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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 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: 茶六燒肉堂適合請客嗎? 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。茶六燒肉堂CP 值高嗎? 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。KoDō 和牛燒肉值得排隊嗎? 下一餐,不妨從這10家開始。永心鳳茶有雷嗎? 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。印月餐廳春節期間適合來嗎? 如果你有私心愛店,也歡迎留言分享,三希樓清淡口味適合嗎? 你的推薦,可能讓我下一趟美食旅程變得更精彩。KoDō 和牛燒肉節慶時段會不會太難訂位? Scientists have discovered a new intestinal bacterium, Taurinivorans muris, which exclusively consumes taurine and produces hydrogen sulfide. While hydrogen sulfide has protective properties against certain pathogens, excessive amounts can harm gut health. The discovery provides insight into the roles of taurine and hydrogen sulfide in the gut, as well as their broader health implications. The findings are integral to developing future microbiome-based therapies. Taurine-Degrading Bacteria Influence Intestinal Microbiome A novel bacterium, Taurinivorans muris, which feeds on taurine and emits hydrogen sulfide, has been identified by researchers. This discovery offers valuable insights into gut health and lays the groundwork for future therapeutic interventions. An international team of scientists led by microbiologist Alexander Loy from the University of Vienna has discovered a new intestinal microbe that feeds exclusively on taurine and produces the foul-smelling gas hydrogen sulfide. The researchers have thus provided another building block in the understanding of those microbial processes that have fascinating effects on health. This is also true of Taurinivorans muris: the bacterium shows a protective function against Klebsiella and Salmonella, two important pathogens. The results are currently published today (September 18) in the journal Nature Communications. What’s That Smell? The gut microbiome mediates our health in a myriad of ways. One of those ways is by contributing to the levels of hydrogen sulfide – the toxic gas responsible for foul-smelling flatulence. Having small amounts of hydrogen sulfide in the gut is a good thing; in fact, it’s essential for a number of physiological processes, and can even protect against pathogens. Hydrogen sulfide-producing microbes in the gut may help “choke out” oxygen-dependent pathogens such as Klebsiella, making it harder for them to colonize. FISH: Fluorescence microscopy of Taurinivorans muris in pure culture. Credit: C: Huimin Ye However, excessive levels can have negative consequences and have been associated with gut inflammation and damage to the intestinal lining. Discovering the key players and processes that produce this noxious gas in our gut is a fundamental first step on the road to developing therapeutic interventions, for example, for inflammatory bowel disease. Keeping Young: The Role of Taurine The bacterium Bilophila wadsworthia is one of the most important taurine utilizers in humans. In the current study, researchers led by Alexander Loy at CeMESS, the Centre for Microbiology and Environmental Systems Science of the University of Vienna, have discovered a new genus of hydrogen sulfide-producing bacteria in the mouse intestine. “The bacterium we described has a rather unbalanced diet,” explains Loy, “it specializes in consuming taurine.” Taurine is a semi-essential amino acid, which we synthesize in small amounts in our liver. However, we get most of our taurine from our diets – especially meat, dairy, and seafood. SEM 1: Electron microscopy of Taurinivorans muris in pure culture. Credit: C: Huimin Ye Like hydrogen sulfide, taurine is implicated in a smorgasbord of physiological processes. Recent studies have found a link between taurine and healthy aging – it seems this nutrient may stave away age-related disease. In light of these findings, the discovery of a new gut microbe that feeds exclusively on taurine (aptly named Taurinivorans muris) is another piece of an exciting puzzle. “By isolating the first taurine degrader in the mouse gut, we’re one step closer to understanding how these gut microbes mediate animal and human health” explains Huimin Ye, lead author of the study. To access sufficient taurine in the gut, however, Taurinivorans muris needs the help of other gut microbes to release it from bile acids. Taurine-containing bile acids are produced in the liver and are increasingly released into the intestine during a high-fat diet to help our body digest fats. The activities of the bacteria in the intestine in turn influence the bile acid metabolism in the liver. The results of the Viennese researchers therefore also contribute to a better understanding of these complex interactions in bile acid metabolism, which has an impact on processes and diseases throughout the body. Taurine Degrading Microbes Protect Against Pathogens One of the most important functions of the symbiotic microbes in the gut is to defend against pathogens. The microbiome has a versatile arsenal of protective mechanisms – and utilizing taurine to create hydrogen sulfide is one of them. “Hydrogen sulfide may suppress the oxygen-dependent metabolism of some pathogens,” explains Ye. In the current study, the scientists discovered that Taurinivorans muris has a protective role against Klebsiella and Salmonella, two important gut pathogens. “The protective mechanism of Taurinivorans muris against pathogens may be via hydrogen sulfide but is essentially not yet fully understood” adds Alexander Loy. Taurine is one of the most important sources of hydrogen sulfide production in the gut. The study thus generates basic knowledge on the physiological interactions between the different gut microbes and their hosts, which is necessary to develop new microbiome-based therapies. Reference: “Ecophysiology and interactions of a taurine-respiring bacterium in the mouse gut” by Huimin Ye, Sabrina Borusak, Claudia Eberl, Julia Krasenbrink, Anna S. Weiss, Song-Can Chen, Buck T. Hanson, Bela Hausmann, Craig W. Herbold, Manuel Pristner, Benjamin Zwirzitz, Benedikt Warth, Petra Pjevac, David Schleheck, Bärbel Stecher and Alexander Loy, 18 September 2023, Nature Communications. DOI: 10.1038/s41467-023-41008-z Artistic rendering of cellulose biosynthesis with zoomed in view. Individual cellulose chains (dark brown) are synthesized by plasma membrane-bound (purple) cellulose synthase enzyme complexes (cream) and associate into elementary fibrils (light brown) that further assemble into a microfibril network, forming the main scaffold for the cell wall. Credit: Ehsan Faridi/ Inmywork Studio/ Chundawat, Lee and Lam Labs In a breakthrough with promising real-world applications, a team of Rutgers biophysicists, bioengineers, and plant biologists has captured the first live images. In a groundbreaking study, researchers at Rutgers University-New Brunswick have captured continuous, 24-hour images of cellulose synthesis, the process by which plant cell walls are built, using living plant cells. This marks the first time the dynamic process of cell-wall construction has been observed in real time, offering critical insights that could lead to the development of more resilient crops, enhanced food production, and lower-cost biofuels. Published in the journal Science Advances, the study reveals cellular activity never before documented and opens new possibilities for practical applications in areas such as advanced textiles, biodegradable plastics, improved biofuels, and medical innovations. According to the researchers, the findings also deepen fundamental understanding of how plant cell walls are formed. The discovery is the result of more than six years of interdisciplinary collaboration among three Rutgers University laboratories, drawing on expertise from the School of Arts and Sciences, the School of Engineering, and the School of Environmental and Biological Sciences. Artistic rendering of cellulose regenerating on a plant protoplast cell surface with zoomed out view. Cellulose is synthesized by plasma membrane-bound enzyme complexes (green) and assembles into a microfibril network (brown), forming the main scaffold for the cell wall. Credit: Ehsan Faridi/ Inmywork Studio/ Chundawat, Lee and Lam Labs “This work is the first direct visualization of how cellulose synthesizes and self-assembles into a dense fibril network on a plant cell surface, since Robert Hook’s first microscopic observation of cell walls in 1667,” said Sang-Hyuk Lee, an associate professor in the Department of Physics and Astronomy and an author of the study. “This study also provides entirely new insights into how simple, basic physical mechanisms such as diffusion and self-organization may lead to the formation of complex cellulose networks in cells.” Watching Cellulose Build Itself The microscope-generated video images show protoplasts – cells with their walls removed – of cabbage’s cousin, the flowering plant Arabidopsis, chaotically sprouting filaments of cellulose fibers that gradually self-assemble into a complex network on the outer cell surface. “I was very surprised by the emergence of ordered structures out of the chaotic dance of molecules when I first saw these video images,” said Lee, who also is a faculty member at the Institute for Quantitative Biomedicine. “I thought plant cellulose would be made in a lot more of an organized fashion, as depicted in classical biology textbooks.” A time-lapse video showing Arabidopsis cells generate cellulose fibrils. Credit: Lee Lab/Rutgers University Cellulose is the most abundant biopolymer – large molecules naturally produced by living organisms – on Earth. A carbohydrate that is the primary structural component of plant cell walls, cellulose is widely used in industry to make a range of products, including paper and clothing. It also is used in filtration, trapping large particles more effectively and enhancing flow, and as a thickening agent in foods such as yogurt and ice cream. “This discovery opens the door for researchers to begin dissecting the genes that could play various roles for cellulose biosynthesis in the plant,” said Eric Lam, a Distinguished Professor in the Department of Plant Biology in Rutgers School of Environmental and Biological Sciences and an author on the study. “The knowledge gained from these future studies will provide new clues for approaches to design better plants for carbon capture, improve tolerance to all kinds of environmental stresses, from drought to disease, and optimize second-generation cellulosic biofuels production.” A Personal Dream Realized The work is the culmination of a childhood dream for Shishir Chundawat, an associate professor in the Department of Chemical and Biochemical Engineering in the Rutgers School of Engineering and an author on the study. “I have always been fascinated by plants and how they capture sunlight via leaves into reduced carbon forms like cellulose that form cell walls,” Chundawat said, who plans to explore new ways to produce new, sustainable biofuels and biochemicals from diverse feedstocks like terrestrial plants and marine algae. “I remember back in middle school when I had collected many leaves of different shapes, sizes, and colors for a science class report, and being very curious about how plants produce all this myriad complexity and diversity in nature. I was inspired by that experience to delve deeper into the fundamental phenomena of biomass production and its utilization using sustainable engineering to produce valuable bioproducts for societal benefit.” Animations for young students inspired to learn more about plants are available, however, the Rutgers study shows that the process of cellulose synthesis and cell wall formation is much more complex. Credit: Rutgers University Scientists from each of the three research teams made unique and critical contributions. When conventional lab microscopes wouldn’t do, providing at best blurry images of the cell wall-building process, the team turned to an advanced super-resolution and minimally invasive technique called total internal reflection fluorescence microscopy. The approach, which captured images only of the underside surface of cells, was sensitive enough to take videos for 24 hours without bleaching and destroying the cells. Lee, a biophysicist and an expert on using cutting-edge microscopy techniques to study living systems, developed a custom microscope for the project and oversaw the imaging efforts. Chundawat led a team that pioneered a technique allowing the scientists to tag the emerging cellulose tendrils with fluorescent protein dye. Chundawat is a bioengineer and expert on protein engineering and glycosciences, the study of complex carbohydrates such as cellulose. To make the cells fluorescent and detectable by the microscope, he and his team developed a probe derived from an engineered bacterial enzyme that binds specifically to cellulose. Lam, an expert on plant genetics and biotechnology, and his team found a way to remove the cell wall of individual cells of Arabidopsis to create a “blank slate” for new cell walls to be laid down by protoplast cells. “This provided little to no background cellulose to confound our visualization and tracking of newly synthesized cellulose under optimized conditions,” Lam said. Reference: “Time-resolved tracking of cellulose biosynthesis and assembly during cell wall regeneration in live Arabidopsis protoplasts” by Hyun Huh, Dharanidaran Jayachandran, Junhong Sun, Mohammad Irfan, Eric Lam, Shishir P. S. Chundawat and Sang-Hyuk Lee, 21 March 2025, Science Advances. DOI: 10.1126/sciadv.ads6312 Other Rutgers scientists on the study included: Hyun Huh, a postdoctoral scientist with the Institute for Quantitative Biomedicine; Dharanidaran Jayachandran, a doctoral student, and Mohammad Irfan, a postdoctoral scientist in the Department of Chemical and Biochemical Engineering; and Junhong Sun, a lab technician in the Department of Plant Biology. Funding: U.S. Department of Energy, U.S. National Science Foundation Like the layers of a Russian doll, using multi-level regulation in an engineered cell ensures gene expression only switches on precisely when needed. Credit: Thomas Gorochowski In a recent study led by the University of Bristol, scientists have shown how to simultaneously harness multiple forms of regulation in living cells to strictly control gene expression and open new avenues for improved biotechnologies. Engineered microbes are increasingly being used to enable the sustainable and clean production of chemicals, medicines, and much more. To make this possible, bioengineers must control when specific sets of genes are turned on and off to allow for careful regulation of the biochemical processes involved. Their findings are reported in the journal Nature Communications. Veronica Greco, lead author and a Royal Society funded PhD student at Bristol’s School of Biological Sciences, said: “Although turning on or off a gene sounds simple, getting a living cell to do it on command is a real challenge. Every cell is slightly different, and the processes involved are not 100 percent reliable.” To solve this issue, the team took inspiration from nature where key events are often controlled by multiple processes simultaneously. Veronica Greco added: “If you look at a Venus flytrap you find that a trap will only close when multiple hairs are triggered together. This helps reduce the chance of a trap closing by accident. We wanted to do something similar when controlling the expression of a gene inside a cell, adding multiple-levels of regulation to ensure it only comes on precisely when we want it to.” Professor Claire Grierson, co-author and Head of the School of Biological Sciences at Bristol, added: “What was wonderful about this project was how well it worked to harness two of the core processes present in every cell and underpinning all of life – transcription and translation.” The team showed that by using this type of multi-level regulation, they could create some of the most high-performance switches for gene expression built to date. Moreover, working in collaboration with Dr Amir Pandi and Prof Tobias Erb from Bristol’s Max Planck Institute for Terrestrial Microbiology, the team was able to go a step further. They demonstrated that even when used outside of living cells, these multi-level systems offered some of the most stringent control over gene expression yet seen. Dr. Thomas Gorochowski, senior author and a Royal Society University Research Fellow at Bristol, said: “When we engineer microbes, we often try to simplify our systems as much as possible, thinking we’ll have better control over what is happening. But what we’ve shown is that embracing some of the inherent complexity of biology might be the key to fully unlocking its potential for the high-precision biotechnologies of tomorrow.” Reference: “Harnessing the central dogma for stringent multi-level control of gene expression” by F. Veronica Greco, Amir Pandi, Tobias J. Erb, Claire S. Grierson and Thomas E. Gorochowski, 19 March 2021, Nature Communications. DOI: 10.1038/s41467-021-21995-7 The study was funded by the Royal Society, Max Planck Society, European Molecular Biology Organization (EMBO), BBSRC and EPSRC with support from the Bristol BioDesign Institute (BBI). RRG455KLJIEVEWWF |
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