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A new approach to skills mismatch 科技报告
来源:OECD iLibrary. 出版年: 2021
作者:  Amandine Brun-Schammé ;  and ;  Martin Rey
收藏  |  浏览/下载:1/0  |  提交时间:2021/07/27
Collaborative platforms for emerging technology 科技报告
来源:OECD iLibrary. 出版年: 2021
作者:  David Winickoffi;  Laura Kreilingi;  Martin Borowieckii;  Hermann Gardeni ;  and ;  James PhilpiiOECD
收藏  |  浏览/下载:4/0  |  提交时间:2021/04/29
Impact of the Mesoscale Range on Error Growth and the Limits to Atmospheric Predictability 期刊论文
Journal of the Atmospheric Sciences, 2020
作者:  Leung, Tsz Yan;  Leutbecher, Martin;  Reich, Sebastian;  Shepherd, Theodore G.
收藏  |  浏览/下载:5/0  |  提交时间:2020/10/26
Understanding How Complex Terrain Impacts Tornado Dynamics Using a Suite of High-Resolution Numerical Simulations 期刊论文
Journal of the Atmospheric Sciences, 2020
作者:  Satrio, Martin A.;  Bodine, David J.;  Reinhart, Anthony E.;  Maruyama, Takashi;  Lombardo, Franklin T.
收藏  |  浏览/下载:11/0  |  提交时间:2020/09/22
A nutrient control on marine anoxia during the end-Permian mass extinction 期刊论文
Nature, 2020
作者:  Martin Schobben;  William J. Foster;  Arve R. N. Sleveland;  Valentin Zuchuat;  Henrik H. Svensen;  Sverre Planke;  David P. G. Bond;  Fons Marcelis;  Robert J. Newton;  Paul B. Wignall;  Simon W. Poulton
收藏  |  浏览/下载:12/0  |  提交时间:2020/08/25
The Great Oxidation Event preceded a Paleoproterozoic "snowball Earth" 期刊论文
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (24) : 13314-13320
作者:  Warke, Matthew R.;  Di Rocco, Tommaso;  Zerkle, Aubrey L.;  Lepland, Aivo;  Prave, Anthony R.;  Martin, Adam P.;  Ueno, Yuichiro;  Condon, Daniel J.;  Claire, Mark W.
收藏  |  浏览/下载:9/0  |  提交时间:2020/06/09
quadruple sulfur isotopes  mass independent fractionation  Great Oxidation Event  snowball Earth  
Potential Vorticity and Balanced and Unbalanced Moisture 期刊论文
Journal of the Atmospheric Sciences, 2020
作者:  Alfredo N. Wetzel;  Leslie M. Smith;  Samuel N. Stechmann;  Jonathan E. Martin;  Yeyu Zhang
收藏  |  浏览/下载:4/0  |  提交时间:2020/05/13
Metabolic heterogeneity confers differences in melanoma metastatic potential 期刊论文
NATURE, 2020, 577 (7788) : 115-+
作者:  Tasdogan, Alpaslan;  Faubert, Brandon;  Ramesh, Vijayashree;  Ubellacker, Jessalyn M.;  Shen, Bo;  Solmonson, Ashley;  Murphy, Malea M.;  Gu, Zhimin;  Gu, Wen;  Martin, Misty;  Kasitinon, Stacy Y.;  Vandergriff, Travis;  Mathews, Thomas P.;  Zhao, Zhiyu;  Schadendorf, Dirk;  DeBerardinis, Ralph J.;  Morrison, Sean J.
收藏  |  浏览/下载:14/0  |  提交时间:2020/07/03

Metastasis requires cancer cells to undergo metabolic changes that are poorly understood(1-3). Here we show that metabolic differences among melanoma cells confer differences in metastatic potential as a result of differences in the function of the MCT1 transporter. In vivo isotope tracing analysis in patient-derived xenografts revealed differences in nutrient handling between efficiently and inefficiently metastasizing melanomas, with circulating lactate being a more prominent source of tumour lactate in efficient metastasizers. Efficient metastasizers had higher levels of MCT1, and inhibition of MCT1 reduced lactate uptake. MCT1 inhibition had little effect on the growth of primary subcutaneous tumours, but resulted in depletion of circulating melanoma cells and reduced the metastatic disease burden in patient-derived xenografts and in mouse melanomas. In addition, inhibition of MCT1 suppressed the oxidative pentose phosphate pathway and increased levels of reactive oxygen species. Antioxidants blocked the effects of MCT1 inhibition on metastasis. MCT1(high) and MCT1(-/low) cells from the same melanomas had similar capacities to form subcutaneous tumours, but MCT1(high) cells formed more metastases after intravenous injection. Metabolic differences among cancer cells thus confer differences in metastatic potential as metastasizing cells depend on MCT1 to manage oxidative stress.


  
Anti-PfGARP activates programmed cell death of parasites and reduces severe malaria 期刊论文
NATURE, 2020
作者:  Rauch, Jennifer N.;  Luna, Gabriel;  Guzman, Elmer;  Audouard, Morgane;  Challis, Collin;  Sibih, Youssef E.;  Leshuk, Carolina;  Hernandez, Israel;  Wegmann, Susanne;  Hyman, Bradley T.;  Gradinaru, Viviana;  Kampmann, Martin;  Kosik, Kenneth S.
收藏  |  浏览/下载:14/0  |  提交时间:2020/07/03

Malaria caused by Plasmodium falciparum remains the leading single-agent cause of mortality in children(1), yet the promise of an effective vaccine has not been fulfilled. Here, using our previously described differential screening method to analyse the proteome of blood-stage P. falciparum parasites(2), we identify P. falciparum glutamic-acid-rich protein (PfGARP) as a parasite antigen that is recognized by antibodies in the plasma of children who are relatively resistant-but not those who are susceptible-to malaria caused by P. falciparum. PfGARP is a parasite antigen of 80 kDa that is expressed on the exofacial surface of erythrocytes infected by early-to-late-trophozoite-stage parasites. We demonstrate that antibodies against PfGARP kill trophozoite-infected erythrocytes in culture by inducing programmed cell death in the parasites, and that vaccinating non-human primates with PfGARP partially protects against a challenge with P. falciparum. Furthermore, our longitudinal cohort studies showed that, compared to individuals who had naturally occurring anti-PfGARP antibodies, Tanzanian children without anti-PfGARP antibodies had a 2.5-fold-higher risk of severe malaria and Kenyan adolescents and adults without these antibodies had a twofold-higher parasite density. By killing trophozoite-infected erythrocytes, PfGARP could synergize with other vaccines that target parasite invasion of hepatocytes or the invasion of and egress from erythrocytes.


Antibodies against Plasmodium falciparum glutamic-acid-rich protein (PfGARP), an antigen expressed on the surface of infected red blood cells, kill P. falciparum parasites by inducing programmed cell death and reduce the risk of severe malaria.


  
Autophagy promotes immune evasion of pancreatic cancer by degrading MHC-I 期刊论文
NATURE, 2020, 581 (7806) : 100-+
作者:  Waszak, Sebastian M.;  Robinson, Giles W.;  Gudenas, Brian L.;  Smith, Kyle S.;  Forget, Antoine;  Kojic, Marija;  Garcia-Lopez, Jesus;  Hadley, Jennifer;  Hamilton, Kayla V.;  Indersie, Emilie;  Buchhalter, Ivo;  Kerssemakers, Jules;  Jager, Natalie;  Sharma, Tanvi;  Rausch, Tobias;  Kool, Marcel;  Sturm, Dominik;  Jones, David T. W.;  Vasilyeva, Aksana;  Tatevossian, Ruth G.;  Neale, Geoffrey;  Lombard, Berangere;  Loew, Damarys;  Nakitandwe, Joy;  Rusch, Michael;  Bowers, Daniel C.;  Bendel, Anne;  Partap, Sonia;  Chintagumpala, Murali;  Crawford, John;  Gottardo, Nicholas G.;  Smith, Amy;  Dufour, Christelle;  Rutkowski, Stefan;  Eggen, Tone;  Wesenberg, Finn;  Kjaerheim, Kristina;  Feychting, Maria;  Lannering, Birgitta;  Schuz, Joachim;  Johansen, Christoffer;  Andersen, Tina V.;  Roosli, Martin;  Kuehni, Claudia E.;  Grotzer, Michael;  Remke, Marc;  Puget, Stephanie;  Pajtler, Kristian W.;  Milde, Till;  Witt, Olaf;  Ryzhova, Marina;  Korshunov, Andrey;  Orr, Brent A.;  Ellison, David W.;  Brugieres, Laurence;  Lichter, Peter;  Nichols, Kim E.;  Gajjar, Amar;  Wainwright, Brandon J.;  Ayrault, Olivier;  Korbel, Jan O.;  Northcott, Paul A.;  Pfister, Stefan M.
收藏  |  浏览/下载:40/0  |  提交时间:2020/07/03

Immune evasion is a major obstacle for cancer treatment. Common mechanisms of evasion include impaired antigen presentation caused by mutations or loss of heterozygosity of the major histocompatibility complex class I (MHC-I), which has been implicated in resistance to immune checkpoint blockade (ICB) therapy(1-3). However, in pancreatic ductal adenocarcinoma (PDAC), which is resistant to most therapies including ICB4, mutations that cause loss of MHC-I are rarely found(5) despite the frequent downregulation of MHC-I expression(6-8). Here we show that, in PDAC, MHC-I molecules are selectively targeted for lysosomal degradation by an autophagy-dependent mechanism that involves the autophagy cargo receptor NBR1. PDAC cells display reduced expression of MHC-I at the cell surface and instead demonstrate predominant localization within autophagosomes and lysosomes. Notably, inhibition of autophagy restores surface levels of MHC-I and leads to improved antigen presentation, enhanced anti-tumour T cell responses and reduced tumour growth in syngeneic host mice. Accordingly, the anti-tumour effects of autophagy inhibition are reversed by depleting CD8(+) T cells or reducing surface expression of MHC-I. Inhibition of autophagy, either genetically or pharmacologically with chloroquine, synergizes with dual ICB therapy (anti-PD1 and anti-CTLA4 antibodies), and leads to an enhanced anti-tumour immune response. Our findings demonstrate a role for enhanced autophagy or lysosome function in immune evasion by selective targeting of MHC-I molecules for degradation, and provide a rationale for the combination of autophagy inhibition and dual ICB therapy as a therapeutic strategy against PDAC.


Inhibition of the autophagy-lysosome system upregulates surface expression of MHC class I proteins and enhances antigen presentation, and evokes a potent anti-tumour immune response that is mediated by CD8(+) T cells.