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An ultrapotent synthetic nanobody neutralizes SARS-CoV-2 by stabilizing inactive Spike 期刊论文
Science, 2020
作者:  Michael Schoof;  Bryan Faust;  Reuben A. Saunders;  Smriti Sangwan;  Veronica Rezelj;  Nick Hoppe;  Morgane Boone;  Christian B. Billesbølle;  Cristina Puchades;  Caleigh M. Azumaya;  Huong T. Kratochvil;  Marcell Zimanyi;  Ishan Deshpande;  Jiahao Liang;  Sasha Dickinson;  Henry C. Nguyen;  Cynthia M. Chio;  Gregory E. Merz;  Michael C. Thompson;  Devan Diwanji;  Kaitlin Schaefer;  Aditya A. Anand;  Niv Dobzinski;  Beth Shoshana Zha;  Camille R. Simoneau;  Kristoffer Leon;  Kris M. White;  Un Seng Chio;  Meghna Gupta;  Mingliang Jin;  Fei Li;  Yanxin Liu;  Kaihua Zhang;  David Bulkley;  Ming Sun;  Amber M. Smith;  Alexandrea N. Rizo;  Frank Moss;  Axel F. Brilot;  Sergei Pourmal;  Raphael Trenker;  Thomas Pospiech;  Sayan Gupta;  Benjamin Barsi-Rhyne;  Vladislav Belyy;  Andrew W. Barile-Hill;  Silke Nock;  Yuwei Liu;  Nevan J. Krogan;  Corie Y. Ralston;  Danielle L. Swaney;  Adolfo García-Sastre;  Melanie Ott;  Marco Vignuzzi;  QCRG Structural Biology Consortium4‡;  Peter Walter;  Aashish Manglik
收藏  |  浏览/下载:15/0  |  提交时间:2020/12/22
COSORE: A community database for continuous soil respiration and other soil‐atmosphere greenhouse gas flux data 期刊论文
Global Change Biology, 2020
作者:  Ben Bond‐;  Lamberty;  Danielle S. Christianson;  Avni Malhotra;  Stephanie C. Pennington;  Debjani Sihi;  Amir AghaKouchak;  Hassan Anjileli;  M. Altaf Arain;  Juan J. Armesto;  Samaneh Ashraf;  Mioko Ataka;  Dennis Baldocchi;  Thomas Andrew Black;  Nina Buchmann;  Mariah S. Carbone;  Shih‐;  Chieh Chang;  Patrick Crill;  Peter S. Curtis;  Eric A. Davidson;  Ankur R. Desai;  John E. Drake;  Tarek S. El‐;  Madany;  Michael Gavazzi;  Carolyn‐;  Monika Gö;  rres;  Christopher M. Gough;  Michael Goulden;  Jillian Gregg;  Omar Gutié;  rrez del Arroyo;  Jin‐;  Sheng He;  Takashi Hirano;  Anya Hopple;  Holly Hughes;  ;  rvi Jä;  rveoja;  Rachhpal Jassal;  Jinshi Jian;  Haiming Kan;  Jason Kaye;  Yuji Kominami;  Naishen Liang;  David Lipson;  Catriona A. Macdonald;  Kadmiel Maseyk;  Kayla Mathes;  Marguerite Mauritz;  Melanie A. Mayes;  Steve McNulty;  Guofang Miao;  Mirco Migliavacca;  Scott Miller;  Chelcy F. Miniat;  Jennifer G. Nietz;  Mats B. Nilsson;  Asko Noormets;  Hamidreza Norouzi;  Christine S. O’;  Connell;  Bruce Osborne;  Cecilio Oyonarte;  Zhuo Pang;  Matthias Peichl;  Elise Pendall;  Jorge F. Perez‐;  Quezada;  Claire L. Phillips;  Richard P. Phillips;  James W. Raich;  Alexandre A. Renchon;  Nadine K. Ruehr;  Enrique P. Sá;  nchez‐;  Cañ;  ete;  Matthew Saunders;  Kathleen E. Savage;  Marion Schrumpf;  Russell L. Scott;  Ulli Seibt;  Whendee L. Silver;  Wu Sun;  Daphne Szutu;  Kentaro Takagi;  Masahiro Takagi;  Munemasa Teramoto;  Mark G. Tjoelker;  Susan Trumbore;  Masahito Ueyama;  Rodrigo Vargas;  Ruth K. Varner;  Joseph Verfaillie;  Christoph Vogel;  Jinsong Wang;  Greg Winston;  Tana E. Wood;  Juying Wu;  Thomas Wutzler;  Jiye Zeng;  Tianshan Zha;  Quan Zhang;  Junliang Zou
收藏  |  浏览/下载:15/0  |  提交时间:2020/10/12
Microbiome analyses of blood and tissues suggest cancer diagnostic approach 期刊论文
NATURE, 2020, 579 (7800) : 567-+
作者:  Shao, Zhengping;  Flynn, Ryan A.;  Crowe, Jennifer L.;  Zhu, Yimeng;  Liang, Jialiang;  Jiang, Wenxia;  Aryan, Fardin;  Aoude, Patrick;  Bertozzi, Carolyn R.;  Estes, Verna M.;  Lee, Brian J.;  Bhagat, Govind;  Zha, Shan;  Calo, Eliezer
收藏  |  浏览/下载:54/0  |  提交时间:2020/07/03

Microbial nucleic acids are detected in samples of tissues and blood from more than 10,000 patients with cancer, and machine learning is used to show that these can be used to discriminate between and among different types of cancer, suggesting a new microbiome-based diagnostic approach.


Systematic characterization of the cancer microbiome provides the opportunity to develop techniques that exploit non-human, microorganism-derived molecules in the diagnosis of a major human disease. Following recent demonstrations that some types of cancer show substantial microbial contributions(1-10), we re-examined whole-genome and whole-transcriptome sequencing studies in The Cancer Genome Atlas(11) (TCGA) of 33 types of cancer from treatment-naive patients (a total of 18,116 samples) for microbial reads, and found unique microbial signatures in tissue and blood within and between most major types of cancer. These TCGA blood signatures remained predictive when applied to patients with stage Ia-IIc cancer and cancers lacking any genomic alterations currently measured on two commercial-grade cell-free tumour DNA platforms, despite the use of very stringent decontamination analyses that discarded up to 92.3% of total sequence data. In addition, we could discriminate among samples from healthy, cancer-free individuals (n = 69) and those from patients with multiple types of cancer (prostate, lung, and melanoma  100 samples in total) solely using plasma-derived, cell-free microbial nucleic acids. This potential microbiome-based oncology diagnostic tool warrants further exploration.