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身為一個熱愛美食、喜歡在城市裡挖掘驚喜的人,臺中公益路一直是我最常出沒的地方之一。這條路可說是「臺中人的美食戰場」,從精緻西餐到創意火鍋,從日式丼飯到義式早午餐,每走幾步,就會有完全不同的特色料理餐廳。 這次我特別花了一整個月,實際造訪了公益路上十間口碑不錯的餐廳。有的是網友熱推的打卡名店,也有隱藏在巷弄裡的小驚喜。我以環境氛圍、口味表現、價格CP值與再訪意願為基準,整理出這篇實測評比。希望能幫正在猶豫去哪裡吃飯的你,找到那一間「吃完會想再來」的餐廳。 評比標準與整理方向
這次我走訪的10家餐廳橫跨不同料理類型,從高質感牛排館到巷弄系早午餐,每一間都有自己獨特的風格。為了讓整體比較更客觀,我依照以下四大面向進行評比,並搭配實際用餐體驗來打分。
整體而言,我希望這份評比不只是「哪家好吃」,而是幫你在不同情境下(約會、家庭聚餐、朋友小聚、商業午餐)都能快速找到合適的選擇。畢竟,美食不只是味覺的滿足,更是一段段與朋友共享的生活記憶。 10間臺中公益路餐廳評比懶人包公益路向來是臺中人聚餐的首選地段,從火鍋、燒肉到中式料理與早午餐,每走幾步就有驚喜。以下是我實際造訪過的10間代表性餐廳清單,橫跨平價、創意、高級各路風格。
一頭牛日式燒肉|炭香濃郁的和牛饗宴,約會聚餐首選
走在公益路上,很難不被 一頭牛日式燒肉 的木質外觀吸引。低調卻不失質感的門面,搭配昏黃燈光與暖色調的內裝,讓人一進門就感受到濃濃的日式職人氛圍。店內空間不大,但桌距規劃得宜,每桌皆設有獨立排煙設備,烤肉時完全不怕滿身油煙味。 餐點特色
一頭牛的靈魂,絕對是他們招牌的「三國和牛拼盤」。 用餐體驗整體節奏掌握得非常好。店員會在你剛想烤下一片肉時貼心遞上夾子、幫忙換烤網,讓人完全不用分心。整場用餐過程就像一場表演,從視覺、嗅覺到味覺都被滿足。 綜合評分
地址:408臺中市南屯區公益路二段162號電話:04-23206800 官網:http://www.marihuana.com.tw/yakiniku/index.html 小結語一頭牛日式燒肉不僅是「吃肉的地方」,更像是一場五感盛宴。從進門那一刻到最後一道甜點,都能感受到他們對細節的用心。 TANG Zhan 湯棧|文青系火鍋代表,麻香湯底與視覺美感並重
在公益路這條美食戰線上,TANG Zhan 湯棧 是讓人一眼就會想走進去的那一種。 餐點特色
湯棧最有名的當然是它的「麻香鍋」。 用餐體驗整體氛圍比一般火鍋店更有質感。 綜合評分
地址:408臺中市南屯區公益路二段248號電話:04-22580617 官網:https://www.facebook.com/TangZhan.tw/ 小結語TANG Zhan 湯棧 把傳統火鍋做出新的樣貌保留臺式鍋物的溫度,又結合現代風格與細節服務,讓吃鍋這件事變得更有品味。 如果你想找一間兼具「好吃、好拍、好放鬆」的火鍋店,湯棧會是公益路上最有風格的選擇之一。 NINI 尼尼臺中店|明亮寬敞的義式早午餐天堂
如果說前兩間是肉食愛好者的天堂,那 NINI 尼尼臺中店 絕對是想放鬆、聊聊天的好地方。餐廳外觀以白色系與大片玻璃窗為主,陽光灑進室內,讓人一踏入就有種度假般的輕盈感。假日早午餐時段特別熱鬧,建議提早訂位。 餐點特色
NINI 的菜單融合義式與臺灣人口味,選擇多樣且份量十足。主打的 松露燉飯 濃郁卻不膩口,米芯保留微Q口感;而 香蒜海鮮義大利麵 則以新鮮白蝦、花枝與淡菜搭配微辣蒜香,口感層次豐富。 用餐體驗店內氣氛輕鬆不拘謹,無論是一個人帶電腦工作、或朋友聚餐,都能找到舒服角落。餐點上桌速度穩定,服務人員態度親切、補水與收盤都非常主動。整體節奏讓人覺得「時間變慢了」,很適合想遠離忙碌日常的人。 綜合評分
地址:40861臺中市南屯區公益路二段18號電話:04-23288498 小結語NINI 尼尼臺中店是一間能讓人放下手機、慢慢吃飯的餐廳。餐點不追求浮誇,而是以「剛剛好」的份量與風味,陪伴每個平凡午後。如果你在找一間能邊吃邊聊天、拍照也漂亮的早午餐店,NINI 會是你在公益路上最不費力的幸福選擇。 加分100%浜中特選昆布鍋物|平價卻用心的湯頭系火鍋,家庭聚餐好選擇
在公益路這條高質感餐廳林立的戰場上,加分100%浜中特選昆布鍋物 走的是截然不同的路線。它沒有浮誇的裝潢、也沒有高價位的套餐,但靠著實在的湯頭與親切的服務,默默吸引許多回頭客。每到用餐時間,總能看到家庭或情侶三兩成群地圍著鍋邊聊天。 餐點特色
主打 北海道浜中昆布湯底,湯頭清澈卻不單薄,越煮越能喝出海藻與柴魚的自然香氣。 用餐體驗整體氛圍偏家庭取向,桌距寬敞、座位舒適,帶小孩來也不覺擁擠。店員態度親切,補湯、收盤都很勤快,給人一種「被照顧著」的安心感。 綜合評分
地址:403臺中市西區公益路288號電話:0910855180 小結語加分100%浜中特選昆布鍋物是一間「不浮誇、但會讓人想再訪」的火鍋店。它不追求豪華擺盤,而是用最簡單的湯頭與新鮮食材,傳遞出家常卻不平凡的溫度。 印月餐廳|中式料理的藝術演繹,宴客與家庭聚會首選
說到臺中公益路的中式料理代表,印月餐廳 絕對是榜上有名。這間開業多年的餐廳以「中菜西吃」的概念聞名,把傳統中式料理以現代手法重新詮釋。從建築外觀到餐具擺設,每個細節都散發著低調的典雅氣息。 餐點特色
印月最令人印象深刻的是他們將傳統中菜融入創意手法。 用餐體驗服務方面完全對得起餐廳的高級定位。從入座、點餐到上菜節奏,都拿捏得恰如其分。每道菜都會有服務人員細心介紹食材與吃法,讓人感受到「被款待」的尊榮感。 綜合評分
地址:408臺中市南屯區公益路二段818號電話:0422511155 小結語印月餐廳是一間「不只吃飯,更像品味生活」的地方。 KoDō 和牛燒肉|極致職人精神,專為儀式感與頂級味覺而生
若要形容 KoDō 和牛燒肉 的用餐體驗,一句話足以總結——「像在欣賞一場關於肉的表演」。 餐點特色
這裡主打 日本A5和牛冷藏肉,以「精切厚燒」的方式呈現。 用餐體驗KoDō 的最大特色是「儀式感」。 綜合評分
地址:403臺中市西區公益路260號電話:0423220312 官網:https://www.facebook.com/kodo2018/ 小結語KoDō 和牛燒肉不是日常餐廳,而是一場體驗。 永心鳳茶|在茶香裡用餐的優雅時光,臺味早午餐的新詮釋
走進 永心鳳茶公益店,彷彿進入一間有氣質的茶館。 餐點特色
永心鳳茶的餐點結合中式靈魂與西式擺盤,無論是「炸雞腿飯」還是「紅玉紅茶拿鐵」,都能讓人感受到熟悉卻不平凡的味道。 用餐體驗店內服務人員態度溫和,對茶品介紹詳盡。上餐節奏剛好,不急不徐。 綜合評分
地址:40360臺中市西區公益路68號三樓(勤美誠品)電話:0423221118 小結語永心鳳茶讓人重新定義「臺味」。 三希樓|老饕級江浙功夫菜,穩重又帶人情味的中式饗宴
位於公益路上的 三希樓 是許多臺中老饕的口袋名單。 餐點特色
三希樓的菜色以 江浙與港式料理 為主,兼顧傳統與現代風味。 用餐體驗三希樓的服務給人一種老派但貼心的感覺。 綜合評分
地址:408臺中市南屯區公益路二段95號電話:0423202322 官網:https://www.sanxilou.com.tw/ 小結語三希樓是一間「吃得出功夫」的餐廳。 一笈壽司|低調奢華的無菜單日料,職人手藝詮釋旬味極致
在熱鬧的公益路上,一笈壽司 低調得幾乎不顯眼。 餐點特色
一笈壽司採 Omakase(無菜單料理) 形式,每一餐都由主廚根據當日食材設計。 用餐體驗整場用餐約90分鐘,節奏緩慢但沉穩。 綜合評分
地址:408臺中市南屯區公益路二段25號電話:0423206368 官網:https://www.facebook.com/YIJI.sushi/ 小結語一笈壽司是一間真正讓人「放慢呼吸」的餐廳。 茶六燒肉堂|人氣爆棚的和牛燒肉聖地,肉香與幸福感同時滿分
若要票選公益路上「最難訂位」的餐廳,茶六燒肉堂 絕對名列前茅。 餐點特色
茶六主打 和牛燒肉套餐,價格約落在 $700–$1000 間,份量與品質兼具。 用餐體驗茶六的服務效率相當高。店員親切、換網勤快、補水速度快,整場用餐流程流暢無壓力。 綜合評分
地址:403臺中市西區公益路268號電話:0423281167 官網:https://inline.app/booking/-L93VSXuz8o86ahWDRg0:inline-live-karuizawa/-LUYUEIOYwa7GCUpAFWA 小結語茶六燒肉堂用「穩定品質+輕奢氛圍」抓住了臺中年輕族群的心。 吃完10家公益路餐廳後的心得與結語吃完這十家餐廳後,臺中公益路不只是一條美食街,而是一段生活風景線。 有的餐廳講究細膩與儀式感,像 一頭牛日式燒肉 與 一笈壽司,讓人感受到食材最純粹的美好 有的則以親切與溫度打動人心,像 加分昆布鍋物、永心鳳茶,讓人明白吃飯不只是為了飽足,而是一種被照顧的幸福。 而像茶六燒肉堂、TANG Zhan 湯棧 這類人氣名店,則用穩定的品質與熱絡的氛圍,成為許多臺中人心中「想吃肉就去那裡」的代名詞。 這十家店,構成了公益路最動人的縮影 有華麗的,也有溫柔的;有傳統的,也有創新的。 每一家都在自己的風格裡發光,讓人吃到的不只是料理,而是一種生活的溫度與節奏。 對我而言,這不僅是一場美食旅程,更是一趟關於「臺中味道」的回憶之旅。 FAQ:關於臺中公益路美食常見問題Q1:公益路哪一區的餐廳最集中? Q2:需要提前訂位嗎? 最後的話若要用一句話形容這趟美食之旅,我會說: 印月餐廳適合辦部門小聚嗎? 如果你也和我一樣喜歡用味蕾探索一座城市,那就把這篇公益路美食攻略收藏起來吧。KoDō 和牛燒肉需要訂位嗎? 無論是約會、慶生、家庭聚餐,或只是想犒賞一下辛苦的自己——這條路上永遠會有一間剛剛好的餐廳在等你。一笈壽司假日會大排長龍嗎? 下一餐,不妨從這10家開始。KoDō 和牛燒肉婚前派對適合嗎? 打開手機、約上朋友,讓公益路成為你生活裡最容易抵達的小確幸。NINI 尼尼臺中店氣氛如何? 如果你有私心愛店,也歡迎留言分享,三希樓有提供尾牙方案嗎? 你的推薦,可能讓我下一趟美食旅程變得更精彩。KoDō 和牛燒肉飲料值得加點嗎? A ciliate, or cilia-propelled microorganism, belonging to the genus Halteria. New research led by Nebraska’s John DeLong has revealed that ciliates can feed on water-dwelling viruses — and even grow on a virus-only diet. Credit: Proyecto Agua via flickr (CC BY-NC-SA 2.0) Study First To Investigate and Demonstrate the Effects of ‘Virovory’ Over a single day, in the placid waters of a single pond, a million virus particles might enter a single-celled organism known for the minuscule hairs, or cilia, that propel it through those waters. Over the last three years, the University of Nebraska–Lincoln’s John DeLong has been busy discovering a potential tide-turning secret: Those virus particles are a source not just of infection, but nutrition. In a turnabout worthy of Pac-Man, DeLong and his colleagues have found that a species of Halteria —microscopic ciliates that populate freshwater worldwide — can eat huge numbers of infectious chloroviruses that share their aquatic habitat. For the first time, the team’s lab experiments have also shown that a virus-only diet, which the team calls “virovory,” is enough to fuel the physiological growth and even population growth of an organism. Chloroviruses and Their Role in Carbon Cycling Chloroviruses, a career-defining discovery by Nebraska’s James Van Etten, are known to infect microscopic green algae. Eventually, the invading chloroviruses burst their single-celled hosts like balloons, spilling carbon and other life-sustaining elements into the open water. That carbon, which might have gone to predators of the tiny creatures, instead gets vacuumed up by other microorganisms — a grim recycling program in miniature and, seemingly, in perpetuity. Chlorovirus particles infecting microscopic green algae. Credit: Kit Lee and Angie Fox “That’s really just keeping carbon down in this sort of microbial soup layer, keeping grazers from taking energy up the food chain,” said DeLong, associate professor of biological sciences at Nebraska. But if ciliates are having those same viruses for dinner, then virovory could be counterbalancing the carbon recycling that the viruses are known to perpetuate. It’s possible, DeLong said, that virovory is aiding and abetting carbon’s escape from the dregs of the food chain, granting it an upward mobility that viruses otherwise suppress. “If you multiply a crude estimate of how many viruses there are, how many ciliates there are and how much water there is, it comes out to this massive amount of energy movement (up the food chain),” said DeLong, who estimated that ciliates in a small pond might eat 10 trillion viruses a day. “If this is happening at the scale that we think it could be, it should completely change our view on global carbon cycling.” ‘Nobody Noticed It’ DeLong was already familiar with the ways that chloroviruses can entangle themselves in a food web. In 2016, the ecologist partnered with Van Etten and virologist David Dunigan to show that chloroviruses gain access to algae, which are normally encased in a genus of ciliates called Paramecia, only when tiny crustaceans eat the Paramecia and excrete the newly exposed algae. That finding put DeLong in “a different headspace” when it came to thinking about and studying viruses. Given the sheer abundance of viruses and microorganisms in the water, he figured it was inevitable that — even setting aside infection — the former would sometimes wind up inside the latter. “It seemed obvious that everything’s got to be getting viruses in their mouths all the time,” he said. “It seemed like it had to be happening, because there’s just so much of it in the water.” So DeLong dove into the research literature, intent on surfacing with any studies on aquatic organisms eating viruses and, ideally, what happened when they did. He emerged with precious little. One study, from the 1980s, had reported that single-celled protists were capable of consuming viruses, but delved no further. A handful of papers from Switzerland later showed that protists seemed to be removing viruses from wastewater. “And that was it,” DeLong said. There was nothing about the potential consequences to the microorganisms themselves, let alone the food webs or ecosystems they belonged to. That surprised DeLong, who knew that viruses were built not only on carbon but other elemental cornerstones of life, too. They were, at least hypothetically, anything but junk food. “They’re made up of really good stuff: nucleic acids, a lot of nitrogen and phosphorous,” he said. “Everything should want to eat them. “So many things will eat anything they can get ahold of. Surely something would have learned how to eat these really good raw materials.” As an ecologist who spends much of his time using math to describe predator-prey dynamics, DeLong wasn’t entirely sure how to go about investigating his hypothesis. Ultimately, he decided to keep it simple. First, he’d need some volunteers. He drove out to a nearby pond and collected samples of the water. Back at his lab, he corralled all of the microorganisms he could manage, regardless of the species, into drops of the water. Finally, he added generous portions of chlorovirus. Evidence of Virovory in Action After 24 hours, DeLong would search the drops for a sign that any species seemed to be enjoying the company of the chlorovirus — that even one species was treating the virus less like a threat than a snack. In Halteria, he found it. “At first, it was just a suggestion that there were more of them,” DeLong said of the ciliates. “But then they were big enough that I could actually grab some with a pipette tip, put them in a clean drop, and be able to count them.” The number of chloroviruses was plummeting by as much as 100-fold in just two days. The population of Halteria, with nothing to eat but the virus, was growing an average of about 15 times larger over that same timespan. Halteria deprived of the chlorovirus, meanwhile, wasn’t growing at all. To confirm that the Halteria was actually consuming the virus, the team tagged some of the chlorovirus DNA with a fluorescent green dye before introducing the virus to the ciliates. Sure enough, the ciliate equivalent of a stomach, its vacuole, was soon glowing green. It was unmistakable: The ciliates were eating the virus. And that virus was sustaining them. “I was calling up my co-authors: ‘They grew! We did it!’” DeLong said of the findings, now detailed in the journal Proceedings of the National Academy of Sciences. “I’m thrilled to be able to see something so fundamental for the first time.” Predator-Prey Dynamics and Insights DeLong wasn’t done. The mathematical side of him wondered whether this particular predator-prey dynamic, as strange as it seemed, might share commonalities with the more pedestrian pairings he was accustomed to studying. He started by charting the decline of the chlorovirus against the growth of the Halteria. That relationship, DeLong found, generally fits with those ecologists have observed among other microscopic hunters and their hunted. The Halteria also converted about 17% of the consumed chlorovirus mass into new mass of its own, right in line with percentages seen when Paramecia eat bacteria and millimeter-long crustaceans eat algae. Even the rate at which ciliates preyed on the virus, and the roughly 10,000-fold disparity in their sizes, match up with other aquatic case studies. “I was motivated to determine whether or not this was weird, or whether it fit,” DeLong said. “This is not weird. It’s just that nobody noticed it.” DeLong and his colleagues have since identified other ciliates that, like Halteria, can thrive by dining on viruses alone. The more they uncover, the more likely it seems that virovory could be occurring in the wild. It’s a prospect that fills the ecologist’s head with questions: How might it shape the structure of food webs? The evolution and diversity of species within them? Their resilience in the face of extinctions? Again, though, he’s opted to keep it simple. As soon as Nebraska’s winter relents, DeLong will head back to the pond. “Now,” he said, “we have to go find out if this is true in nature.” Reference: “The consumption of viruses returns energy to food chains” by John P. DeLong, James L. Van Etten, Zeina Al-Ameeli, Irina V. Agarkova and David D. Dunigan, 27 December 2022, Proceedings of the National Academy of Sciences. DOI: 10.1073/pnas.2215000120 Spikey, ridged scales reduce drag in swift-swimming sharks, while thicker, rounder scales offer protection from abrasion. The three-pronged scale on top may serve a defensive function. False-color electron microscope images of denticles (not to scale); clockwise from upper left: lemon shark, tiger shark, great hammerhead shark, nurse shark, bull shark, and scalloped hammerhead shark. Credit: Erin Dillon, Aaron O’Dea and Jorge Ceballos The results indicate that shark abundance in the region declined roughly three-fold since prehistoric times. Scientists recently made news by using fossil shark scales to reconstruct shark communities from millions of years ago. At the same time, an international team of researchers led by UC Santa Barbara ecologist Erin Dillon applied the technique to the more recent past. Human activities have caused shark populations to plummet worldwide since records began in the mid-20th century. However, the scientists were concerned that these baseline data may, themselves, reflect shark communities that had already experienced significant declines. Dillon compared the abundance and variety of shark scales from a Panamanian coral reef 7,000 years ago to those in reef sediments today to discern how reef-associated shark communities have changed since humans began using marine resources in the area. The results, published in the Proceedings of the National Academy of Sciences, indicate that shark abundance in the region declined roughly three-fold since prehistoric times, with swifter-swimming species taking a harder hit. Much of this decrease is echoed in historical records, suggesting that sharks in Caribbean Panama were most heavily impacted within the past century. Shark scales are minute, appearing like ordinary sand until examined under a microscope. Credit: Isabelle Lee “These results give us new insight into what a ‘healthy’ shark community might look like on a coral reef before human exploitation,” said Dillon, a doctoral student in the Department of Ecology, Evolution, and Marine Biology. “And they can help us set more appropriate and location-specific baselines for management and conservation.” With their cartilaginous skeletons, sharks don’t readily fossilize. Often seemingly all that remains of an ancient shark is its hard teeth. But under the right conditions, a closer look at the surrounding sediments will reveal hundreds of microscopic shark scales only a few times thicker than a human hair. Just like the animal’s teeth, shark scales are composed of dentin with a hard enamel surface. Researchers call them dermal denticles, meaning “skin teeth,” and believe the two are essentially the same structures — just in different parts of the body. Scientists often rely on microfossils to reconstruct ancient ecosystems. Items like scales, pollen grains, and plankton shells can provide a wealth of information about the conditions and denizens of past ecosystems that aren’t preserved in large fossils. What’s more, sharks shed a lot more scales in their lifetime than teeth, so dermal denticles can offer paleo-ecologists much more material to analyze than teeth do. Dillon and her team were fortunate to have access to a fossil reef in Bocas del Toro, on Panama’s Caribbean coast. Normally, ancient reefs are entombed under the living coral, but construction had exposed the site, enabling the scientists to collect samples over several years before it was filled in. Dillon was able to identify groups of sharks on the ancient reef based on the scales they left behind. Credit: Erin Dillon, Ashley Diedenhofen, and Jorge Ceballos They collected sediments that had accumulated within the fossil reef. Debris that settled between the fingers of branching coral was protected from extensive mixing with sediments of different ages. This essentially preserved a time capsule of material from the ancient reef as it accreted. The team used radiometric dating to estimate the age of the reef. Corals incorporate trace amounts of uranium, but not thorium, into their skeletons as they grow. Scientists can use the predictable rate at which uranium decays into thorium to determine the age of a coral sample. Using this method, the authors dated corals on the fossil reef to around 7,000 years ago. Next came the arduous process of separating the denticles from the sediments. Using a solution of acetic acid, what Dillon referred to as “glorified vinegar,” she tediously dissolved around 300 kg (660 lb) of carbonate sand — enough to fill two bathtubs — to a manageable 400 g (0.9 lb) of residual material, which she then sorted through under a microscope to find the scales. Different denticle shapes correspond with different functions. For example, thin scales with points and ridges reduce drag, and are found on sharks like great hammerheads and silky sharks that swim fast. Ridge spacing also matters, with animals that reach fast burst speeds tending to sport narrower ridges. Meanwhile, animals like nurse and zebra sharks, which spend their time near tough substrates, tend to have thick, plate-like scales that offer abrasion protection. “They’re sort of like armor,” Dillon explained. Accounting for the form and abundance of different scales provided the team with a sense of what types of sharks inhabited the ancient reef as well as their relative numbers. That said, just as different parts of the mouth sport differently shaped teeth, scale morphology also varies across a shark’s body. Given this variability, it’s nearly impossible to match an isolated scale to a specific species, as can often be done with teeth. That’s why Dillon and her colleagues stuck to broad ecological categories of sharks in their paper. The team’s painstaking analysis ultimately paid off. “We showed that tiny shark scales can be well-preserved and found in high enough abundances to reconstruct shark baselines over long ecological timescales,” Dillon said, “and we found about a 71% decrease in total shark abundance between the mid-Holocene — before major human impact in our study region — and now.” These prehistorical reefs would have had similar environmental conditions to those of today, she added, with the primary difference being that they predate the earliest evidence of human occupation in this part of Panama. The authors also discovered that the types of sharks found on these reefs shifted between prehistoric times and today. Midwater swimmers, like requiem and hammerheads, declined more than demersal species, like the nurse shark. “If you went snorkeling on these reefs a couple thousand years ago, not only would sharks have been a more common sight but there would have been relatively more fast-swimming pelagic sharks,” she said. Yet, Dillon was struck by the fact that sharks of all types declined over this time period. “If fishing were the only driver, then we wouldn’t expect to see such a big drop in nurse sharks over time because they have low commercial value and are rarely targeted by fisheries in the region,” she said. “But we did.” This suggests that the observed shark declines weren’t simply the result of direct impacts on the animals, like overfishing, but might also have stemmed from indirect factors like the loss of reef habitat or available prey. Dillon and her co-authors also looked at historical accounts of shark abundance through time. “We found that the biggest decline in shark abundance, according to these records, occurred in the latter half of the 20th century,” she said. Between these accounts and the results from the fossil record, the evidence suggests that most of the shark declines in this location happened within the past 100 years. The study’s findings provide insight into shark ecology as well as important context for the numbers of sharks observed on reefs today. Most modern time-series data of shark abundance come from places with well-studied commercial fisheries, and often data collection starts well after fishing had commenced. This makes it difficult to be certain how many sharks were present before human activities began impacting the ocean, as well as the long-term ecological consequences of shark declines. Dillon plans to continue investigating dermal denticles. She is currently studying variation in the rates at which different shark species shed their scales at the Aquarium of the Pacific. If one species sheds much faster than another, that species will leave behind more scales even if the two populations are the same size. She and her colleagues are also collecting sediment cores from regions with different human and ecological histories to track high-resolution trends in scale types and abundances over the last several millennia. Using shark scales to reconstruct past abundances and diversity is a relatively new methodology, and this is the first time it’s been applied to questions related to shark management and conservation. “Before this, we didn’t really know just how to answer the question of how abundant sharks were on intact coral reefs before human impact,” Dillon said, adding that she hopes other researchers take advantage of this powerful technique and apply it to other locations around the world. Reference: “Fossil dermal denticles reveal the preexploitation baseline of a Caribbean coral reef shark community” by Erin M. Dillon, Douglas J. McCauley, Jorge Manuel Morales-Saldaña, Nicole D. Leonard, Jian-xin Zhao and Aaron O’Dea, 6 July 2021, Proceedings of the National Academy of Sciences. DOI: 10.1073/pnas.2017735118 The researchers also found that decreasing ATP levels enhances ClpXP (a damage-repairing enzyme)-mediated degradation of some classes of substrates. A specific enzyme may play dual roles in cell health according to a recent study from the University of Massachusetts Amherst. Exploring Cellular Stress Response A team of researchers from the University of Massachusetts Amherst investigated the mysteries surrounding how cells handle stress in a recent study that was published in the journal Cell Reports. Researchers found that a damage-repairing enzyme known as ClpX may not only mutate to fix multiple cellular issues but can also react to shifting levels of cellular energy to maintain cell health. “What we’re really interested in,” says Peter Chien, professor of biochemistry and molecular biology at UMass Amherst and the paper’s senior author, “is how cells respond to stress. We study a class of enzymes, called proteases, which target and destroy harmful proteins within a cell. These proteases can selectively recognize specific, individual proteins singular proteins. But how do they do this? How can they choose between healthy proteins and harmful ones?” Rendering of the protease ClpX: the gray part recognizes the harmful protein, the orange grabs onto it, and the blue destroys it. Credit: Chien Lab Chien and his co-authors focused on two specific proteases, called Lon and ClpX, each of which is finely tuned to recognize a different harmful protein, to answer this question. It had long been believed that Lon and ClpX functioned similarly to keys: each could only open one kind of lock and not another, and if a cell lacked either, severe side effects would result. “If you’ve ever had an extremely messy college roommate,” says Chien, “you know how important it is to empty the trash regularly. Missing the Lon protease is like having a roommate who never washes, changes, or cleans.” Discovery of Protease Flexibility But following a series of experiments in which Lon was removed from bacterial cell colonies, Chien’s team saw something strange: some of the colonies were still alive. Peter Chien (right) and UMass undergraduate researcher Oluwabusola Oreofe (left) running experiments in the Chien lab. Credit: UMass Amherst This observation led to their first discovery: ClpX can mutate to perform a Lon-like function, though it loses some of its ClpX abilities. It’s as if, to keep your dorm room clean, you started washing your roommate’s socks, but had to sacrifice some of your own clean laundry to do so. In tracing out exactly how the ClpX mutation allowed the protease to expand its function, the team made its second discovery: wild, non-mutant ClpX can also perform some of Lon’s duties, under the right conditions. It turns out that ClpX is highly sensitive to ATP, an organic compound that is the energy source for all living cells. At normal levels of ATP, ClpX focuses on its own duties, but at a specific, lower threshold it suddenly starts cleaning up after Lon. “This is a real breakthrough in the basic understanding of how cells work,” says Chien. “It changes the rules: not only does cellular energy control how fast a cell works, but how it works, as well.” Reference: “ATP hydrolysis tunes specificity of a AAA+ protease” by Samar A. Mahmoud, Berent Aldikacti and Peter Chien, 20 September 2022, Cell Reports. DOI: 10.1016/j.celrep.2022.111405 The study was funded by the University of Massachusetts Amherst’s National Institutes of Health Chemistry Biology Interface Training Program, the Howard Hughes Medical Institute, the National Institutes of Health, and UMass Amherst’s Institute for Applied Life Sciences (IALS). RRG455KLJIEVEWWF TANG Zhan 湯棧慶生氛圍夠嗎? 》公益路2026餐廳推薦|10家值得一吃再吃三希樓甜點好吃嗎? 》公益路10家必訪餐廳|吃貨必備指南TANG Zhan 湯棧飲料值得加點嗎? 》公益路食旅特輯|10家餐廳一次告訴你 |
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