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Single-chain heteropolymers transport protons selectively and rapidly 期刊论文
NATURE, 2020, 577 (7789) : 216-+
作者:  Jiang, Tao;  Hall, Aaron;  Eres, Marco;  Hemmatian, Zahra;  Qiao, Baofu;  Zhou, Yun;  Ruan, Zhiyuan;  Couse, Andrew D.;  Heller, William T.;  Huang, Haiyan;  de la Cruz, Monica Olvera;  Rolandi, Marco;  Xu, Ting
收藏  |  浏览/下载:9/0  |  提交时间:2020/07/03

Precise protein sequencing and folding are believed to generate the structure and chemical diversity of natural channels(1,2), both of which are essential to synthetically achieve proton transport performance comparable to that seen in natural systems. Geometrically defined channels have been fabricated using peptides, DNAs, carbon nanotubes, sequence-defined polymers and organic frameworks(3-13). However, none of these channels rivals the performance observed in their natural counterparts. Here we show that without forming an atomically structured channel, four-monomer-based random heteropolymers (RHPs)(14) can mimic membrane proteins and exhibit selective proton transport across lipid bilayers at a rate similar to those of natural proton channels. Statistical control over the monomer distribution in an RHP leads to segmental heterogeneity in hydrophobicity, which facilitates the insertion of single RHPs into the lipid bilayers. It also results in bilayer-spanning segments containing polar monomers that promote the formation of hydrogen-bonded chains(15,16) for proton transport. Our study demonstrates the importance of the adaptability that is enabled by statistical similarity among RHP chains and of the modularity provided by the chemical diversity of monomers, to achieve uniform behaviour in heterogeneous systems. Our results also validate statistical randomness as an unexplored approach to realize protein-like behaviour at the single-polymer-chain level in a predictable manner.


  
Brain control of humoral immune responses amenable to behavioural modulation 期刊论文
NATURE, 2020, 581 (7807)
作者:  Yang, C. H.;  Leon, R. C. C.;  Hwang, J. C. C.;  Saraiva, A.;  Tanttu, T.;  Huang, W.;  Lemyre, J. Camirand;  Chan, K. W.;  Tan, K. Y.;  Hudson, F. E.;  Itoh, K. M.;  Morello, A.;  Pioro-Ladriere, M.;  Laucht, A.;  Dzurak, A. S.
收藏  |  浏览/下载:12/0  |  提交时间:2020/07/03

It has been speculated that brain activities might directly control adaptive immune responses in lymphoid organs, although there is little evidence for this. Here we show that splenic denervation in mice specifically compromises the formation of plasma cells during a T cell-dependent but not T cell-independent immune response. Splenic nerve activity enhances plasma cell production in a manner that requires B-cell responsiveness to acetylcholine mediated by the alpha 9 nicotinic receptor, and T cells that express choline acetyl transferase(1,2) probably act as a relay between the noradrenergic nerve and acetylcholine-responding B cells. We show that neurons in the central nucleus of the amygdala (CeA) and the paraventricular nucleus (PVN) that express corticotropin-releasing hormone (CRH) are connected to the splenic nerve  ablation or pharmacogenetic inhibition of these neurons reduces plasma cell formation, whereas pharmacogenetic activation of these neurons increases plasma cell abundance after immunization. In a newly developed behaviour regimen, mice are made to stand on an elevated platform, leading to activation of CeA and PVN CRH neurons and increased plasma cell formation. In immunized mice, the elevated platform regimen induces an increase in antigen-specific IgG antibodies in a manner that depends on CRH neurons in the CeA and PVN, an intact splenic nerve, and B cell expression of the alpha 9 acetylcholine receptor. By identifying a specific brain-spleen neural connection that autonomically enhances humoral responses and demonstrating immune stimulation by a bodily behaviour, our study reveals brain control of adaptive immunity and suggests the possibility to enhance immunocompetency by behavioural intervention.


Neuronal activities in the central amygdala and paraventricular nucleus are transmitted via the splenic nerve to increase plasma cell formation after immunization, and this process can be behaviourally enhanced in mice.


  
Rapid reconstruction of SARS-CoV-2 using a synthetic genomics platform 期刊论文
NATURE, 2020
作者:  Touat, Mehdi;  Li, Yvonne Y.;  Boynton, Adam N.;  Spurr, Liam F.;  Iorgulescu, J. Bryan;  Bohrson, Craig L.;  Cortes-Ciriano, Isidro;  Birzu, Cristina;  Geduldig, Jack E.;  Pelton, Kristine;  Lim-Fat, Mary Jane;  Pal, Sangita;  Ferrer-Luna, Ruben;  Ramkissoon, Shakti H.;  Dubois, Frank;  Bellamy, Charlotte;  Currimjee, Naomi;  Bonardi, Juliana;  Qian Kenin;  Ho, Patricia;  Malinowski, Seth;  Taquet, Leon;  Jones, Robert E.;  Shetty, Aniket;  Chow, Kin-Hoe;  Sharaf, Radwa;  Pavlick, Dean;  Albacker, Lee A.;  Younan, Nadia;  Baldini, Capucine;  Verreault, Maite;  Giry, Marine;  Guillerm, Erell;  Ammari, Samy;  Beuvon, Frederic;  Mokhtari, Karima;  Alentorn, Agusti;  Dehais, Caroline;  Houillier, Caroline;  Laigle-Donadey, Florence;  Psimaras, Dimitri;  Lee, Eudocia Q.;  Nayak, Lakshmi;  McFaline-Figueroa, J. Ricardo;  Carpentier, Alexandre;  Cornu, Philippe;  Capelle, Laurent;  Mathon, Bertrand;  Barnholtz-Sloan, Jill S.;  Chakravarti, Arnab;  Bi, Wenya Linda;  Chiocca, E. Antonio;  Fehnel, Katie Pricola;  Alexandrescu, Sanda;  Chi, Susan N.;  Haas-Kogan, Daphne;  Batchelor, Tracy T.;  Frampton, Garrett M.;  Alexander, Brian M.;  Huang, Raymond Y.;  Ligon, Azra H.;  Coulet, Florence;  Delattre, Jean-Yves;  Hoang-Xuan, Khe;  Meredith, David M.;  Santagata, Sandro;  Duval, Alex;  Sanson, Marc;  Cherniack, Andrew D.;  Wen, Patrick Y.;  Reardon, David A.;  Marabelle, Aurelien;  Park, Peter J.;  Idbaih, Ahmed;  Beroukhim, Rameen;  Bandopadhayay, Pratiti;  Bielle, Franck;  Ligon, Keith L.
收藏  |  浏览/下载:11/0  |  提交时间:2020/07/03

Reverse genetics has been an indispensable tool to gain insights into viral pathogenesis and vaccine development. The genomes of large RNA viruses, such as those from coronaviruses, are cumbersome to clone and manipulate inEscherichia coliowing to the size and occasional instability of the genome(1-3). Therefore, an alternative rapid and robust reverse-genetics platform for RNA viruses would benefit the research community. Here we show the full functionality of a yeast-based synthetic genomics platform to genetically reconstruct diverse RNA viruses, including members of theCoronaviridae,FlaviviridaeandPneumoviridaefamilies. Viral subgenomic fragments were generated using viral isolates, cloned viral DNA, clinical samples or synthetic DNA, and these fragments were then reassembled in one step inSaccharomyces cerevisiaeusing transformation-associated recombination cloning to maintain the genome as a yeast artificial chromosome. T7 RNA polymerase was then used to generate infectious RNA to rescue viable virus. Using this platform, we were able to engineer and generate chemically synthesized clones of the virus, severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2)(4), which has caused the recent pandemic of coronavirus disease (COVID-19), in only a week after receipt of the synthetic DNA fragments. The technical advance that we describe here facilitates rapid responses to emerging viruses as it enables the real-time generation and functional characterization of evolving RNA virus variants during an outbreak.


A yeast-based synthetic genomics platform is used to reconstruct and characterize large RNA viruses from synthetic DNA fragments  this technique will facilitate the rapid analysis of RNA viruses, such as SARS-CoV-2, during an outbreak.


  
Structure of SWI/SNF chromatin remodeller RSC bound to a nucleosome 期刊论文
NATURE, 2020
作者:  Coll, Anthony P.;  Chen, Michael;  Taskar, Pranali;  Rimmington, Debra;  Patel, Satish;  Tadross, John A.;  Cimino, Irene;  Yang, Ming;  Welsh, Paul;  Virtue, Samuel;  Goldspink, Deborah A.;  Miedzybrodzka, Emily L.;  Konopka, Adam R.;  Esponda, Raul Ruiz;  Huang, Jeffrey T. -J.;  Tung, Y. C. Loraine;  Rodriguez-Cuenca, Sergio
收藏  |  浏览/下载:11/0  |  提交时间:2020/07/03

The cryo-electron microscopy structure of the 16-subunit yeast SWI/SNF complex RSC in complex with a nucleosome substrate provides insights into the chromatin-remodelling function of this family of protein complexes.


Chromatin-remodelling complexes of the SWI/SNF family function in the formation of nucleosome-depleted, transcriptionally active promoter regions (NDRs)(1,2). In the yeast Saccharomyces cerevisiae, the essential SWI/SNF complex RSC3 contains 16 subunits, including the ATP-dependent DNA translocase Sth1(4,5). RSC removes nucleosomes from promoter regions(6,7) and positions the specialized +1 and -1 nucleosomes that flank NDRs(8,9). Here we present the cryo-electron microscopy structure of RSC in complex with a nucleosome substrate. The structure reveals that RSC forms five protein modules and suggests key features of the remodelling mechanism. The body module serves as a scaffold for the four flexible modules that we call DNA-interacting, ATPase, arm and actin-related protein (ARP) modules. The DNA-interacting module binds extra-nucleosomal DNA and is involved in the recognition of promoter DNA elements(8,10,11) that influence RSC functionality(12). The ATPase and arm modules sandwich the nucleosome disc with the Snf2 ATP-coupling (SnAC) domain and the finger helix, respectively. The translocase motor of the ATPase module engages with the edge of the nucleosome at superhelical location +2. The mobile ARP module may modulate translocase-nucleosome interactions to regulate RSC activity(5). The RSC-nucleosome structure provides a basis for understanding NDR formation and the structure and function of human SWI/SNF complexes that are frequently mutated in cancer(13).


  
Streamflow response to forest management 期刊论文
NATURE, 2020, 578 (7794) : E12-E15
作者:  Jiang, Tao;  Hall, Aaron;  Eres, Marco;  Hemmatian, Zahra;  Qiao, Baofu;  Zhou, Yun;  Ruan, Zhiyuan;  Couse, Andrew D.;  Heller, William T.;  Huang, Haiyan;  de la Cruz, Monica Olvera;  Rolandi, Marco;  Xu, Ting
收藏  |  浏览/下载:8/0  |  提交时间:2020/05/13
Mechanical regulation of glycolysis via cytoskeleton architecture 期刊论文
NATURE, 2020, 578 (7796) : 621-+
作者:  Faivre, Emily J.;  McDaniel, Keith F.;  Albert, Daniel H.;  Mantena, Srinivasa R.;  Plotnik, Joshua P.;  Wilcox, Denise;  Zhang, Lu;  Bui, Mai H.;  Sheppard, George S.;  Wang, Le;  Sehgal, Vasudha;  Lin, Xiaoyu;  Huang, Xiaoli;  Lu, Xin;  Uziel, Tamar;  Hessler, Paul;  Lam, Lloyd T.;  Bellin, Richard J.;  Mehta, Gaurav;  Fidanze, Steve;  Pratt, John K.;  Liu, Dachun;  Hasvold, Lisa A.;  Sun, Chaohong;  Panchal, Sanjay C.;  Nicolette, John J.;  Fossey, Stacey L.;  Park, Chang H.;  Longenecker, Kenton;  Bigelow, Lance;  Torrent, Maricel;  Rosenberg, Saul H.;  Kati, Warren M.;  Shen, Yu
收藏  |  浏览/下载:15/0  |  提交时间:2020/07/03

The mechanics of the cellular microenvironment continuously modulates cell functions such as growth, survival, apoptosis, differentiation and morphogenesis via cytoskeletal remodelling and actomyosin contractility(1-3). Although all of these processes consume energy(4,5), it is unknown whether and how cells adapt their metabolic activity to variable mechanical cues. Here we report that the transfer of human bronchial epithelial cells from stiff to soft substrates causes a downregulation of glycolysis via proteasomal degradation of the rate-limiting metabolic enzyme phosphofructokinase (PFK). PFK degradation is triggered by the disassembly of stress fibres, which releases the PFK-targeting E3 ubiquitin ligase tripartite motif (TRIM)-containing protein 21 (TRIM21). Transformed non-small-cell lung cancer cells, which maintain high glycolytic rates regardless of changing environmental mechanics, retain PFK expression by downregulating TRIM21, and by sequestering residual TRIM21 on a stress-fibre subset that is insensitive to substrate stiffness. Our data reveal a mechanism by which glycolysis responds to architectural features of the actomyosin cytoskeleton, thus coupling cell metabolism to the mechanical properties of the surrounding tissue. These processes enable normal cells to tune energy production in variable microenvironments, whereas the resistance of the cytoskeleton in response to mechanical cues enables the persistence of high glycolytic rates in cancer cells despite constant alterations of the tumour tissue.


Glycolysis in normal epithelial cells responds to microenvironmental mechanics via the modulation of actin bundles that sequester the phosphofructokinase-targeting ubiquitin ligase TRIM21, a process superseded by persistent actin bundles in cancer cells.


  
Integrated genomic and molecular characterization of cervical cancer 期刊论文
NATURE, 2017, 543 (7645) : 378-+
作者:  Burk, Robert D.;  Chen, Zigui;  Saller, Charles;  Tarvin, Katherine;  Carvalho, Andre L.;  Scapulatempo-Neto, Cristovam;  Silveira, Henrique C.;  Fregnani, Jose H.;  Creighton, Chad J.;  Anderson, Matthew L.;  Castro, Patricia;  Wang, Sophia S.;  Yau, Christina;  Benz, Christopher;  Robertson, A. Gordon;  Mungall, Karen;  Lim, Lynette;  Bowlby, Reanne;  Sadeghi, Sara;  Brooks, Denise;  Sipahimalani, Payal;  Mar, Richard;  Ally, Adrian;  Clarke, Amanda;  Mungall, Andrew J.;  Tam, Angela;  Lee, Darlene;  Chuah, Eric;  Schein, Jacqueline E.;  Tse, Kane;  Kasaian, Katayoon;  Ma, Yussanne;  Marra, Marco A.;  Mayo, Michael;  Balasundaram, Miruna;  Thiessen, Nina;  Dhalla, Noreen;  Carlsen, Rebecca;  Moore, Richard A.;  Holt, Robert A.;  Jones, Steven J. M.;  Wong, Tina;  Pantazi, Angeliki;  Parfenov, Michael;  Kucherlapati, Raju;  Hadjipanayis, Angela;  Seidman, Jonathan;  Kucherlapati, Melanie;  Ren, Xiaojia;  Xu, Andrew W.;  Yang, Lixing;  Park, Peter J.;  Lee, Semin;  Rabeno, Brenda;  Huelsenbeck-Dill, Lori;  Borowsky, Mark;  Cadungog, Mark;  Iacocca, Mary;  Petrelli, Nicholas;  Swanson, Patricia;  Ojesina, Akinyemi I.;  Le, Xuan;  Sandusky, George;  Adebamowo, Sally N.;  Akeredolu, Teniola;  Adebamowo, Clement;  Reynolds, Sheila M.;  Shmulevich, Ilya;  Shelton, Candace;  Crain, Daniel;  Mallery, David;  Curley, Erin;  Gardner, Johanna;  Penny, Robert;  Morris, Scott;  Shelton, Troy;  Liu, Jia;  Lolla, Laxmi;  Chudamani, Sudha;  Wu, Ye;  Birrer, Michael;  McLellan, Michael D.;  Bailey, Matthew H.;  Miller, Christopher A.;  Wyczalkowski, Matthew A.;  Fulton, Robert S.;  Fronick, Catrina C.;  Lu, Charles;  Mardis, Elaine R.;  Appelbaum, Elizabeth L.;  Schmidt, Heather K.;  Fulton, Lucinda A.;  Cordes, Matthew G.;  Li, Tiandao;  Ding, Li;  Wilson, Richard K.;  Rader, Janet S.;  Behmaram, Behnaz;  Uyar, Denise;  Bradley, William;  Wrangle, John;  Pastore, Alessandro;  Levine, Douglas A.;  Dao, Fanny;  Gao, Jianjiong;  Schultz, Nikolaus;  Sander, Chris;  Ladanyi, Marc;  Einstein, Mark;  Teeter, Randall;  Benz, Stephen;  Wentzensen, Nicolas;  Felau, Ina;  Zenklusen, Jean C.;  Bodelon, Clara;  Demchok, John A.;  Yang, Liming;  Sheth, Margi;  Ferguson, Martin L.;  Tarnuzzer, Roy;  Yang, Hannah;  Schiffman, Mark;  Zhang, Jiashan;  Wang, Zhining;  Davidsen, Tanja;  Olaniyan, Olayinka;  Hutter, Carolyn M.;  Sofia, Heidi J.;  Gordenin, Dmitry A.;  Chan, Kin;  Roberts, Steven A.;  Klimczak, Leszek J.;  Van Waes, Carter;  Chen, Zhong;  Saleh, Anthony D.;  Cheng, Hui;  Parfitt, Jeremy;  Bartlett, John;  Albert, Monique;  Arnaout, Angel;  Sekhon, Harman;  Gilbert, Sebastien;  Peto, Myron;  Myers, Jerome;  Harr, Jodi;  Eckman, John;  Bergsten, Julie;  Tucker, Kelinda;  Zach, Leigh Anne;  Karlan, Beth Y.;  Lester, Jenny;  Orsulic, Sandra;  Sun, Qiang;  Naresh, Rashi;  Pihl, Todd;  Wan, Yunhu;  Zaren, Howard;  Sapp, Jennifer;  Miller, Judy;  Drwiega, Paul;  Ojesina, Akinyemi I.;  Murray, Bradley A.;  Zhang, Hailei;  Cherniack, Andrew D.;  Sougnez, Carrie;  Pedamallu, Chandra Sekhar;  Lichtenstein, Lee;  Meyerson, Matthew;  Noble, Michael S.;  Heiman, David I.;  Voet, Doug;  Getz, Gad;  Saksena, Gordon;  Kim, Jaegil;  Shih, Juliann;  Cho, Juok;  Lawrence, Michael S.;  Gehlenborg, Nils;  Lin, Pei;  Beroukhim, Rameen;  Frazer, Scott;  Gabriel, Stacey B.;  Schumacher, Steven E.;  Leraas, Kristen M.;  Lichtenberg, Tara M.;  Zmuda, Erik;  Bowen, Jay;  Frick, Jessica;  Gastier-Foster, Julie M.;  Wise, Lisa;  Gerken, Mark;  Ramirez, Nilsa C.;  Danilova, Ludmila;  Cope, Leslie;  Baylin, Stephen B.;  Salvesen, Helga B.;  Vellano, Christopher P.;  Ju, Zhenlin;  Diao, Lixia;  Zhao, Hao;  Chong, Zechen;  Ryan, Michael C.;  Martinez-Ledesma, Emmanuel;  Verhaak, Roeland G.;  Byers, Lauren Averett;  Yuan, Yuan;  Chen, Ken;  Ling, Shiyun;  Mills, Gordon B.;  Lu, Yiling;  Akbani, Rehan;  Seth, Sahil;  Liang, Han;  Wang, Jing;  Han, Leng;  Weinstein, John N.;  Bristow, Christopher A.;  Zhang, Wei;  Mahadeshwar, Harshad S.;  Sun, Huandong;  Tang, Jiabin;  Zhang, Jianhua;  Song, Xingzhi;  Protopopov, Alexei;  Shaw, Kenna R. Mills;  Chin, Lynda;  Olabode, Oluwole;  Ojesina, Akinyemi I.;  DiSaia, Philip;  Radenbaugh, Amie;  Haussler, David;  Zhu, Jingchun;  Stuart, Josh;  Chalise, Prabhakar;  Koestler, Devin;  Fridley, Brooke L.;  Godwin, Andrew K.;  Madan, Rashna;  Ciriello, Giovanni;  Martinez, Cathleen;  Higgins, Kelly;  Bocklage, Therese;  Auman, J. Todd;  Perou, Charles M.;  Tan, Donghui;  Parker, Joel S.;  Hoadley, Katherine A.;  Wilkerson, Matthew D.;  Mieczkowski, Piotr A.;  Skelly, Tara;  Veluvolu, Umadevi;  Hayes, D. Neil;  Rathmell, W. Kimryn;  Hoyle, Alan P.;  Simons, Janae V.;  Wu, Junyuan;  Mose, Lisle E.;  Soloway, Matthew G.;  Balu, Saianand;  Meng, Shaowu;  Jefferys, Stuart R.;  Bodenheimer, Tom;  Shi, Yan;  Roach, Jeffrey;  Thorne, Leigh B.;  Boice, Lori;  Huang, Mei;  Jones, Corbin D.;  Zuna, Rosemary;  Walker, Joan;  Gunderson, Camille;  Snowbarger, Carie;  Brown, David;  Moxley, Katherine;  Moore, Kathleen;  Andrade, Kelsi;  Landrum, Lisa;  Mannel, Robert;  McMeekin, Scott;  Johnson, Starla;  Nelson, Tina;  Elishaev, Esther;  Dhir, Rajiv;  Edwards, Robert;  Bhargava, Rohit;  Tiezzi, Daniel G.;  Andrade, Jurandyr M.;  Noushmehr, Houtan;  Carlotti, Carlos Gilberto, Jr.;  Tirapelli, Daniela Pretti da Cunha;  Weisenberger, Daniel J.;  Van Den Berg, David J.;  Maglinte, Dennis T.;  Bootwalla, Moiz S.;  Lai, Phillip H.;  Triche, Timothy, Jr.;  Swisher, Elizabeth M.;  Agnew, Kathy J.;  Shelley, Carl Simon;  Laird, Peter W.;  Schwarz, Julie;  Grigsby, Perry;  Mutch, David
收藏  |  浏览/下载:14/0  |  提交时间:2019/04/09