Edinburgh. He said: “Overall the pattern of episodic pulses in the evolution of plant anatomical designs matches that seen in other multi-cellular kingdoms of complex life, like animals and fungi. This suggests it is a general pattern and blueprint for complex multicellular life from its inception.” Reference: “Evolution of phenotypic disparity in the plant kingdom” by James W. Clark, Alexander J. Hetherington, Jennifer L. Morris, Silvia Pressel, Jeffrey G. Duckett, Mark N. Puttick, Harald Schneider, Paul Kenrick, Charles H. Wellman and Philip C. J. Donoghue, 4 September 2023, Nature Plants. DOI: 10.1038/s41477-023-01513-x RE98915RGPOIOKJ 富宏牛肉麵推薦必點嗎? 》台北美食評選2026|10間精選盤點胖老闆誠意肉粥會踩雷嗎? 》台北小吃食記攻略|10家餐廳評分&推薦頃刻間綠豆沙牛奶專賣店不排隊會可惜嗎? 》台北美食餐廳推薦Top10|吃貨親訪真實心得 |
|||||||||||||||||||||||||||||||||||||||||||||
| ( 在地生活|雜論 ) |























