国产女人喷潮视频在线观看,国产精品欧美成人片,91九色国产成人久久精品,成在线人免费无码高潮喷水,亚洲日韩成人无码不卡网站,久久久久国产一级毛片高清板,国产一二视频,丰满少妇av无码区,久久永久免费人妻精品我不卡 ,国产伦子系列沙发午睡

歡迎來到合成化學(xué)產(chǎn)業(yè)資源聚合服務(wù)平臺化學(xué)加!客服熱線 020-29116151、29116152

mRNA!2023年諾貝爾生理學(xué)或醫(yī)學(xué)獎揭曉

來源:nobelprize      2023-10-02
導(dǎo)讀:10月2日,2023年諾貝爾生理學(xué)或醫(yī)學(xué)獎揭曉獲獎名單,Katalin Karikó 和 Drew Weissman獲獎,獲獎理由是“他們在核苷堿基修飾方面的發(fā)現(xiàn),這些發(fā)現(xiàn)使得針對COVID-19的有效mRNA疫苗得以開發(fā)”。2023年的諾貝爾獎單項獎金為1100萬瑞典克朗(約合人民幣734.62萬元),相比去年增加了100萬瑞典克朗。

image.png

The discoveries by the two Nobel Laureates were critical for developing effective mRNA vaccines against COVID-19 during the pandemic that began in early 2020. Through their groundbreaking findings, which have fundamentally changed our understanding of how mRNA interacts with our immune system, the laureates contributed to the unprecedented rate of vaccine development during one of the greatest threats to human health in modern times.?

Vaccines before the pandemic

Vaccination stimulates the formation of an immune response to a particular pathogen. This gives the body a head start in the fight against disease in the event of a later exposure. Vaccines based on killed or weakened viruses have long been available, exemplified by the vaccines against polio, measles, and yellow fever. In 1951, Max Theiler was awarded the Nobel Prize in Physiology or Medicine for developing the yellow fever vaccine.

Thanks to the progress in molecular biology in recent decades, vaccines based on individual viral components, rather than whole viruses, have been developed. Parts of the viral genetic code, usually encoding proteins found on the virus surface, are used to make proteins that stimulate the formation of virus-blocking antibodies. Examples are the vaccines against the hepatitis B virus and human papillomavirus. Alternatively, parts of the viral genetic code can be moved to a harmless carrier virus, a “vector.” This method is used in vaccines against the Ebola virus. When vector vaccines are injected, the selected viral protein is produced in our cells, stimulating an immune response against the targeted virus.

Producing whole virus-, protein- and vector-based vaccines requires large-scale cell culture. This resource-intensive process limits the possibilities for rapid vaccine production in response to outbreaks and pandemics. Therefore, researchers have long attempted to develop vaccine technologies independent of cell culture, but this proved challenging.

image.png

Figure 1. Methods for vaccine production before the COVID-19 pandemic. ? The Nobel Committee for Physiology or Medicine. Ill. Mattias Karlén

mRNA vaccines: A promising idea

In our cells, genetic information encoded in DNA is transferred to messenger RNA (mRNA), which is used as a template for protein production. During the 1980s, efficient methods for producing mRNA without cell culture were introduced, called in vitro transcription. This decisive step accelerated the development of molecular biology applications in several fields. Ideas of using mRNA technologies for vaccine and therapeutic purposes also took off, but roadblocks lay ahead. In vitro transcribed mRNA was considered unstable and challenging to deliver, requiring the development of sophisticated carrier lipid systems to encapsulate the mRNA. Moreover, in vitro-produced mRNA gave rise to inflammatory reactions. Enthusiasm for developing the mRNA technology for clinical purposes was, therefore, initially limited.

These obstacles did not discourage the Hungarian biochemist Katalin Karikó, who was devoted to developing methods to use mRNA for therapy. During the early 1990s, when she was an assistant professor at the University of Pennsylvania, she remained true to her vision of realizing mRNA as a therapeutic despite encountering difficulties in convincing research funders of the significance of her project. A new colleague of Karikó at her university was the immunologist Drew Weissman. He was interested in dendritic cells, which have important functions in immune surveillance and the activation of vaccine-induced immune responses. Spurred by new ideas, a fruitful collaboration between the two soon began, focusing on how different RNA types interact with the immune system.

The breakthrough

Karikó and Weissman noticed that dendritic cells recognize in vitro transcribed mRNA as a foreign substance, which leads to their activation and the release of inflammatory signaling molecules. They wondered why the in vitro transcribed mRNA was recognized as foreign while mRNA from mammalian cells did not give rise to the same reaction. Karikó and Weissman realized that some critical properties must distinguish the different types of mRNA.

RNA contains four bases, abbreviated A, U, G, and C, corresponding to A, T, G, and C in DNA, the letters of the genetic code. Karikó and Weissman knew that bases in RNA from mammalian cells are frequently chemically modified, while in vitro transcribed mRNA is not. They wondered if the absence of altered bases in the in vitro transcribed RNA could explain the unwanted inflammatory reaction. To investigate this, they produced different variants of mRNA, each with unique chemical alterations in their bases, which they delivered to dendritic cells. The results were striking: The inflammatory response was almost abolished when base modifications were included in the mRNA. This was a paradigm change in our understanding of how cells recognize and respond to different forms of mRNA. Karikó and Weissman immediately understood that their discovery had profound significance for using mRNA as therapy. These seminal results were published in 2005, fifteen years before the COVID-19 pandemic.

image.png

Figure 2. mRNA contains four different bases, abbreviated A, U, G, and C. The Nobel Laureates discovered that base-modified mRNA can be used to block activation of inflammatory reactions (secretion of signaling molecules) and increase protein production when mRNA is delivered to cells.  ? The Nobel Committee for Physiology or Medicine. Ill. Mattias Karlén

In further studies published in 2008 and 2010, Karikó and Weissman showed that the delivery of mRNA generated with base modifications markedly increased protein production compared to unmodified mRNA. The effect was due to the reduced activation of an enzyme that regulates protein production. Through their discoveries that base modifications both reduced inflammatory responses and increased protein production, Karikó and Weissman had eliminated critical obstacles on the way to clinical applications of mRNA.

mRNA vaccines realized their potential

Interest in mRNA technology began to pick up, and in 2010, several companies were working on developing the method. Vaccines against Zika virus and MERS-CoV were pursued; the latter is closely related to SARS-CoV-2. After the outbreak of the COVID-19 pandemic, two base-modified mRNA vaccines encoding the SARS-CoV-2 surface protein were developed at record speed. Protective effects of around 95% were reported, and both vaccines were approved as early as December 2020.

The impressive flexibility and speed with which mRNA vaccines can be developed pave the way for using the new platform also for vaccines against other infectious diseases. In the future, the technology may also be used to deliver therapeutic proteins and treat some cancer types.

Several other vaccines against SARS-CoV-2, based on different methodologies, were also rapidly introduced, and together, more than 13 billion COVID-19 vaccine doses have been given globally. The vaccines have saved millions of lives and prevented severe disease in many more, allowing societies to open and return to normal conditions. Through their fundamental discoveries of the importance of base modifications in mRNA, this year’s Nobel laureates critically contributed to this transformative development during one of the biggest health crises of our time.

Key publications

Karikó, K., Buckstein, M., Ni, H. and Weissman, D. Suppression of RNA Recognition by Toll-like Receptors: The impact of nucleoside modification and the evolutionary origin of RNA. Immunity 23, 165–175 (2005).

Karikó, K., Muramatsu, H., Welsh, F.A., Ludwig, J., Kato, H., Akira, S. and Weissman, D. Incorporation of pseudouridine into mRNA yields superior nonimmunogenic vector with increased translational capacity and biological stability. Mol Ther 16, 1833–1840 (2008).

Anderson, B.R., Muramatsu, H., Nallagatla, S.R., Bevilacqua, P.C., Sansing, L.H., Weissman, D. and Karikó, K. Incorporation of pseudouridine into mRNA enhances translation by diminishing PKR activation. Nucleic Acids Res38, 5884–5892 (2010).


Katalin Karikó was born in 1955 in Szolnok, Hungary. She received her PhD from Szeged’s University in 1982 and performed postdoctoral research at the Hungarian Academy of Sciences in Szeged until 1985. She then conducted postdoctoral research at Temple University, Philadelphia, and the University of Health Science, Bethesda. In 1989, she was appointed Assistant Professor at the University of Pennsylvania, where she remained until 2013. After that, she became vice president and later senior vice president at BioNTech RNA Pharmaceuticals. Since 2021, she has been a Professor at Szeged University and an Adjunct Professor at Perelman School of Medicine at the University of Pennsylvania.

Drew Weissman was born in 1959 in Lexington, Massachusetts, USA. He received his MD, PhD degrees from Boston University in 1987. He did his clinical training at Beth Israel Deaconess Medical Center at Harvard Medical School and postdoctoral research at the National Institutes of Health. In 1997, Weissman established his research group at the Perelman School of Medicine at the University of Pennsylvania. He is the Roberts Family Professor in Vaccine Research and Director of the Penn Institute for RNA Innovations.


聲明:化學(xué)加刊發(fā)或者轉(zhuǎn)載此文只是出于傳遞、分享更多信息之目的,并不意味認(rèn)同其觀點或證實其描述。若有來源標(biāo)注錯誤或侵犯了您的合法權(quán)益,請作者持權(quán)屬證明與本網(wǎng)聯(lián)系,我們將及時更正、刪除,謝謝。 電話:18676881059,郵箱:gongjian@huaxuejia.cn

亚洲国产良家在线观看| 亚洲av婷婷一区二区三区| 国产日韩入口一区二区| 欧美视频网站www色| 国产成人精品日本亚洲专区6| 99久久国产精品无码| 亚洲老熟女与小伙bbwtv| 国产黄色一级片在线观看 | 亚洲精品麻豆一二三区| 国产在线精品香蕉麻豆| 377p日本大胆欧美人术艺术| 天啦噜国产精品亚洲精品| 免费看污视频的网站| chinese性内射高清国产| 亚洲中文字幕成人无码| 精品国产美女福到在线直播| 国产精品毛片内在线看| 亚欧成人精品一区二区| 91久久久久无码精品露脸| 精品无码国产自产野外拍在线| 色翁荡熄又大又硬又粗又视频软件 | 中文字幕精品亚洲无线码二区| 国产YW8825免费观看网站| 国产精品久久久久久久久软件| 无码国产色欲xxxx视频| 精品一品国产午夜福利视频| 精品国产一区二区三区久久久毛片| 欧美肥老太交视频免费| 亚洲亚洲人成综合网络| 国产日韩欧美在线一二三四| 女同在线观看免费网站| 日韩亚洲国产一区情侣| 久久九九精品国产免费看小说| 国产精品国产三级国产aⅴ下载| 青青青青久久精品国产av| 美女国内精品自产拍在线播放| 久久精品国产99久久6| 亚洲AV成人无码久久精品四虎| 亚洲欧洲自拍拍偷午夜色无码| 日本熟妇高潮爽视频在线观看 | 后入内射无码人妻一区|