186 research outputs found
Self-compassion and depressive symptoms in chronic pain (CP):A 1-year longitudinal study
- Author
- A Lutz
- A LĂłpez
- A MacBeth
- AA Wren
- AK Walker
- Angélica López
- CT Hartrick
- E Bohlmeijer
- F Raes
- G Crombez
- G Pauley
- H Breivik
- H Merksey
- Helen Rockliff
- HH Dalai Lama
- HL Chapin
- J Cohen
- J Costa
- J Kabat-Zinn
- JA Hayes
- JC Mundt
- JN Kirby
- JW Vlaeyen
- K Birnie
- K Jobski
- K Kroenke
- KA Coffey
- KD Neff
- KD Neff
- KE Vowles
- KW Brown
- L Cardaciotto
- L Hilton
- Lauren A. Stutts
- LM McCracken
- LM McCracken
- LM McCracken
- M Zeller
- MA Ferreira-Valente
- Michael J. Gawrysiak
- MM Ohayon
- N Hope
- Nicholas T. Van Dam
- O Longe
- P Castilho
- P Gilbert
- P Gilbert
- P Kline
- P Muris
- P Muris
- PA Frazier
- PF Lovibond
- R Baer
- R SchĂŒtze
- RA Depue
- RJ Gatchel
- S GregĂłrio
- SF Lerman
- SL Parry
- SM Kelders
- SR Bishop
- SĂ©rgio A. Carvalho
- SĂ©rgio A. Carvalho
- T Krieger
- TE Elliott
- W Kuyken
- YY Tang
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 19/12/2019
- Field of study
The host ubiquitin-dependent segregase VCP/p97 is required for the onset of human cytomegalovirus replication
- Author
- A Boehler
- A Marchini
- AL Scully
- AM Ishov
- AM Macher
- B Tian
- BS Salvant
- CA Schneider
- CN Kotton
- D Panda
- D Wang
- DH Spector
- E De Clercq
- EA Fortunato
- F Goodrum
- Felicia Goodrum
- Finn Grey
- G Edwalds-Gilbert
- GE Tegtmeier
- H Arlt
- H Lou
- H Meyer
- H Meyer
- H Meyer
- HH Wong
- HL Zhou
- J Bruminhent
- J Pavelin
- J Sinclair
- JA Nelson
- James Prendergast
- JD Oduro
- JH Ahn
- JM Muller
- K Ramadan
- K Tran
- L Einhorn
- M Arita
- M Reeves
- NP Dantuma
- P Magnaghi
- P Neiman
- RA Ballard
- RM Stenberg
- RM Stenberg
- S Awasthi
- S Bergink
- S Kowalsky
- S Rumpf
- SM Rodems
- SP Adler
- T Boesen
- V Sanchez
- W Hou
- X E
- Y Takagaki
- Y Ye
- Yao-Tang Lin
- Publication venue
- 'Public Library of Science (PLoS)'
- Publication date
- 01/05/2017
- Field of study
The human cytomegalovirus major immediate early proteins IE1 and IE2 are critical drivers of virus replication and are considered pivotal in determining the balance between productive and latent infection. IE1 and IE2 are derived from the same primary transcript by alternative splicing and regulation of their expression likely involves a complex interplay between cellular and viral factors. Here we show that knockdown of the host ubiquitin-dependent segregase VCP/p97, results in loss of IE2 expression, subsequent suppression of early and late gene expression and, ultimately, failure in virus replication. RNAseq analysis showed increased levels of IE1 splicing, with a corresponding decrease in IE2 splicing following VCP knockdown. Global analysis of viral transcription showed the expression of a subset of viral genes is not reduced despite the loss of IE2 expression, including UL112/113. Furthermore, Immunofluorescence studies demonstrated that VCP strongly colocalised with the viral replication compartments in the nucleus. Finally, we show that NMS-873, a small molecule inhibitor of VCP, is a potent HCMV antiviral with potential as a novel host targeting therapeutic for HCMV infection
Correlations of Gene Expression with Blood Lead Levels in Children with Autism Compared to Typically Developing Controls
- Author
- A Zhang
- AJ Richardson
- BA Corbett
- Boryana Stamova
- BP Lanphear
- BP Lanphear
- C Gillberg
- C Lord
- C Lord
- C Lord
- C Lord
- CM Bouton
- CM Bouton
- DA Cory-Slechta
- DA Cory-Slechta
- DA Daggett
- DC Rubinsztein
- DR Green
- E Rossi
- EA London
- Frank R. Sharp
- Glen Jickling
- GT Nepom
- H Needleman
- H Needleman
- HL Needleman
- HL Needleman
- HM McBride
- I Hertz-Picciotto
- I Hertz-Picciotto
- Irva Hertz-Picciotto
- Isaac N. Pessah
- J Masuda
- J Walton
- Jeffrey P. Gregg
- JP Gregg
- JR Walton
- Judy Van de Water
- KA Jellinger
- L Crews
- L Struzynska
- LD White
- LJ Lawton
- LS Wright
- M Gotoh
- MB Virgolini
- MB Virgolini
- ME Gilbert
- MF Rossier
- MJ McCabe Jr
- MJ McCabe Jr
- MM Wiest
- P Ashwood
- P Krakowiak
- Paul Ashwood
- Peter G. Green
- PJ Landrigan
- R Moser
- RA Goyer
- RA Goyer
- RL Jones
- Robin Hansen
- RP Warren
- RP Warren
- S Gupta
- S Yoon
- SC Kapoor
- SO Knowles
- T Suzuki
- TD Oberley
- TI Lidsky
- TL Guo
- TL Guo
- VK Singh
- VN Adonaylo
- W Qu
- Xiaowei Yang
- Y Tang
- Yingfang Tian
- Publication venue
- Springer-Verlag
- Publication date
- 01/01/2009
- Field of study
The objective of this study was to examine the correlation between gene expression and lead (Pb) levels in blood in children with autism (AU, n = 37) compared to typically developing controls (TD, n = 15). We postulated that, though lead levels did not differ between the groups, AU children might metabolize lead differently compared to TD children. RNA was isolated from blood and processed on Affymetrix microarrays. Separate analyses of covariance (ANCOVA) corrected for age and gender were performed for TD, AU, and all subjects (AU + TD). To reduce false positives, only genes that overlapped these three ANCOVAs were considered. Thus, 48 probe sets correlated with lead levels in both AU and TD subjects and were significantly different between the groups (p(Diagnosis Ă log2 Pb) < 0.05). These genes were related mainly to immune and inflammatory processes, including MHC Class II family members and CD74. A large number (n = 791) of probe sets correlated (P â€Â 0.05) with lead levels in TD but not in AU subjects; and many probe sets (n = 162) correlated (P â€Â 0.05) with lead levels in AU but not in TD subjects. Only 30 probe sets correlated (P â€Â 0.05) with lead levels in a similar manner in the AU and TD groups. These data show that AU and TD children display different associations between transcript levels and low levels of lead. We postulate that this may relate to the underlying genetic differences between the two groups, though other explanations cannot be excluded
Chondroitin sulfates and their binding molecules in the central nervous system
- Author
- A Oohira
- A Purohit
- A Sarkar
- A Streit
- AA Nugent
- AD Cardin
- AH Conrad
- AP Spicer
- AR Aricescu
- AW Stoker
- B Xu
- BK Hall
- BL Farrugia
- BP Toole
- BT Lang
- C Iannuzzi
- C Nicholson
- C Solera
- C Ueoka
- CA Dwyer
- CA Dwyer
- CB Jendresen
- CD Nandini
- CH Coles
- CI Gama
- CS Goodman
- D Acampora
- D Bagnard
- D Carulli
- D Carulli
- D Carulli
- D Fisher
- D Kurihara
- DA Tonge
- DB Kantor
- DM Snow
- DR Friedlander
- EJ Bradbury
- EJ Fry
- EL Shipp
- EO Berglund
- F Bouzioukh
- F Li
- F Polleux
- F Properzi
- F Wegner
- G BrĂŒckner
- G Chen
- G Despras
- G Dick
- GM Castillo
- GM Fox
- H Cui
- H Kitagawa
- H Lortat-Jacob
- H Margalit
- H Muramatsu
- H Pantazopoulos
- HG Bray
- HL Thompson
- HN Antoniades
- I Ferrer
- J Dewit
- J Dodd
- J McLean
- J Nagai
- J Silver
- J Slavin
- J Spatazza
- JC Adams
- JC Kwok
- JC Kwok
- JC Kwok
- JCF Kwok
- JCF Kwok
- JE Silbert
- JW Griffith
- K Forsten-Williams
- K Kadomatsu
- K Lee
- K Matsumoto
- K Nikolovska
- K Park
- K Sugahara
- KA Giamanco
- KA Giamanco
- KY Chung
- L Djerbal
- L Karumbaiah
- L-H Wang
- M Beurdeley
- M Cescon
- M Corredor
- M Morawski
- M Morawski
- M Morawski
- M Morawski
- M Sobel
- M Taniguchi
- MA Seeger
- ME Hatten
- ME Herndon
- ME Schwab
- MP Mark
- MR Celio
- MR Dino
- N Heck
- N Maeda
- N Maeda
- N Perrimon
- NB Schwartz
- NN Nalivaeva
- O Yasuhara
- P Milev
- PA Levene
- PA Levene
- PA Levene
- PA Levene
- PA Walicke
- PC Billings
- PH Chipman
- Q Yan
- RE Hileman
- RF Alderson
- RH Adams
- RJ Gilbert
- RJ Rivas
- RK Murphey
- RR Bernhardt
- RR Zhao
- RS Bal
- RS Schmid
- RW Gundersen
- RW Oppenheim
- S Ashikari-Hada
- S Ashikari-Hada
- S Franken
- S Mizumoto
- S Mizumoto
- S Roseman
- S Sirko
- S Sirko
- S Soleman
- S Sugiyama
- S Woerly
- S Yamada
- S Yang
- SC Landis
- SE Ensslen-Craig
- SLB Oliveira
- SM Gantt
- SS Deepa
- SS Deepa
- T Mikami
- T Pizzorusso
- T Vo
- TG Williamson
- TL Dickendesher
- U Junghans
- U Yazdani
- V Saini
- VC Hascall
- W-L Gu
- X Qu
- X-Q Tang
- Y Furutani
- Y Henrotin
- Y Luo
- Y Monneau
- Y Shen
- Y Shintani
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 01/01/2017
- Field of study
Chondroitin sulfate (CS) is the most abundant glycosaminoglycan (GAG) in the central nervous system (CNS) matrix. Its sulfation and epimerization patterns give rise to different forms of CS, which enables it to interact specifically and with a significant affinity with various signalling molecules in the matrix including growth factors, receptors and guidance molecules. These interactions control numerous biological and pathological processes, during development and in adulthood. In this review, we describe the specific interactions of different families of proteins involved in various physiological and cognitive mechanisms with CSs in CNS matrix. A better understanding of these interactions could promote a development of inhibitors to treat neurodegenerative diseases
Anti-angiogenic therapy for cancer: Current progress, unresolved questions and future directions
- Author
- A Carrato
- A Gramont de
- A Grothey
- A Grothey
- A Hauschild
- A McIntyre
- A Rapisarda
- A Sandler
- AA Veldt Van der
- AA Veldt van der
- AD Norden
- AD Smith
- AD Smith
- AK Olsson
- AM Brufsky
- AM Jubb
- Andrew R. Reynolds
- AR Reynolds
- AS Bailey
- AS Chung
- AS Chung
- AW Griffioen
- B Dome
- B Dome
- B Escudier
- B Escudier
- B Nico
- B Nordlinger
- B Oosthuyse
- B Sennino
- B Sitohy
- BI Rini
- BI Rini
- BI Rini
- BI Rini
- BJ Giantonio
- C Aghajanian
- C Anderberg
- C Bais
- C Fischer
- C Fischer
- C Porta
- C Raimondi
- C Schuster
- C Stockmann
- CH Barrios
- CJ Allegra
- CJ Allegra
- CN Sternberg
- CN Sternberg
- D Cunningham
- D Grunhagen
- D Huang
- D Lambrechts
- D Lyden
- D Maru
- D Miles
- D Ribatti
- DI Gabrilovich
- DW McMillin
- DW Miles
- DW Miles
- E Cutsem Van
- E Cutsem Van
- E Cutsem Van
- E Cutsem Van
- E Guerin
- E Langenkamp
- E Raymond
- E Tomaso di
- E Tomaso di
- EA Kuczynski
- F Collinson
- F Fan
- F Fan
- F Loupakis
- F Pezzella
- F Pezzella
- F Pezzella
- F Shojaei
- F Shojaei
- F Shojaei
- F Shojaei
- F Shojaei
- F Stessels
- F Winkler
- F Winkler
- F Zhang
- G Bergers
- G Bergers
- G Lorenzo Di
- G Minckwitz von
- G Nardo
- GC Jayson
- GG Eynden Van den
- GG Eynden Van den
- H Hashizume
- H Hurwitz
- HD Bear
- HJ Hammers
- HL Kindler
- HS Rugo
- HT Tran
- HX Chen
- I Helfrich
- IF Tannock
- IM Desar
- IN Zama
- J Bennouna
- J Bergh
- J Folkman
- J Lu
- J Rak
- J Xu
- JA Joyce
- JC Soria
- JC Welti
- JC Welti
- JF Groot de
- JI Greenberg
- JL Li
- JL Rubenstein
- JL Yu
- JL Yu
- JM Butler
- JM Ebos
- JM Ebos
- JM Ebos
- JM Ebos
- JM Llovet
- JM Llovet
- JP Crown
- JP Dales
- JR Hecht
- JR Rossari
- JS Wey
- K Miller
- KB Blagoev
- KB Kim
- KD Miller
- KJ Luzzi
- KM Hodivala-Dilke
- KP Olive
- KS Han
- KT Flaherty
- KT Flaherty
- KV Lu
- L Cheng
- L Gianni
- L Ricci-Vitiani
- L Yang
- L Zhang
- LA Gilbert
- LB Saltz
- LM Coussens
- LM Ellis
- LM Ellis
- LS Fournier
- M Paez-Ribes
- M Palma De
- M Palma De
- M Reck
- M Reck
- M Singh
- MJ Bissell
- MP Barr
- MR Mancuso
- Naveen S. Vasudev
- NC Turner
- NJ Robert
- NJ Robert
- NS Vasudev
- O Casanovas
- O Keunen
- O Straume
- OM Hahn
- P Carmeliet
- P Carmeliet
- P Carmeliet
- P Guo
- P Osterlund
- P Sardari Nia
- P Wolter
- PB Vermeulen
- PD Nathan
- PJ Johnson
- PS Hegde
- Q Pan
- R Dienstmann
- R Erber
- R Folberg
- R Hlushchuk
- R Kalluri
- R Leite de Oliveira
- R Porschen
- R Wang
- R Wong
- RA Burger
- RJ Motzer
- RJ Motzer
- RJ Motzer
- RK Jain
- RK Jain
- RK Jain
- RM Shaheen
- RS Kerbel
- RS Kerbel
- RT Tong
- S Koch
- S Kopetz
- S Lee
- S Loges
- S Tugues
- S Veire Van de
- SA Yousem
- SB Kaye
- SB Wedam
- SR Alberts
- T Andre
- T Cascone
- T Donnem
- T Gruenberger
- T Jiang
- T Powles
- TA Yap
- TC Tang
- TE Hutson
- TJ Perren
- V Moreno Garcia
- VG Cooke
- WA Spannuth
- WK Kelly
- WK Rathmell
- WP Leenders
- WS Carbonell
- WS Kamoun
- WW Kilarski
- X Li
- X Xian
- XD Zhu
- Y Crawford
- Y Shaked
- Y Shaked
- YL Hu
- YS Chun
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 01/01/2014
- Field of study
Tumours require a vascular supply to grow and can achieve this via the expression of pro-angiogenic growth factors, including members of the vascular endothelial growth factor (VEGF) family of ligands. Since one or more of the VEGF ligand family is overexpressed in most solid cancers, there was great optimism that inhibition of the VEGF pathway would represent an effective anti-angiogenic therapy for most tumour types. Encouragingly, VEGF pathway targeted drugs such as bevacizumab, sunitinib and aflibercept have shown activity in certain settings. However, inhibition of VEGF signalling is not effective in all cancers, prompting the need to further understand how the vasculature can be effectively targeted in tumours. Here we present a succinct review of the progress with VEGF-targeted therapy and the unresolved questions that exist in the field: including its use in different disease stages (metastatic, adjuvant, neoadjuvant), interactions with chemotherapy, duration and scheduling of therapy, potential predictive biomarkers and proposed mechanisms of resistance, including paradoxical effects such as enhanced tumour aggressiveness. In terms of future directions, we discuss the need to delineate further the complexities of tumour vascularisation if we are to develop more effective and personalised anti-angiogenic therapies. © 2014 The Author(s)
Prognostic model to predict postoperative acute kidney injury in patients undergoing major gastrointestinal surgery based on a national prospective observational cohort study.
- Author
- Aamir A
- Abbas J
- Abbas N
- Abbott TEF
- Abdalla M
- Abdikadir H
- Abuhussein N
- Acquaah F
- Adamson R
- Adeleye O
- Adeogun A
- Adlan A
- Aftab R
- Afzal Z
- Agarwal M
- Aglan H
- Agnew CJF
- Agrawal R
- Ahern D
- Ahluwalia J
- Ahluwalia V
- Ahmad A
- Ahmad K
- Ahmed H
- Ahmed I
- Ahmed L
- Ahmed N
- Ahmed P
- Ainger E
- Ainsworth P
- Aishwarya G
- Ajibola-Taylor O
- Akhbari M
- Akhtar A
- Akhtar R
- Akpenyi O
- Al-Ausi M
- Al-Huneidi R
- Al-Khudairi R
- Al-Masri S
- Al-Mousawi A
- Al-Saadi N
- Alagappan A
- Alberts J
- Alfa-Wali M
- Ali A
- Ali B
- Ali I
- Ali M
- Ali Q
- Ali S
- Alturki N
- Alwandi A
- Amani L
- Amarnath T
- Amer M
- Amin H
- Amin MN
- Amoah R
- Amoah-Arko A
- Anandarajah C
- Ananthavarathan P
- Andah EJE
- Andrew K
- Andrews H
- Ang A
- Ang HL
- Ang JJ
- Ani C
- Anilkumar A
- Anto N
- Anwar S
- Apperley H
- Appleton S
- Aquilina T
- Archer M
- Arif T
- Arneill M
- Arnell S
- Arnold TJ
- Arshad A
- Arthur J
- Arulkumaran N
- Arya J
- Asad M
- Asemota N
- Ashaye T
- Ashdown T
- Ashour R
- Ashraf MR
- Ashwood J
- Asif U
- Atkin G
- Atkins B
- Attalla M
- Aubrey-Jones D
- Auckburally S
- Auld F
- Auluck I
- Azam S
- Aziz R
- Azizi A
- Azmi F
- Babatunde F
- Babu VS
- Bachi A
- Bagga R
- Bains H
- Bajwa DS
- Baker A
- Baker C
- Balai E
- Balian V
- Ball M
- Bamford M
- Bana R
- Banfield DA
- Bannard-Smith J
- Barai I
- Barclay J
- Barfi L
- Barker C
- Barker M
- Barmayehvar B
- Barnfield J
- Barnor-Ahiaku E
- Baron C
- Barr CJ
- Barraclough J
- Baryan HK
- Basra M
- Bassam N
- Bath MF
- Battle J
- Beasley W
- Beattie G
- Beattie S
- Beatty M
- Beghal G
- Begum F
- Behranwala K
- Belchos J
- Belgaid DR
- Belgaumkar A
- Bell S
- Ben-Gal O
- Benchetrit S
- Bennett M
- Benons N
- Bernal TL
- Bertelli M
- Berthaume-Hawkins SD
- Best R
- Betts A
- Bevan K
- Bews-Hair M
- Bhambra R
- Bhamra N
- Bhangu A
- Bhatte S
- Bhatti A
- Bhide I
- Bhome R
- Bhudia R
- Bhullar S
- Bienias A
- Billyard C
- Bird C
- Birkinshaw F
- Black J
- Blake E
- Blazeby JM
- Bleakley A
- Bloom I
- Bogle R
- Bolton W
- Borakati A
- Boraluwe-Rallage H
- Borg CM
- Botha A
- Boualbanat Y
- Boulton APR
- Bountra K
- Bowley D
- Boyd G
- Boyles L
- Bradley P
- Brannick S
- Brayley J
- Brecher J
- Breen H
- Bristow S
- Britton N
- Broad J
- Brobbey P
- Brock E
- Brooke M
- Brown A
- Brown B
- Brown F
- Brown FS
- Brown H
- Brown K
- Brown LR
- Brown M
- Brown N
- Brown R
- Brown S
- Brown T
- Bruce C
- Bruce P
- Budd E
- Bull K
- Burgin A
- Burke D
- Burke J
- Burnage S
- Burns N
- Burrows A
- Busti S
- Butler A
- Cabdi NMO
- Cadden F
- Cairns C
- Calabria C
- Calciu A
- Campbell A
- Campbell B
- Campbell G
- Campbell HS
- Cannon SP
- Cant M
- Capella S
- Cardus C
- Cardwell A
- Cargill Z
- Caroll P
- Carr G
- Carr R
- Carr W
- Carse S
- Carter N
- Carter R
- Castle A
- Cato L
- Cave D
- Cecil E
- Chadwick H
- Chadwick M
- Chan F
- Chan L
- Chan M
- Chan SSN
- Chan-lam N
- Chandler E
- Chandler S
- Chandramoorthy L
- Chandramoorthy S
- Chang A
- Chang LH
- Chang M
- Chappelow I
- Chapple K
- Charnley R
- Chaudhry A
- Chaudhry S
- Chauhan P
- Chavan A
- Chean CS
- Chen L
- Chen Y
- Chenciner L
- Cheng J
- Chesner R
- Cheung W
- Chin YR
- China Z
- Chitsabesan P
- Chohan K
- Choi JE
- Chong A
- Chong P
- Choo S
- Chopada A
- Chouari T
- Choudhary Y
- Choudhry M
- Choy CH
- Christie S
- Christopher E
- Chudek D
- Chui J
- Church M
- Church R
- Cipparrone M
- Claireaux HA
- Clark K
- Clarke B
- Clement KD
- Clements B
- Clements SE
- Cobley H
- Coe P
- Cohen J
- Coldicutt O
- Cole A
- Coleman M
- Collaborative S
- Collins J
- Collishaw A
- Common M
- Concannon K
- Conchie H
- Connelly A
- Connor M
- Cookson P
- Cope EA
- Cope T
- Copeland M
- Copley HC
- Coppel J
- Corbridge O
- Cotter M
- Courquin GR
- Court J
- Cox L
- Craig ARJ
- Craig N
- Crane E
- Cremen S
- Cresswell B
- Crewe A
- Crilly C
- Crilly L
- Croghan N
- Croitoru C
- Cromwell D
- Cronbach P
- Crook H
- Crozier L
- Cruddas L
- Cullum R
- Cumber E
- Cumming S
- Cummings D
- Cunliffe L
- Cunningham L
- Curtis A
- Curtis J
- D'Auria M
- D'Souza F
- Dada J
- Dalal F
- Dalrymple J
- Daly D
- Daniels J
- Das E
- Das K
- Datta U
- Davies E
- Davies G
- Davies J
- Davies P
- Davis H
- Davison C
- Dawe V
- Dawood S
- Day L
- De Cates C
- De Freitas M
- Dean S
- Debnath D
- Deekonda P
- Deepak S
- Deery L
- Delvi A
- Denley S
- Dennahy IS
- Dennis R
- Dennis Y
- Desai H
- Desai K
- Devalia S
- Dhaliwal R
- Dhillon AK
- Dhillon P
- Dhir T
- Dhuna S
- Diamond J
- Dib NP
- Dickson G
- Dietrich A
- Dindyal S
- Dixon O
- Do V
- Dobrzynska M
- Doherty C
- Donaldson G
- Donohoe C
- Doshi A
- Doull C
- Downes C
- Doyle C
- Drake TM
- Draper A
- Dudley B
- Duff F
- Duffield J
- Duggal A
- Dumann E
- Dunleavy K
- Dunne E
- Dupaguntla YS
- Durand C
- Durbacz M
- Durham-Hall A
- Durno J
- Durrigan T
- Duthie F
- Dutta A
- Dyal A
- Dynes K
- Easby S
- Easdon S
- Eastwood M
- Ebhogiaye O
- Eccles L
- Ecclestone T
- Eddama M
- Edgerton K
- Edozie F
- Edwin C
- Egan E
- Eiben I
- Eiben P
- Eilon T
- El Matary R
- El Tokhy O
- El-Sawy D
- El-Taji O
- Elangovan S
- Elbuzidi M
- Elder P
- Elias J
- Ellerby N
- Elliot J
- Elliott J
- Elsaddig M
- Elseedawy E
- Emberton J
- En BNW
- Engledow A
- English W
- Epanomeritakis E
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- Sheikh A
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- Sheikh Z
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- Shurovi BN
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- Skulsky S
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- STARSurg Collaborative Writing Committee, Data analysis, Steering committee, Advisory group, Regional leads, Collaborators and validators
- STARSurg Collaborative Writing Committee, Data analysis, Steering committee, Advisory group, Regional leads, Collaborators and validators, Nepogodiev, D
- Stechman M
- Stewart D
- Stewart E
- Stewart H
- Stewart R
- Stickler E
- Stoddart MT
- Stokes E
- Stott G
- Strang S
- Stringer H
- Stringfellow TD
- Stubbing-Moore A
- Sturrock S
- Subar D
- Subratty SM
- Sukirthan N
- Sukumar S
- Sulaiman SK
- Sultan S
- Sun L
- Sundaram K
- Suresh R
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- Tilliridou V
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- Torrance HD
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- Trevett J
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- Tsang JCH
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- Turner J
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- Whitcroft I
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- White P
- Whitham R
- Whyte M
- Widdison A
- Wiffen L
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- Xu Y
- Yahaya AA
- Yalamarthi S
- Yang DD
- Yang N
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- Yarham E
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- Zaat S
- Zanichelli D
- Zaver V
- Zeng R
- Zhang Y
- Zheleniakova T
- Zhu Y
- Zornoza A
- Zubikarai G
- Zulkifli A
- Zuzarte L
- Publication venue
- 'Wiley'
- Publication date
- 18/05/2018
- Field of study
Background: Acute illness, existing co-morbidities and surgical stress response can all contribute to postoperative acute kidney injury (AKI) in patients undergoing major gastrointestinal surgery. The aim of this study was prospectively to develop a pragmatic prognostic model to stratify patients according to risk of developing AKI after major gastrointestinal surgery. Methods: This prospective multicentre cohort study included consecutive adults undergoing elective or emergency gastrointestinal resection, liver resection or stoma reversal in 2-week blocks over a continuous 3-month period. The primary outcome was the rate of AKI within 7 days of surgery. Bootstrap stability was used to select clinically plausible risk factors into the model. Internal model validation was carried out by bootstrap validation. Results: A total of 4544 patients were included across 173 centres in the UK and Ireland. The overall rate of AKI was 14·2 per cent (646 of 4544) and the 30-day mortality rate was 1·8 per cent (84 of 4544). Stage 1 AKI was significantly associated with 30-day mortality (unadjusted odds ratio 7·61, 95 per cent c.i. 4·49 to 12·90; P < 0·001), with increasing odds of death with each AKI stage. Six variables were selected for inclusion in the prognostic model: age, sex, ASA grade, preoperative estimated glomerular filtration rate, planned open surgery and preoperative use of either an angiotensin-converting enzyme inhibitor or an angiotensin receptor blocker. Internal validation demonstrated good model discrimination (c-statistic 0·65). Discussion: Following major gastrointestinal surgery, AKI occurred in one in seven patients. This preoperative prognostic model identified patients at high risk of postoperative AKI. Validation in an independent data set is required to ensure generalizability
Cancer Biomarker Discovery: The Entropic Hallmark
- Author
- A Alcaraz
- A Arabzadeh
- A Bagri
- A Balbin
- A Bantis
- A Ben-Naim
- A Bolander
- A Buhmeida
- A Burykin
- A Chetcuti
- A de Baey
- A Efeyan
- A Eroglu
- A Fabarius
- A Forget
- A Fujita
- A Geirsson
- A Geirsson
- A Geirsson
- A Guffanti
- A Hugel
- A Inoue
- A Isidoro
- A Jang
- A Kollara
- A Kuzmanov
- A Lundqvist
- A Maria McCrohan
- A Marreiros
- A Mendes
- A Mitra
- A Nassar
- A Petitjean
- A Petitjean
- A Pinzon-Charry
- A Richmond
- A Roesch
- A Santinelli
- A Schmidt
- A Shapiro
- A Sreekumar
- A Takeno
- A Urbanucci
- A Winter
- A Yemelyanov
- AA Babiker
- AA Babiker
- AA Tarhini
- AC Dudley
- AD Judge
- AD Ortega
- AG Puebla-Mora
- AH Fox
- AH Fox
- AI Riker
- AJ Liu
- AK Meeker
- AK Panigrahi
- AK Witkiewicz
- AL Cheung
- AL Fachin
- AL Gartel
- AL Okorokov
- AM Craig
- AM Lena
- AM Levin
- AM Tokes
- AP South
- AS Payne
- AS Verkman
- AS Verkman
- AS Verkman
- AS Wierzbicki
- AV Skamrov
- AW Maniccia
- B Cinar
- B Gao
- B Ouyang
- B Ren
- B Ryu
- B Tycko
- B Vukovic
- B Wu
- B Wu
- BD Dimitrov
- BF Gilmore
- BF Goncalves
- BF Skinnider
- BK Zehentner
- BL Adamsen
- BL de Groot
- BR Johnson
- BR Middleman
- BS Strauss
- C Adami
- C Bastide
- C Cao
- C Cybulski
- C Haqq
- C Hayashi
- C Hornig
- C Ivorra
- C Kumar-Sinha
- C Langner
- C Magi-Galluzzi
- C Magi-Galluzzi
- C Muller-Tidow
- C Nessler-Menardi
- C Nunez
- C Pequeux
- C Rajesh
- C Xu
- C Yuli
- CD Sturgis
- CD Truong
- CG Pham
- CG Rogers
- CG Rogers
- CJ Hutchison
- CJ Pronk
- CK Mavis
- CL Stewart
- CL Wu
- CM Caves
- CM Caves
- CM Clemson
- CM Perou
- CP Gray
- CP Gray
- CP Gray
- CR Mangahas
- CS Bond
- D Acehan
- D Bonn
- D Denhardt
- D Fu
- D Gilley
- D Gisselsson
- D Hanahan
- D Javelaud
- D Kroepfl
- D Lodygin
- D Maraldo
- D Ouazia
- D Scadden
- D Wang
- D Wang
- D Wang
- D Weckermann
- D Wodarz
- DA Shoskes
- DA Tennant
- DE Hansel
- DF Gleason
- DG Albertson
- DG Tenen
- DH Palmer
- DJ Darley
- DJ Grignon
- DJ Smit
- DJ Son
- DJ Wong
- DJC MacKay
- DK Koynova
- DK Lee
- DM Kube
- DM Peehl
- DR Wonsey
- DS Perez
- DV Makarov
- DV Makarov
- E Beitz
- E Beitz
- E Cabuy
- E Fagiani
- E Flannery
- E Geissinger
- E Kikuchi
- E Kruse
- E Sbisa
- E Sprecher
- E Tajkhorshid
- EA Ostrander
- EH Feng
- EH Feng
- EM Rosen
- EM Rosen
- EM Schaeffer
- EO Kehinde
- ET Canepa
- EV Vykhovanets
- EY Lin
- EY Tan
- F Bai
- F Bonetto
- F Boralevi
- F Buback
- F Colotta
- F Langer
- F Saad
- F Tas
- F Yang
- FS Krause
- G Benga
- G Bhanot
- G Blandino
- G Buchanan
- G Kaic
- G Kristiansen
- G Kristiansen
- G Kroemer
- G Murugaiyan
- G Petrovics
- G Pirtskhalaishvili
- G Russo
- G Sardana
- G Stirling
- G Tscheudschilsuren
- G Untergasser
- G Venkataraman
- G von Figura
- GA Jarvis
- GE Crooks
- GF Azzone
- GF Ding
- GL Shen-Ong
- GP Bienert
- GQ Daley
- GR Ribeiro
- GS Palapattu
- GV Glinsky
- GV Glinsky
- H Chang-zheng
- H Chen
- H Dzojic
- H Gronberg
- H Haghnegahdar
- H Harant
- H Harlin
- H Kida
- H Li
- H Liu
- H Miyake
- H Nemoto
- H Ostrer
- H Pilch
- H Rangaswami
- H Rangaswami
- H Rangaswami
- H Ren
- H Roca
- H Roca
- H Samaratunga
- H Savli
- H Schlechte
- H Schoder
- H Sheng
- H Sunwoo
- H Then
- H Wang
- H Wang
- HC Lee
- HG Thomas
- HJ Worman
- HL Winfield
- HS Leff
- HT Quan
- HY Vu
- HZ Zhang
- I Agalliu
- I Bae
- I Ben-Porath
- I Grosse
- I Haritoglou
- I Leav
- I Marinescu
- I Moll
- I Sakai
- IE Wertz
- IK Lim
- IL Tourkova
- IM Bachmann
- IM Shih
- IW Reiniger
- IY Dodin
- J Bartkova
- J Edwards
- J Fellenberg
- J Gille
- J Graells
- J Jaeger
- J Johnson
- J Lammerding
- J Laoukili
- J Lapointe
- J Linden
- J Luo
- J Luo
- J Luo
- J Mandelin
- J Melamed
- J Moser
- J Rangel
- J Rapley
- J Reimand
- J Ruiz-Ederra
- J Schmitz
- J Schultz
- J Soikkeli
- J Stewart
- J Suh
- J Walter-Yohrling
- J Wang
- J Wang
- J Weiske
- J Xu
- J Yang
- J Yang
- J Zheng
- JA Camargo
- JA Douglas
- JA Hackett
- JA Karam
- JA McGrath
- JA McGrath
- JA McGrath
- JA McGrath
- JA Mobley
- JA Pettus
- JB Roche
- JC Cheville
- JD French
- JD Licchesi
- JD Owen
- JE Lai-Cheong
- JE Sleeman
- JE Wilusz
- JG Wen
- JH Lee
- JH Luo
- JJ Brey
- JJ Park
- JJ Raffoul
- JJ Tseng
- JJ Van den Oord
- JK Wahl 3rd
- JL Broers
- JL Herrmann
- JL Phillips
- JM Brandner
- JM Bridger
- JM Cummins
- JM Gonzalez
- JM Lizcano
- JM Muller
- JM Muller
- JM Parrondo
- JM Saffin
- JN Hutchinson
- JN Mubiru
- JN Mubiru
- JN Mubiru
- JP Arbitrario
- JP Clark
- JP Ehlers
- JP Fruehauf
- JP Struewing
- JR Cansino Alcaide
- JR McMillan
- JS Butler
- JS Butler
- JS Fang
- JS Hub
- JS Lee
- JS Mattick
- JS Mattick
- JS Mattick
- JT Bishoff
- JT Chang
- JW Denham
- K Armstrong
- K Fujita
- K Ishibashi
- K Ishitani
- K Kami
- K Kasuno
- K Kumagai
- K Mizutani
- K Namiki
- K Ruan
- K Ruan
- K Shilo
- K Sircar
- K Suzuki
- K Swisshelm
- K Takahara
- K Tani
- K Tokunaga
- K Tomkova
- K Trpkov
- K Yamada
- KA Tasken
- KA Zuhlke
- KH Hoffmann
- KH Tsui
- KL Nastiuk
- KL Simpson
- KL van Golen
- KN Ekdahl
- KP Porkka
- KR Ghani
- KV Prasanth
- L Capparuccia
- L Carlsson
- L Cheng
- L de Meis
- L Galluzzi
- L Kneisel
- L Lessard
- L Li
- L Moro
- L Moro
- L O'Regan
- L Packer
- L Pasini
- L True
- L Verdoucq
- L Verschooten
- L Xu
- L Zheng
- LA Diaz-Martinez
- LB Mora
- LE Clarke
- LE Finlan
- LF Brown
- LF Zerbini
- LL Chen
- LL Smith
- LL Smith
- LM Godsel
- LP Kunju
- M Aalamian-Matheis
- M Aghaei
- M Bakhanashvili
- M Boury-Jamot
- M Boury-Jamot
- M Buxade
- M Chellaiah
- M Cimitan
- M Craig
- M Dumas
- M Dundr
- M Esteller
- M Estler
- M Fabbri
- M Fukunaga-Kalabis
- M Fukunaga-Kalabis
- M Furuno
- M Gilbert
- M Hara-Chikuma
- M Hara-Chikuma
- M Hara-Chikuma
- M Hara-Chikuma
- M Hatzfeld
- M Hatzfeld
- M Heenen
- M Ismail
- M Karaivanov
- M Kashani-Sabet
- M Kato
- M Katoh
- M Kinoshita
- M Korabiowska
- M Kulesz-Martin
- M Lei
- M Lisovsky
- M Marko
- M Mellado
- M Mishima
- M Mockenhaupt
- M Moghaddami
- M Moghaddami
- M Nessling
- M Olsson
- M Onaitis
- M Parisi
- M Schostak
- M Tischkowitz
- M Traka
- M Tribus
- M Varma
- M Venoux
- M Watanabe
- M Yang
- M Yasui
- M Zhou
- M Zhou
- M Zhou
- MA Castro
- MA Chekmareva
- MA Chellaiah
- MA Ficazzola
- MA Halsey
- MA Roder
- MA Rubin
- MA Rubin
- MA Rubin
- MB Martens
- MB Rettig
- MC Caino
- MC Schumacher
- MD Desrosiers
- MD Duff
- MD Lloyd
- ME Blank
- ME Grossmann
- ME Grossmann
- ME Laski
- ME Morrison
- MF Fraga
- MH Vaarala
- MK Thomsen
- MK Thomsen
- MM Petrovic
- MM Rashid
- MR Rosner
- MS O'Connor
- MS Tretiakova
- MT Kalcioglu
- MT Ling
- MT Martin
- MT Sung
- MV Blagosklonny
- MY Lee
- N Bahamontes-Rosa
- N Donin
- N Konishi
- N Lapteva
- N Maeda
- N Nadiminty
- N Rabiau
- N Singh
- NG Hussein
- NI Andreyev
- NJ Fisch
- NV Whittock
- NV Whittock
- O Bettendorf
- O Canbolat
- O Itzhaki
- O Kwon
- OA Rosso
- OW Rokhlin
- P Agre
- P Agre
- P Agre
- P Agre
- P Allavena
- P Berthon
- P Boukamp
- P Cossu-Rocca
- P Dhawan
- P Dhawan
- P Duesberg
- P Duesberg
- P Duesberg
- P Hainaut
- P Ji
- P Karakiewicz
- P Koivisto
- P Roy-Burman
- P Rustin
- P Sini
- P Slijepcevic
- P Sotomayor
- P Sotomayor
- P Steigemann
- P Zhang
- Pablo Moscato
- PD Walden
- PG Gallagher
- PH Gumerlock
- PH Konig
- PI Nedvetsky
- PJ Gray Jr
- PJ Zielie
- PL Chang
- PM Lacal
- PM Lacal
- PM Mordaka
- PM Steijlen
- PT Landsberg
- PT Went
- PU Malmstrom
- PW Kuchel
- PW Lamberti
- Q Lu
- Q Zhou
- R Agarwal
- R Berretta
- R Birnie
- R Bordoni
- R Casalini
- R Das
- R Dobson
- R Halaban
- R Horuk
- R Klimek
- R Klimek
- R Kuefer
- R Lin
- R Mazzucchelli
- R Mukherjee
- R Radosavljevic
- R Rai
- R Sougrat
- RA Craven
- RA Hegele
- RA Sturm
- RA Weinberg
- RC Lee
- RD Ballal
- RD Loberg
- RD Loberg
- RD Loberg
- RD Loberg
- Regina Berretta
- RG Uzzo
- RJ Jin
- RJ Urban
- RJ Webster
- RL Boguslavsky
- RL Shattuck
- RMH Lopez-Ruiz
- RP Ciavarra
- RP Ciavarra
- RP Singh
- RS Weinstein
- RT Nitta
- RW DeVere White
- S Ashida
- S Brychtova
- S Cardinale
- S Das
- S Das
- S Dettwiler
- S Di Cesare
- S Doratiotto
- S Ersoy-Evans
- S Fan
- S Gagos
- S Ghosh
- S Gunia
- S Hanada
- S Hauptmann
- S Hiratsuka
- S Horsburgh
- S Huerta-Yepez
- S Jhavar
- S Jhavar
- S Kuwahara
- S Kyle
- S Landreville
- S Makovets
- S Morohashi
- S Olgac
- S Philip
- S Philip
- S Prislei
- S Rankin
- S Rankin
- S Satoh
- S Sur
- S Takahashi
- S Takahashi
- S Tancharoen
- S Verdier-Sevrain
- S Yeh
- S Zha
- S Zha
- S Zha
- SA Narod
- SH Lin
- SJ Yeung
- SK Kang
- SL Kong
- SL Zheng
- SM Edwards
- SM Ho
- SM Saparov
- SQ Xie
- SR Alonso
- SS Kadkol
- SV Setzer
- T Dalmay
- T Drewa
- T Hoevel
- T Ishiyama
- T Jamaspishvili
- T Kusumi
- T Litman
- T Ma
- T Mirtti
- T Murakami
- T Oyama
- T Schlomm
- T Schlomm
- T Sheridan
- T Shimizu
- T Sobolik-Delmaire
- T Sun
- T Takahashi
- T Takeda
- T Thornburg
- T Watanabe
- T Yu
- TB Lewis
- TD Prickett
- TH Ecke
- TJ McDonnell
- TJ Park
- TL Schmit
- TL Schmit
- TO Nielsen
- TR Mercer
- U Brinck
- U Graeven
- U Gruneberg
- UV Wesley
- V Ambros
- V Barak
- V Fradet
- V Molinie
- V Molinie
- V Molinie
- V Molinie
- V Molinie
- V Molinie
- V Pekovic
- V Rajaram
- V Samanna
- V Wessagowit
- V Winnepenninckx
- VD Acevedo
- VK Vanguri
- VL Verstraeten
- W Chen
- W Cosme-Blanco
- W Gade
- W Ritchie
- W Spirkl
- W Tettelbach
- W Wang
- W Weichert
- W Weichert
- W Weichert
- WB Isaacs
- WD Dunsmuir
- WE Naugler
- William C. S. Cho
- WK Kaufmann
- WK Lee
- X Chen
- X Cheng
- X Dong
- X Dong
- X Huang
- X Li
- X Liu
- X Liu
- X Meng
- X Ouyang
- X Tang
- X Wu
- X Zhang
- XJ Yang
- XQ Wang
- Y Bu
- Y Cai
- Y Deng
- Y Ito
- Y Katagiri
- Y Kozuka
- Y Lai
- Y Liu
- Y Lu
- Y Lu
- Y Ohyama
- Y Shav-Tal
- Y Sugiyama
- Y Sun
- Y Wang
- Y Wang
- Y Wu
- Y Yamamoto
- Y Yang
- Y Zhou
- YB Lim
- YC Chao
- YJ Ko
- YL Liu
- YN Liu
- YT Sasaki
- YT Sasaki
- YU Katagiri
- Z Jiang
- Z Jiang
- Z Jiang
- Z Jiang
- Z Jiang
- Z Rudzki
- ZA Dotan
- ZR Yurkovetsky
- Publication venue
- Public Library of Science
- Publication date
- 01/01/2010
- Field of study
Background: It is a commonly accepted belief that cancer cells modify their transcriptional state during the progression of the disease. We propose that the progression of cancer cells towards malignant phenotypes can be efficiently tracked using high-throughput technologies that follow the gradual changes observed in the gene expression profiles by employing Shannon's mathematical theory of communication. Methods based on Information Theory can then quantify the divergence of cancer cells' transcriptional profiles from those of normally appearing cells of the originating tissues. The relevance of the proposed methods can be evaluated using microarray datasets available in the public domain but the method is in principle applicable to other high-throughput methods. Methodology/Principal Findings: Using melanoma and prostate cancer datasets we illustrate how it is possible to employ Shannon Entropy and the Jensen-Shannon divergence to trace the transcriptional changes progression of the disease. We establish how the variations of these two measures correlate with established biomarkers of cancer progression. The Information Theory measures allow us to identify novel biomarkers for both progressive and relatively more sudden transcriptional changes leading to malignant phenotypes. At the same time, the methodology was able to validate a large number of genes and processes that seem to be implicated in the progression of melanoma and prostate cancer. Conclusions/Significance: We thus present a quantitative guiding rule, a new unifying hallmark of cancer: the cancer cell's transcriptome changes lead to measurable observed transitions of Normalized Shannon Entropy values (as measured by high-throughput technologies). At the same time, tumor cells increment their divergence from the normal tissue profile increasing their disorder via creation of states that we might not directly measure. This unifying hallmark allows, via the the Jensen-Shannon divergence, to identify the arrow of time of the processes from the gene expression profiles, and helps to map the phenotypical and molecular hallmarks of specific cancer subtypes. The deep mathematical basis of the approach allows us to suggest that this principle is, hopefully, of general applicability for other diseases
The impact of viral mutations on recognition by SARS-CoV-2 specific TÂ cells.
- Author
- Aanensen DM
- Abudahab K
- Adams A
- Adams H
- Adeniji K
- Afifi S
- Aggarwal D
- Agranoff D
- Agwuh K
- Ahmad SSY
- Ahmed KA
- Aigrain L
- Ail D
- Alcolea-Medina A
- Aldera EL
- Alegria A
- Alex B
- Alikhan N-F
- Allara E
- Allen S
- Amato R
- Andrikopoulos P
- Angus B
- Angyal A
- Annett T
- Aplin S
- Ariani CV
- Armstrong JA
- Asad H
- Ash A
- Ashfield P
- Ashford F
- Ashish A
- Ashworth M
- Asiimwe IG
- Atkinson D
- Atkinson L
- Attwood SW
- Auckland C
- Aydin A
- Bach B
- Baillie JK
- Baker DJ
- Baker P
- Bakshi S
- Balcazar CE
- Ball J
- Barclay WS
- Bari S
- Barlow G
- Barlow SL
- Barnass S
- Barrett JC
- Barrett N
- Barrow M
- Barton E
- Bashton M
- Bassett AR
- Bassford C
- Basude S
- Batra R
- Baxter C
- Baxter D
- Bayzid N
- Beadsworth M
- Beaver C
- Beckett AH
- Beckwith SM
- Bedford L
- Beer R
- Beggs A
- Bellis KL
- Bernatoniene J
- Berridge J
- Berry C
- Berry L
- Bertolusso B
- Best A
- Best N
- Betteridge E
- Bibby D
- Bicknell K
- Binns D
- Birchley A
- Bird PW
- Bishop C
- Blacow R
- Blakey V
- Blane B
- Bogaert D
- Bolt F
- Bonfield J
- Bonner S
- Bonsall D
- Booth L
- Boswell T
- Bosworth A
- Bothma P
- Bourgeois Y
- Boyd O
- Bradley DT
- Breen C
- Brennan B
- Bresner C
- Breuer J
- Bridgett S
- Brittain-Long R
- Bronner IF
- Brooks E
- Broos A
- Brown JR
- Brown R
- Bucca G
- Buchan SL
- Buck D
- Bull M
- Bullock K
- Bulteel N
- Burden T
- Burns PJ
- Burtenshaw A
- Burton-Fanning S
- Byaruhanga T
- Byott M
- Campbell S
- Carabelli AM
- Cargill JS
- Carlile M
- Carlucci N
- Carracedo AD
- Carson G
- Caruth V
- Carvalho SF
- Casey A
- Cass E
- Castigador A
- Catalan J
- Catterall BWA
- Chadwick D
- Chadwick D
- Chalker V
- Chaloner NJ
- Chambler D
- Chand M
- Chand M
- Chappell JG
- Charalampous T
- Chatterton W
- Chaudhry Y
- Chechi K
- Chee N
- Child J
- Chukkambotla S
- Churcher CM
- Clark G
- Clark JJ
- Clark T
- Clarke EA
- Clarke P
- Clohisey S
- Cogger BJ
- Cole K
- Cole S
- Cole S
- Collini P
- Collins J
- Colquhoun R
- Connor M
- Connor TR
- Cook KF
- Cooke GS
- Coombes J
- Cooper L
- Corden S
- Cormie C
- Correia GDS
- Cortes N
- Cosgrove C
- Cotic M
- Cotton S
- Cottrell S
- Coupland L
- Cox A
- Cox H
- Cox M
- Craine N
- Crawford L
- Cross A
- Crown MR
- Crudgington D
- Cumley N
- Cupitt J
- Curran MD
- Curran T
- Cutino-Moguel M-T
- da Silva Filipe A
- da Silva Filipe A
- Dabrera G
- Dalton J
- Darby AC
- Dark P
- Davidson RK
- Davies A
- Davies RM
- Davis C
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- Dawson C
- de Angelis D
- De Lacy E
- de Oliveira Martins L
- de Silva TI
- Debebe J
- Denton-Smith R
- Dervisevic S
- Dervisevic S
- Dewar R
- Dey J
- Dias J
- Dincarslan O
- Dobie D
- Docherty AB
- Donegan C
- Dong D
- Dong T
- Donnison P
- Donohue C
- Dorman MJ
- Douthwaite S
- Downing F
- Driscoll M
- Drummond A
- du Plessis L
- Duckworth N
- Dumas M-E
- Dunachie S
- Dunn C
- Dunning J
- DuRand I
- Durham J
- Dushianthan A
- Dyer P
- Dyer T
- Eastick K
- Easton LJ
- Eccles R
- Edgeworth J
- Edwards S
- El Bouzidi K
- Eldirdiri S
- Ellaby N
- Elliott A
- Elliott S
- Eltringham G
- Ensell L
- Erkiert MJ
- Essex S
- Evans A
- Evans C
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- Evans JM
- Everson W
- Eziefula C
- Fairley DJ
- Fallon K
- Fanaie A
- Farr BW
- Fearn C
- Fegan C
- Feltwell T
- Ferguson L
- Fina L
- Finch L
- Finn A
- Fisher LWS
- Flaherty L
- Flaviani F
- Fleming VM
- Fletcher T
- Forrest S
- Foster T
- Foster-Nyarko E
- Foulkes BH
- Foulser L
- Fragakis M
- Frampton D
- Francois S
- Fraser C
- Freeman TM
- Fryer H
- Fuchs M
- Fuller W
- Fullerton D
- Gajee K
- Galai K
- Gallagher A
- Gallagher E
- Gallagher MD
- Gallis M
- Gamble C
- Garcia-Dorival I
- Garg A
- Garg S
- Garg S
- Gaskin A
- Gatica-Wilcox B
- Geidelberg L
- Gemmell M
- Georgana I
- George RP
- Gifford L
- Gilbert L
- Girgis ST
- Girvan M
- Gkrania-Klotsas E
- Glaysher S
- Godden J
- Goldsmith A
- Goldstein EJ
- Golubchik T
- Gomes AN
- Gonçalves S
- Goodfellow IG
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- Publication venue
- iScience
- Publication date
- 01/01/2021
- Field of study
We identify amino acid variants within dominant SARS-CoV-2 TÂ cell epitopes by interrogating global sequence data. Several variants within nucleocapsid and ORF3a epitopes have arisen independently in multiple lineages and result in loss of recognition by epitope-specific TÂ cells assessed by IFN-Îł and cytotoxic killing assays. Complete loss of TÂ cell responsiveness was seen due to Q213K in the Aâ01:01-restricted CD8+ ORF3a epitope FTSDYYQLY207-215; due to P13L, P13S, and P13T in the Bâ27:05-restricted CD8+ nucleocapsid epitope QRNAPRITF9-17; and due to T362I and P365S in the Aâ03:01/Aâ11:01-restricted CD8+ nucleocapsid epitope KTFPPTEPK361-369. CD8+ TÂ cell lines unable to recognize variant epitopes have diverse TÂ cell receptor repertoires. These data demonstrate the potential for TÂ cell evasion and highlight the need for ongoing surveillance for variants capable of escaping TÂ cell as well as humoral immunity.This work is supported by the UK Medical Research Council (MRC); Chinese Academy of Medical Sciences(CAMS) Innovation Fund for Medical Sciences (CIFMS), China; National Institute for Health Research (NIHR)Oxford Biomedical Research Centre, and UK Researchand Innovation (UKRI)/NIHR through the UK Coro-navirus Immunology Consortium (UK-CIC). Sequencing of SARS-CoV-2 samples and collation of data wasundertaken by the COG-UK CONSORTIUM. COG-UK is supported by funding from the Medical ResearchCouncil (MRC) part of UK Research & Innovation (UKRI),the National Institute of Health Research (NIHR),and Genome Research Limited, operating as the Wellcome Sanger Institute. T.I.d.S. is supported by a Well-come Trust Intermediate Clinical Fellowship (110058/Z/15/Z). L.T. is supported by the Wellcome Trust(grant number 205228/Z/16/Z) and by theUniversity of Liverpool Centre for Excellence in Infectious DiseaseResearch (CEIDR). S.D. is funded by an NIHR GlobalResearch Professorship (NIHR300791). L.T. and S.C.M.are also supported by the U.S. Food and Drug Administration Medical Countermeasures Initiative contract75F40120C00085 and the National Institute for Health Research Health Protection Research Unit (HPRU) inEmerging and Zoonotic Infections (NIHR200907) at University of Liverpool inpartnership with Public HealthEngland (PHE), in collaboration with Liverpool School of Tropical Medicine and the University of Oxford.L.T. is based at the University of Liverpool. M.D.P. is funded by the NIHR Sheffield Biomedical ResearchCentre (BRC â IS-BRC-1215-20017). ISARIC4C is supported by the MRC (grant no MC_PC_19059). J.C.K.is a Wellcome Investigator (WT204969/Z/16/Z) and supported by NIHR Oxford Biomedical Research Centreand CIFMS. The views expressed are those of the authors and not necessarily those of the NIHR or MRC
Corrigendum to "Search for flavour-changing neutral-current couplings between the top quark and the photon with the ATLAS detector at âs=13 TeV" (Physics Letters B, 842 (2023), 137379)
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- Chen A
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- Chen B
- Chen C
- Chen H
- Chen H
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- Chen J
- Chen S
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- Chen X
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- Cheng Cl
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- Cheplakov A
- Cheremushkina E
- Cherepanova E
- Cherkaoui El Moursli R
- Cheu E
- Cheung K
- Chevalier L
- Chiarella V
- Chiarelli G
- Chiodini G
- Chisholm As
- Chitan A
- Chiu Yh
- Chizhov Mv
- Choi K
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- Chou Y
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- Chu Kl
- Chu Mc
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- Chwastowski Jj
- Cieri D
- Ciesla Km
- Cindro V
- Ciocio A
- Cirotto F
- Citron Zh
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- Clawson Se
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- Coadou Y
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- Coelho Lopes De Sa R
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- Corriveau F
- Cortes-Gonzalez A
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- CreÌpeÌ-Renaudin S
- Cristinziani M
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- Croft V
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- D'Auria S
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- D'Uffizi M
- Da Cunha Sargedas De Sousa Mj
- Da Fonseca Pinto Jv
- Da Via C
- Dabrowski W
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- Dam M
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- Di Donato C
- Di Girolamo A
- Di Gregorio G
- Di Luca A
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- Zenger Dt
- Zenin O
- Zenz S
- Zerradi S
- Zerwas D
- Zhang B
- Zhang Df
- Zhang G
- Zhang J
- Zhang K
- Zhang L
- Zhang R
- Zhang S
- Zhang T
- Zhang X
- Zhang X
- Zhang Z
- Zhao H
- Zhao P
- Zhao T
- Zhao Y
- Zhao Z
- Zhemchugov A
- Zheng Z
- Zhong D
- Zhou B
- Zhou C
- Zhou H
- Zhou N
- Zhou Y
- Zhu C
- Zhu Cg
- Zhu H
- Zhu Hl
- Zhu J
- Zhu Y
- Zhuang X
- Zhukov K
- Zhulanov V
- Zimine Ni
- Zinsser J
- Ziolkowski M
- Zoccoli A
- Zoch K
- Zorbas Tg
- Zormpa O
- Zou W
- Zwalinski L
- ZÌenisÌ T
- ZÌivkovicÌ L
- Publication venue
- ELSEVIER
- Publication date
- 01/01/2023
- Field of study
Measurements of differential cross-sections in top-quark pair events with a high transverse momentum top quark and limits on beyond the Standard Model contributions to top-quark pair production with the ATLAS detector at âs = 13 TeV
- Author
- Aad G
- Abbott B
- Abbott DC
- Abeling K
- Abhayasinghe DK
- Abidi SH
- Aboulhorma A
- Abramowicz H
- Abreu H
- Abud AA
- Abulaiti Y
- Acharya BS
- Achkar B
- Adam L
- Adamczyk L
- Adamek L
- Addepalli SV
- Adelman J
- Adiguzel A
- Adorni S
- Adye T
- Affolder AA
- Afik Y
- Agaras MN
- Agarwala J
- Aggarwal A
- Agheorghiesei C
- Aguilar-Saavedra JA
- Agullo PM
- Ahmad A
- Ahmadov F
- Ahmed WS
- Ai X
- Aielli G
- Aizenberg I
- Akbiyik M
- Akesson TPA
- Akimov AV
- Al Khoury K
- Alberghi GL
- Albert J
- Albicocco P
- Alderweireldt S
- Aleksa M
- Aleksandrov IN
- Alexa C
- Alexopoulos T
- Alfonsi A
- Alfonsi F
- Alhroob M
- Ali B
- Ali S
- Aliev M
- Alimonti G
- Allaire C
- Allbrooke BMM
- Allport PP
- Aloisio A
- Alonso F
- Alpigiani C
- Alves FLL
- Alviggi MG
- Ambler A
- Ambroz L
- Amelung C
- Amidei D
- Amoroso S
- Amos KR
- Amrouche CS
- Ananiev V
- Anastopoulos C
- Andana RYG
- Andari N
- Andeen T
- Anders JK
- Andrean SY
- Andreazza A
- Angelidakis S
- Angerami A
- Anisenkov AV
- Annovi A
- Antel C
- Anthony MT
- Antipov E
- Antonelli M
- Antrim DJA
- Anulli F
- Aoki M
- Aparo MA
- Appelt C
- Aranda CP
- Aranzabal N
- Araya ST
- Arcangeletti C
- Arce ATH
- Arena E
- Arguin JF
- Argyropoulos S
- Arling JH
- Armbruster AJ
- Arnaez O
- Arnold H
- Artoni G
- Asada H
- Asai K
- Asai S
- Asbah NA
- Asimakopoulou EM
- Assahsah J
- Assamagan K
- Astalos R
- Astigarraga MEP
- Atkin RJ
- Atkinson M
- Atlay NB
- Atmani H
- Atmasiddha PA
- Augsten K
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- Austrup VA
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- Azuelos G
- Babal D
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- Bahilo JJL
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- Borgna LS
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- Bosca SR
- Boscherini D
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- Carter JWS
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- Casadei D
- Casado MP
- Casha AF
- Castiglia EG
- Castillo FL
- Castillo LRF
- Castro NF
- Catinaccio A
- Catmore JR
- Cavaliere V
- Cavalli N
- Cavasinni V
- Celebi E
- Celli F
- Centonze MS
- Cerny K
- Cerqueira AS
- Cerri A
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- Cerutti F
- Cervelli A
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- Chadi Z
- Chakraborty D
- Chala M
- Chan J
- Chan WS
- Chan WY
- Chapman JD
- Chargeishvili B
- Charlton DG
- Charman TP
- Chatterjee M
- Chekanov S
- Chekulaev SV
- Chelkov GA
- Chen A
- Chen B
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- Cheng CL
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- Cheplakov A
- Cheremushkina E
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- Cheu E
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- Chevalier L
- Chiarella V
- Chiarelli G
- Chiodini G
- Chisholm AS
- Chitan A
- Chiu YH
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- Chowdhury T
- Christopher LD
- Chu MC
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- Chwastowski JJ
- Cieri D
- Ciesla KM
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- Cooper-Sarkar AM
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- Costa MJ
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- da Costa JBG
- Da Via C
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- Dado T
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- Dai T
- Dallapiccola C
- Dam M
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- Daneri MF
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- Dao V
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- Davis DR
- Davis-Purcell B
- Dawson I
- de Andrade LM
- De Araujo MV
- De Asmundis R
- De Beurs M
- De Carvalho ALM
- De Castro S
- De Groot N
- de Jong P
- De K
- de la Hoz SG
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- De Lima RT
- De Maria A
- De Regie JBD
- de Renstrom PAB
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- De Salvo A
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- De Sousa MJDS
- De Souza EEP
- Dedovich DV
- Degens J
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- Delitzsch CM
- Dell'Acqua A
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- Della Pietra M
- Della Volpe D
- Delmastro M
- Delsart PA
- Demers S
- Demichev M
- Denisov SP
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- Derue F
- Dervan P
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- Deutsch C
- Deviveiros PO
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- Di Girolamo A
- Di Gregorio G
- Di Luca A
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- Didenko M
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- Dominguez LP
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- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 01/01/2022
- Field of study
Cross-section measurements of top-quark pair production where the hadronically decaying top quark has transverse momentum greater than 355 GeV and the other top quark decays into âÎœb are presented using 139 fbâ1 of data collected by the ATLAS experiment during proton-proton collisions at the LHC. The fiducial cross-section at s = 13 TeV is measured to be Ï = 1.267 ± 0.005 ± 0.053 pb, where the uncertainties reflect the limited number of data events and the systematic uncertainties, giving a total uncertainty of 4.2%. The cross-section is measured differentially as a function of variables characterising the ttÂŻ system and additional radiation in the events. The results are compared with various Monte Carlo generators, including comparisons where the generators are reweighted to match a parton-level calculation at next-to-next-to-leading order. The reweighting improves the agreement between data and theory. The measured distribution of the top-quark transverse momentum is used to search for new physics in the context of the effective field theory framework. No significant deviation from the Standard Model is observed and limits are set on the Wilson coefficients of the dimension-six operators OtG and Otq(8), where the limits on the latter are the most stringent to date. [Figure not available: see fulltext.]
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