153 research outputs found
Cloaked Facebook pages: Exploring fake Islamist propaganda in social media
- Author
- Publication venue
- 'SAGE Publications'
- Publication date
- 19/05/2017
- Field of study
This research analyses cloaked Facebook pages that are created to spread political propaganda by cloaking a user profile and imitating the identity of a political opponent in order to spark hateful and aggressive reactions. This inquiry is pursued through a multi-sited online ethnographic case study of Danish Facebook pages disguised as radical Islamist pages, which provoked racist and anti-Muslim reactions as well as negative sentiments towards refugees and immigrants in Denmark in general. Drawing on Jessie Daniels’ critical insights into cloaked websites, this research furthermore analyses the epistemological, methodological and conceptual challenges of online propaganda. It enhances our understanding of disinformation and propaganda in an increasingly interactive social media environment and contributes to a critical inquiry into social media and subversive politics
Azimuthal anisotropy and correlations at large transverse momenta in p+p and Au+Au collisions at sNN= 200 GeV
- Author
- Adams J
- Aggarwal MM
- Ahammed Z
- Amonett J
- Anderson BD
- Arkhipkin D
- Averichev GS
- Badyal SK
- Bai Y
- Balewski J
- Barannikova O
- Barnby LS
- Baudot J
- Bekele S
- Belaga VV
- Bellwied R
- Berger J
- Bezverkhny BI
- Bharadwaj S
- Bhasin A
- Bhati AK
- Bhatia VS
- Bichsel H
- Billmeier A
- Bland LC
- Blyth CO
- Bonner BE
- Botje M
- Boucham A
- Brandin AV
- Bravar A
- Bystersky M
- Cadman RV
- Cai XZ
- Caines H
- Carroll J
- Castillo J
- Cebra D
- Chajecki Z
- Chaloupka P
- Chattopdhyay S
- Chen HF
- Chen Y
- Cheng J
- Cherney M
- Chikanian A
- Christie W
- Coffin JP
- Cormier TM
- Cramer JG
- Crawford HJ
- Das D
- Das S
- de Moura MM
- de Toledo AS
- Derevschikov AA
- Didenko L
- Dietel T
- Dogra SM
- Dong WJ
- Dong X
- Draper JE
- Du F
- Dubey AK
- Dunin VB
- Dunlop JC
- Eckardt V
- Edwards WR
- Efimov LG
- Emelianov V
- Engelage J
- Eppley G
- Erazmus B
- Estienne M
- Fachini P
- Faivre J
- Fatemi R
- Fedorisin J
- Filimonov K
- Filip P
- Finch E
- Fine V
- Fisyak Y
- Foley KJ
- Fomenko K
- Fu J
- Gagliardi CA
- Gans J
- Ganti MS
- Gaudichet L
- Geurts F
- Ghazikhanian V
- Ghosh P
- Gonzalez JE
- Grachov O
- Grebenyuk O
- Grosnick D
- Guertin SM
- Guo Y
- Gupta A
- Gutierrez TD
- Hallman TJ
- Hamed A
- Hardtke D
- Harris JW
- Heinz M
- Henry TW
- Hepplemann S
- Hippolyte B
- Hirsch A
- Hjort E
- Hoffmann GW
- Huang HZ
- Huang SL
- Hughes EW
- Humanic TJ
- Igo G
- Ishihara A
- Jacobs P
- Jacobs WW
- Janik M
- Jiang H
- Jones PG
- Judd EG
- Kabana S
- Kang K
- Kaplan M
- Keane D
- Khodyrev VY
- Kiryluk J
- Kisiel A
- Kislov EM
- Klay J
- Klein SR
- Klyachko A
- Koetke DD
- Kollegger T
- Kopytine M
- Kotchenda L
- Kramer M
- Kravtsov P
- Kravtsov VI
- Krueger K
- Kuhn C
- Kulikov AI
- Kumar A
- Kunz CL
- Kutuev RK
- Kuznetsov AA
- Lamont MAC
- Landgraf JM
- Lange S
- Laue F
- Lauret J
- Lebedev A
- Lednicky R
- Lehocka S
- LeVine MJ
- Li C
- Li Q
- Li Y
- Lindenbaum SJ
- Lisa MA
- Liu F
- Liu L
- Liu QJ
- Liu Z
- Ljubicic T
- Llope WJ
- Long H
- Longacre RS
- Lopez-Noriega M
- Love WA
- Lu Y
- Ludlam T
- Lynn D
- Ma GL
- Ma JG
- Ma YG
- Magestro D
- Mahajan S
- Mahapatra DP
- Majka R
- Mangotra LK
- Manweiler R
- Margetis S
- Markert C
- Martin L
- Marx JN
- Matis HS
- Matulenko YA
- Mazumdar MRD
- McClain CJ
- McShane TS
- Meissner F
- Melnick Y
- Meschanin A
- Miller ML
- Milosevich Z
- Minaev NG
- Mironov C
- Mischke A
- Mishra DK
- Mitchell J
- Mohanty B
- Molnar L
- Moore CF
- Morozov DA
- Munhoz MG
- Nandi BK
- Nayak SK
- Nayak TK
- Nelson JM
- Netrakanti PK
- Nikitin VA
- Nogach LV
- Nurushev SB
- Odyniec G
- Ogawa A
- Okorokov V
- Oldenburg M
- Olson D
- Pal SK
- Panebratsev Y
- Panitkin SY
- Pavlinov AI
- Pawlak T
- Peitzmann T
- Perevoztchikov V
- Perkins C
- Peryt W
- Petrov VA
- Phatak SC
- Picha R
- Planinic M
- Pluta J
- Porile N
- Porter J
- Poskanzer AM
- Potekhin M
- Potrebenikova E
- Potukuchi BVKS
- Prindle D
- Pruneau C
- Putschke J
- Rai G
- Rakness G
- Raniwala R
- Raniwala S
- Ravel O
- Ray RL
- Razin SV
- Reichhold D
- Reid JG
- Renault G
- Retiere F
- Ridiger A
- Ritter HG
- Roberts JB
- Rogachevskiy OV
- Romero JL
- Rose A
- Roy C
- Ruan L
- Sahoo R
- Sakrejda I
- Salur S
- Sanchez MCD
- Sandweiss J
- Savin I
- Sazhin PS
- Schambach J
- Scharenberg RP
- Schmitz N
- Schroeder LS
- Schweda K
- Seger J
- Seyboth P
- Shahaliev E
- Shao M
- Shao W
- Sharma M
- Shen WQ
- Shestermanov KE
- Shimanskiy SS
- Sichtermann E
- Simon F
- Singaraju RN
- Skoro G
- Smirnov N
- Snellings R
- Sood G
- Sorensen P
- Sowinski J
- Speltz J
- Spinka HM
- Srivastava B
- Stadnik A
- Stanislaus TDS
- STAR Collaboration .
- Stock R
- Stolpovsky A
- Strikhanov M
- Stringfellow B
- Suaide AAP
- Sugarbaker E
- Suire C
- Sumbera M
- Surrow B
- Symons TJM
- Szarwas P
- Tai A
- Takahashi J
- Tang AH
- Tarnowsky T
- Thein D
- Thomas JH
- Timoshenko S
- Tokarev M
- Trentalange S
- Tribble RE
- Tsai OD
- Ulery J
- Ullrich T
- Underwood DG
- Urkinbaev A
- Van Buren G
- van Leeuwen M
- Vander Molen AM
- Varma R
- Vasilevski IM
- Vasiliev AN
- Vernet R
- Vigdor SE
- Viyogi YP
- Vokal S
- Voloshin SA
- Vznuzdaev M
- Waggoner WT
- Wang F
- Wang G
- Wang G
- Wang XL
- Wang Y
- Wang Y
- Wang ZM
- Ward H
- Watson JW
- Webb JC
- Wells R
- Westfall GD
- Wetzler A
- Whitten C
- Wieman H
- Wissink SW
- Witt R
- Wood J
- Wu J
- Xu N
- Xu Z
- Xu ZZ
- Yamamoto E
- Yepes P
- Yurevich VI
- Zanevsky YV
- Zhang H
- Zhang WM
- Zhang ZP
- Zolnierczuk PA
- Zoulkarneev R
- Zoulkarneeva Y
- Zubarev AN
- Publication venue
- 'American Physical Society (APS)'
- Publication date
- 01/01/2004
- Field of study
Results on high transverse momentum charged particle emission with respect to
the reaction plane are presented for Au+Au collisions at sNN=
200 GeV. Two- and four-particle correlations results are presented as well as a
comparison of azimuthal correlations in Au+Au collisions to those in p+p at
the same energy. Elliptic anisotropy, v2, is found to reach its maximum at
pt∼3 GeV/c, then decrease slowly and remain significant up to
pt≈7 -- 10 GeV/c. Stronger suppression is found in the back-to-back
high-pt particle correlations for particles emitted out-of-plane compared to
those emitted in-plane. The centrality dependence of v2 at intermediate
pt is compared to simple models based on jet quenching.Comment: 4 figures. Published version as PRL 93, 252301 (2004
Azimuthal anisotropy in Au+Au collisions at sqrtsNN = 200 GeV
- Author
- Adams J.
- Aggarwal MM
- Ahammed Z.
- Amonett J.
- Anderson BD
- Arkhipkin D.
- Averichev GS
- Badyal SK
- Bai Y.
- Balewski J.
- Barannikova O.
- Bari DD
- Barnby LS
- Baudot J.
- Bekele S.
- Belaga VV
- Bellwied R.
- Berger J.
- Bezverkhny BI
- Bharadwaj S.
- Bhasin A.
- Bhati AK
- Bhatia VS
- Bichsel H.
- Bielcik J.
- Bielcikova J.
- Billmeier A.
- Bland LC
- Blyth CO
- Bonner BE
- Botje M.
- Boucham A.
- Braem A.
- Brandin AV
- Bravar A.
- Bystersky M.
- Cadman RV
- Cai XZ
- Caines H.
- Castillo J.
- Cataldo GD
- Catu O.
- Cebra D.
- Chajecki Z.
- Chaloupka P.
- Chattopadhyay S.
- Chen HF
- Chen Y.
- Cheng J.
- Cherney M.
- Chikanian A.
- Christie W.
- Coffin JP
- Cormier TM
- Cramer JG
- Crawford HJ
- Das D.
- Das S.
- Davenport M.
- de Moura MM
- de Toledo AS
- Derevschikov AA
- Didenko L.
- Dietel T.
- Dogra SM
- Dong WJ
- Dong X.
- Draper JE
- Du F.
- Dubey AK
- Dunin VB
- Dunlop JC
- Eckardt V.
- Edwards WR
- Efimov LG
- Emelianov V.
- Engelage J.
- Eppley G.
- Erazmus B.
- Estienne M.
- Fachini P.
- Faivre J.
- Fatemi R.
- Fedorisin J.
- Filimonov K.
- Filip P.
- Finch E.
- Fine V.
- Fisyak Y.
- Fomenko K.
- Fu J.
- Gagliardi Carl A.
- Gaillard L.
- Gans J.
- Ganti MS
- Gaudichet L.
- Ghazikhanian V.
- Ghosh P.
- Gonzalez JE
- Grachov O.
- Grebenyuk O.
- Grosnick D.
- Guertin SM
- Guerts F.
- Guo Y.
- Gupta A.
- Gutierrez TD
- Hallman TJ
- Hamed A.
- Hardtke D.
- Harris JW
- Heinz M.
- Henry TW
- Hepplemann S.
- Hippolyte B.
- Hirsch A.
- Hjort E.
- Hoffmann GW
- Huang HZ
- Huang SL
- Hughes EW
- Humanic TJ
- Igo G.
- Ishihara A.
- Jacobs P.
- Jacobs WW
- Janik M.
- Jiang H.
- Jones PG
- Judd EG
- Kabana S.
- Kang K.
- Kaplan M.
- Keane D.
- Khodyrev VY
- Kiryluk J.
- Kisiel A.
- Kislov EM
- Klay J.
- Klein SR
- Koetke DD
- Kollegger T.
- Kopytine M.
- Kotchenda L.
- Kramer M.
- Kravtsov P.
- Kravtsov VI
- Krueger K.
- Kuhn C.
- Kulikov AI
- Kumar A.
- Kutuev RK
- Kuznetsov AA
- Lamont MAC
- Landgraf JM
- Langacre RS
- Lange S.
- Laue F.
- Lauret J.
- Lebedev A.
- Lednicky R.
- Lehocka S.
- LeVine MJ
- Li C.
- Li Q.
- Li Y.
- Lin G.
- Lindenbaum SJ
- Lisa MA
- Liu F.
- Liu L.
- Liu QJ
- Liu Z.
- Ljubicic T.
- Llope WJ
- Long H.
- Lopez-Noriega M.
- Love WA
- Lu Y.
- Ludlam T.
- Lynn D.
- Ma GL
- Ma JG
- Ma YG
- Magestro D.
- Mahajan S.
- Mahapatra DP
- Majka R.
- Mangotra LK
- Manweiler R.
- Margetis S.
- Markert C.
- Martin L.
- Martinengo P.
- Marx JN
- Matis HS
- Matulenko YA
- Mazumdar MRD
- McClain CJ
- McShane TS
- Meissner F.
- Melnick Y.
- Meschanin A.
- Miller ML
- Minaev NG
- Mironov C.
- Mischke A.
- Mishra DK
- Mitchell J.
- Mohanty B.
- Molen AMV
- Molnar L.
- Moore CF
- Morozov DA
- Munhoz MG
- Nandi BK
- Nappi E.
- Nayak SK
- Nayak TK
- Nelson JM
- Netrakanti PK
- Nikitin VA
- Nogach LV
- Nurushev SB
- Odyniec G.
- Ogawa A.
- Okorokov V.
- Oldenburg M.
- Olson D.
- Paic G.
- Pal SK
- Panebratsev Y.
- Panitkin SY
- Pavlinov AI
- Pawlak T.
- Peitzmann T.
- Perevoztchikov V.
- Perkins C.
- Peryt W.
- Petrov VA
- Phatak SC
- Picha R.
- Planinic M.
- Pluta J.
- Porile N.
- Porter J.
- Posa E.
- Poskanzer AM
- Potekhin M.
- Potrebenikova E.
- Potukuchi BVKS
- Prindle D.
- Pruneau C.
- Puiz F.
- Putschke J.
- Rakness G.
- Raniwala R.
- Raniwala S.
- Ravel O.
- Ray RL
- Razin SV
- Reichhold D.
- Reid JG
- Renault G.
- Retiere F.
- Ridiger A.
- Ritter HG
- Roberts JB
- Rogachevskiy OV
- Romero JL
- Rose A.
- Roy C.
- Ruan L.
- Sahoo R.
- Sakrejda I.
- Salur S.
- Sanchez MCD
- Sandweiss J.
- Sarsour M.
- Savin I.
- Sazhin PS
- Schambach J.
- Scharenberg RP
- Schmitz N.
- Schweda K.
- Schyns E.
- Seger J.
- Seyboth P.
- Shahaliev E.
- Shao M.
- Shao W.
- Sharma M.
- Shen WQ
- Shestermanov KE
- Shimanskiy SS
- Sichtermann E.
- Simon F.
- Singaraju RN
- Skoro G.
- Smirnov N.
- Snellings R.
- Sood G.
- Sorensen P.
- Sowinski J.
- Speltz J.
- Spinka H. M.
- Srivastava B.
- Stadnik A.
- Stanislaus TDS
- Star Collaboration
- STAR-RICH Collaboration.
- Stock R.
- Stolpovsky A.
- Strikhanov M.
- Stringfellow B.
- Suaide AAP
- Sugarbaker E.
- Suire C.
- Sumbera M.
- Surrow B.
- Symons TJM
- Szarwas P.
- Tai A.
- Takahashi J.
- Tang AH
- Tarnowsky T.
- Thein D.
- Thomas JH
- Timoshenko S.
- Tokarev M.
- Trainor TA
- Trentalange S.
- Tribble Robert E.
- Tsai OD
- Ulery J.
- Ullrich T.
- Underwood DG
- Urkinbaev A.
- van Buren G.
- van Leeuwen M.
- Varma R.
- Vasilevski IM
- Vasiliev AN
- Vernet R.
- Vigdor SE
- Viyogi YP
- Vokal S.
- Voloshin SA
- Vznuzdaev M.
- Waggoner WT
- Wang F.
- Wang G.
- Wang G.
- Wang XL
- Wang Y.
- Wang Y.
- Wang ZM
- Ward H.
- Watson JW
- Webb JC
- Wells R.
- Westfall GD
- Wetzler A.
- Whitten C.
- Wieman H.
- Wissink SW
- Witt R.
- Wood J.
- Wu J.
- Xu N.
- Xu Z.
- Xu ZZ
- Yamamoto E.
- Yepes P.
- Yurevich VI
- Zanevsky YV
- Zhang H.
- Zhang WM
- Zhang ZP
- Zoulkarneev R.
- Zoulkarneeva Y.
- Zubarev AN
- Publication venue
- 'American Physical Society (APS)'
- Publication date
- 01/01/2005
- Field of study
The results from the STAR Collaboration on directed flow (v_1), elliptic flow
(v_2), and the fourth harmonic (v_4) in the anisotropic azimuthal distribution
of particles from Au+Au collisions at sqrtsNN = 200 GeV are summarized and
compared with results from other experiments and theoretical models. Results
for identified particles are presented and fit with a Blast Wave model.
Different anisotropic flow analysis methods are compared and nonflow effects
are extracted from the data. For v_2, scaling with the number of constituent
quarks and parton coalescence is discussed. For v_4, scaling with v_2^2 and
quark coalescence is discussed.Comment: 26 pages. As accepted by Phys. Rev. C. Text rearranged, figures
modified, but data the same. However, in Fig. 35 the hydro calculations are
corrected in this version. The data tables are available at
http://www.star.bnl.gov/central/publications/ by searching for "flow" and
then this pape
Jet energy measurement with the ATLAS detector in proton-proton collisions at root s=7 TeV
- Author
- Aad G
- Abbott B
- Abdallah J
- Abdelalim AA
- Abdesselam A
- Abdinov O
- Abi B
- Abolins M
- Abramowicz H
- Abreu H
- Acerbi E
- Acharya BS
- Adams DL
- Addy TN
- Adelman J
- Aderholz M
- Adomeit S
- Adragna P
- Adye T
- Aefsky S
- Aguilar-Saavedra JA
- Aharrouche M
- Ahlen SP
- Ahles F
- Ahmad A
- Ahsan M
- Aielli G
- Akdogana T
- Akesson TPA
- Akimoto G
- Akimov AV
- Akiyama A
- Aktas A
- Alam MA
- Alam MS
- Albert J
- Albrand S
- Aleksa M
- Aleksandrov IN
- Alessandria F
- Alexa C
- Alexander G
- Alexandre G
- Alexopoulos T
- Alhroob M
- Aliev M
- Alimonti G
- Alison J
- Aliyev M
- Allport PP
- Allwood-Spiers SE
- Almenar CC
- Almond J
- Aloisio A
- Alon R
- Alonso A
- Alviggi MG
- Amako K
- Amaral P
- Amelung C
- Ammosov VV
- Amorim A
- Amoros G
- Amram N
- Anastopoulos C
- Ancu LS
- Andari N
- Andeen T
- Anders CF
- Anders G
- Anderson KJ
- Andreazza A
- Andrei V
- Andrieux M-L
- Anduaga XS
- Angerami A
- Anghinolfi F
- Anh TV
- Anjos N
- Annovi A
- Antonaki A
- Antonelli M
- Antonov A
- Antos J
- Anulli F
- Aoun S
- Apolle R
- Arabidze G
- Aracena I
- Arai Y
- Aranda CP
- Arce ATH
- Archambault JP
- Arfaoui S
- Arguin J-F
- Arik E
- Arik M
- Armbruster AJ
- Arnaez O
- Arnault C
- Artamonov A
- Artoni G
- Arutinov D
- Asai S
- Asfandiyarov R
- Ask S
- Asman B
- Asner D
- Asquith L
- Assamagan K
- Astbury A
- Astvatsatourov A
- Atoian G
- Aubert B
- Auge E
- Augsten K
- Aurousseau M
- Austin N
- Avolio G
- Avramidou R
- Axen D
- Ay C
- Azuelos G
- Azuma Y
- Baak MA
- Baccaglioni G
- Bacci C
- Bach AM
- Bachacou H
- Bachas K
- Bachy G
- Backes M
- Backhaus M
- Badescu E
- Bagnaia P
- Bahinipati S
- Bai Y
- Bailey DC
- Bain T
- Baines JT
- Baker MD
- Baker OK
- Baker S
- Banas E
- Banerjee P
- Banerjee S
- Banfi D
- Bangert A
- Bansal V
- Bansil HS
- Barajas CAC
- Barak L
- Baranov SP
- Barashkou A
- Barber T
- Barberio EL
- Barberis D
- Barbero M
- Bardin DY
- Barillari T
- Barisonzi M
- Barklow T
- Barlow N
- Barnett BM
- Barnett RM
- Baroncelli A
- Barone G
- Barr AJ
- Barreiro F
- Barrera CO
- Barrillon P
- Bartoldus R
- Barton AE
- Bartsch D
- Bartsch V
- Bates RL
- Batkova L
- Batley JR
- Battaglia A
- Battistin M
- Battistoni G
- Bauer F
- Bawa HS
- Beare B
- Beau T
- Beauchemin PH
- Beccherle R
- Bechtle P
- Beck GA
- Beck HP
- Beckingham M
- Becks KH
- Beddall A
- Beddall AJ
- Bedikian S
- Bednyakov VA
- Bee CP
- Begel M
- Behera PK
- Beimforde M
- Belanger-Champagne C
- Belenguer MJ
- Bell PJ
- Bell WH
- Bella G
- Bella LA
- Bellagamba L
- Bellina F
- Bellomo M
- Belloni A
- Beloborodova O
- Belotskiy K
- Beltramello O
- Ben Ami S
- Benary O
- Benchekroun D
- Benchouk C
- Bendel M
- Benekos N
- Benhammou Y
- Benjamin DP
- Benoit M
- Bensinger JR
- Benslama K
- Bentvelsen S
- Beretta M
- Berge D
- Berger N
- Berghaus F
- Berglund E
- Beringer J
- Bernardet K
- Bernat P
- Bernhard R
- Bernius C
- Berry T
- Bertin A
- Bertinelli F
- Bertolucci F
- Besana MI
- Besson N
- Bethke S
- Bhimji W
- Bianchi RM
- Bianco M
- Biebel O
- Bieniek SP
- Bierwagen K
- Biesiada J
- Biglietti M
- Bilokon H
- Bindi M
- Binet S
- Bingul A
- Bini C
- Biscarat C
- Bitenc U
- Black KM
- Blair RE
- Blanchard J-B
- Blanchot G
- Blazek T
- Blocker C
- Blocki J
- Blondel A
- Blum W
- Blumenschein U
- Bobbink GJ
- Bobrovnikov VB
- Bocchetta SS
- Bocci A
- Boddy CR
- Boehler M
- Boek J
- Boelaert N
- Boeriu OEV
- Boeser S
- Bogaerts JA
- Bogdanchikov A
- Bogouch A
- Bohm C
- Boisvert V
- Bold T
- Boldea V
- Bolnet NM
- Bona M
- Bondarenko VG
- Bondioli M
- Boonekamp M
- Boorman G
- Booth CN
- Bordoni S
- Borer C
- Borisov A
- Borissov G
- Borjanovic I
- Borroni S
- Bos K
- Boscherini D
- Bosman M
- Boterenbrood H
- Botterill D
- Bouchami J
- Boudreau J
- Bouhova-Thacker EV
- Bourdarios C
- Bousson N
- Boveia A
- Boyd J
- Boyko IR
- Bozhko NI
- Bozovic-Jelisavcic I
- Bracinik J
- Braem A
- Branchini P
- Brandenburg GW
- Brandt A
- Brandt G
- Brandt O
- Bratzler U
- Brau B
- Brau JE
- Braun HM
- Brelier B
- Bremer J
- Brenner R
- Bressler S
- Breton D
- Britton D
- Brochu FM
- Brock I
- Brock R
- Brodbeck TJ
- Brodet E
- Broggi F
- Bromberg C
- Brooijmans G
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- Van der Graaf H
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- Varnes EW
- Varouchas D
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- Varvell KE
- Vassilakopouloss VI
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- Vegni G
- Veillet JJ
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- Vercesi V
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- Viegas FJTA
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- Vitells O
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- Vivarelli I
- Vlachos S
- Vladoiu D
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- Volpi G
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- Von der Schmitt H
- Von Loeben J
- Von Radziewski H
- Von Toerne E
- Vorobel V
- Vorobiev AP
- Vorwerk V
- Vos M
- Voss R
- Voss TT
- Vossebeld JH
- Vranjes N
- Vrba V
- Vreeswijk M
- Vuillermet R
- Vujicic M
- Vukotic I
- Wagner P
- Wagner W
- Wahlen H
- Wakabayashi J
- Walbersloh J
- Walch S
- Walder J
- Walker R
- Walkowiak W
- Wall R
- Waller P
- Wang C
- Wang H
- Wang H
- Wang J
- Wang J
- Wang JC
- Wang R
- Wang SM
- Warburton A
- Ward CP
- Warsinsky M
- Wastie R
- Watkins PM
- Watson AT
- Watson MF
- Watts G
- Watts S
- Waugh AT
- Waugh BM
- Weber J
- Weber M
- Weber MS
- Weber P
- Weidberg AR
- Weigell P
- Weingarten J
- Weiser C
- Wellenstein H
- Wells PS
- Wen M
- Wenaus T
- Wendler S
- Weng Z
- Wenglers T
- Wenig S
- Wermes N
- Werner M
- Werner P
- Werth M
- Wessels M
- Weydert C
- Whalen K
- Wheeler-Ellis SJ
- Whitaker SP
- White A
- White MJ
- White S
- Whitehead SR
- Whiteson D
- Whittington D
- Wicek F
- Wicke D
- Wickens FJ
- Wiedenmann W
- Wielersis M
- Wienemann P
- Wiglesworth C
- Wiik-Fuchs LAM
- Wijeratne PA
- Wildauer A
- Wildt MA
- Wilhelm I
- Wilkens HG
- Will JZ
- Williams E
- Williams HH
- Willis W
- Willocq S
- Wilson A
- Wilson JA
- Wilson MG
- Wingerter-Seez I
- Winkelmann S
- Winklmeier F
- Wittgen M
- Wolter MW
- Wolters H
- Wong WC
- Wooden G
- Wosiek BK
- Wotschack J
- Woudstra MJ
- Wraight K
- Wright C
- Wright D
- Wright M
- Wrona B
- Wu SL
- Wu X
- Wu Y
- Wulf E
- Wunstorf R
- Wynne BM
- Xaplanteris L
- Xella S
- Xie S
- Xie Y
- Xu C
- Xu D
- Xu G
- Yabsley B
- Yacoobb S
- Yagci KD
- Yamada M
- Yamaguchi H
- Yamamoto A
- Yamamoto K
- Yamamoto S
- Yamamura T
- Yamanaka T
- Yamaoka J
- Yamazaki T
- Yamazaki Y
- Yan Z
- Yang H
- Yang UK
- Yang Y
- Yang Y
- Yang Z
- Yanush S
- Yao Y
- Yasu Y
- Ye J
- Ye S
- Yildizb HD
- Yilmaz M
- Yoosootiniya R
- Yorita K
- Yoshida R
- Young C
- Youssef S
- Yu D
- Yu J
- Yu J
- Yuan L
- Yurkewicz A
- Zaets VG
- Zaidan R
- Zaitsev AM
- Zajacova Z
- Zalite YK
- Zanello L
- Zarzhitsky P
- Zaytsev A
- Zeitnitz C
- Zeller M
- Zeman M
- Zemla A
- Zendler C
- Zenin O
- Zenonos Z
- Zenz S
- Zerwas D
- Zhan Z
- Zhang D
- Zhang H
- Zhang J
- Zhang Q
- Zhang X
- Zhang Z
- Zhao L
- Zhao T
- Zhao Z
- Zhemchugov A
- Zheng S
- Zhong J
- Zhou B
- Zhou N
- Zhou Y
- Zhu CG
- Zhu H
- Zhu J
- Zhu Y
- Zhuang X
- Zhuravlov V
- Zieminska D
- Zimmermann R
- Zimmermann S
- Zimmermann S
- Zinonos Z
- Ziolkowski M
- Zitoun R
- Zivkovic L
- Zmouchko VV
- Zobernig G
- Zoccoli A
- Zolnierowski Y
- Zsenei A
- Zutshi V
- Zwalinski L
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 01/03/2013
- Field of study
The jet energy scale and its systematic uncertainty are determined for jets measured with the ATLAS detector at the LHC in proton-proton collision data at a centre-of-mass energy of √s = 7TeV corresponding to an integrated luminosity of 38 pb-1. Jets are reconstructed with the anti-kt algorithm with distance parameters R=0. 4 or R=0. 6. Jet energy and angle corrections are determined from Monte Carlo simulations to calibrate jets with transverse momenta pT≥20 GeV and pseudorapidities {pipe}η{pipe}<4. 5. The jet energy systematic uncertainty is estimated using the single isolated hadron response measured in situ and in test-beams, exploiting the transverse momentum balance between central and forward jets in events with dijet topologies and studying systematic variations in Monte Carlo simulations. The jet energy uncertainty is less than 2. 5 % in the central calorimeter region ({pipe}η{pipe}<0. 8) for jets with 60≤pT<800 GeV, and is maximally 14 % for pT<30 GeV in the most forward region 3. 2≤{pipe}η{pipe}<4. 5. The jet energy is validated for jet transverse momenta up to 1 TeV to the level of a few percent using several in situ techniques by comparing a well-known reference such as the recoiling photon pT, the sum of the transverse momenta of tracks associated to the jet, or a system of low-pT jets recoiling against a high-pT jet. More sophisticated jet calibration schemes are presented based on calorimeter cell energy density weighting or hadronic properties of jets, aiming for an improved jet energy resolution and a reduced flavour dependence of the jet response. The systematic uncertainty of the jet energy determined from a combination of in situ techniques is consistent with the one derived from single hadron response measurements over a wide kinematic range. The nominal corrections and uncertainties are derived for isolated jets in an inclusive sample of high-pT jets. Special cases such as event topologies with close-by jets, or selections of samples with an enhanced content of jets originating from light quarks, heavy quarks or gluons are also discussed and the corresponding uncertainties are determined. © 2013 CERN for the benefit of the ATLAS collaboration
Hippocampal Deletion of BDNF Gene Attenuates Gamma Oscillations in Area CA1 by Up-Regulating 5-HT3 Receptor
- Author
- A Bragin
- A Fisahn
- AL Bookout
- Alexei Morozov
- AT Popescu
- C Itami
- CS Herrmann
- D Ongur
- DK Binder
- EC Fuchs
- F Farzan
- I Abidin
- I Ferezou
- IS Choi
- J Csicsvari
- J Tanaka
- JA Gorski
- JA van Deursen
- JE Macor
- JM Conner
- JR Hughes
- K Martinowich
- K Martinowich
- K Nakazawa
- K Sakata
- Kenji Hashimoto
- LA Mamounas
- LH Tecott
- M Bartos
- MA Whittington
- MA Whittington
- MJ Kahana
- MK van Vugt
- MK Yamada
- MM Holm
- MM Poo
- MV Puig
- N Hajos
- N Ropert
- N Sakai
- P Berghuis
- RD Traub
- RD Traub
- RL Papke
- S Fujisawa
- SA Heldt
- SS Zakharenko
- T Numakawa
- TF Freund
- TJ Turner
- X Jin
- Y Nakajo
- Ying Huang
- Publication venue
- Public Library of Science
- Publication date
- 01/01/2010
- Field of study
Background: Pyramidal neurons in the hippocampal area CA3 express high levels of BDNF, but how this BDNF contributes to oscillatory properties of hippocampus is unknown. Methodology/Principal Findings: Here we examined carbachol-induced gamma oscillations in hippocampal slices lacking BDNF gene in the area CA3. The power of oscillations was reduced in the hippocampal area CA1, which coincided with increases in the expression and activity of 5-HT3 receptor. Pharmacological block of this receptor partially restored power of gamma oscillations in slices from KO mice, but had no effect in slices from WT mice. Conclusion/Significance: These data suggest that BDNF facilitates gamma oscillations in the hippocampus by attenuating signaling through 5-HT3 receptor. Thus, BDNF modulates hippocampal oscillations through serotonergic system
Involvement of JNK-mediated pathway in EGF-mediated protection against paclitaxel-induced apoptosis in SiHa human cervical cancer cells
- Author
- Antonyak MA
- Batzer AG
- Baumann P
- Bonni A
- Brunet A
- Caraglia M
- Cardone MH
- Chen BK
- Chen CY
- Crook T
- Datta SR
- del Peso L
- Downward J
- Dudley DT
- Fan Z
- Fang X
- Gibson S
- Gotoh N
- Hashimoto A
- Huang HS
- Ichijo H
- Khwaja A
- Klippel A
- Kultz D
- Lan L
- Langlois WJ
- Lee JC
- Leppa S
- Leu CM
- Li N
- Liu B
- Liu ZG
- Logan SK
- Lu Y
- McClellan M
- Ming XF
- Morozov A
- Moscatello DK
- Nishina H
- Payne SG
- Peto M
- Rodrigues GA
- Rodriguez-Viciana P
- Rozakis-Adcock M
- Scheffner M
- Scheid MP
- Smith A
- Stone AA
- Su B
- Subbaramaiah K
- Susin SA
- Tournier C
- Treisman R
- Ullrich A
- Vlahos CJ
- Vlahos CJ
- Wang TH
- Waters SB
- Wood KW
- Yano H
- Zanke BW
- Zha J
- Publication venue
- Nature Publishing Group
- Publication date
- 01/01/2001
- Field of study
We investigated the signalling pathways by which epidermal growth factor (EGF) modulates paclitaxel-induced apoptosis in SiHa human cervical cancer cells. SiHa cells exposed to paclitaxel underwent apoptosis, which was strongly inhibited by EGF. This inhibition of apoptosis by EGF was not altered by pharmacological blockade of phosphatidylinositol 3′-OH kinase (PI-3K) with the PI-3K specific inhibitor LY294002 or blockade of the mitogen-activated protein kinase (MAPK) kinase (MEK) with the MEK specific inhibitor PD98059, or by transfection of the cells with PI-3K or MEK dominant-negative expression vectors. EGF did not stimulate PI-3K/Akt, MEK/MAPK, or p38 MAPK activity in SiHa cells but did transiently activate the c-Jun NH2-terminal kinase (JNK). Co-exposure of SiHa cells to SB202190 at concentrations that inhibit JNK abolished the protective effect of EGF on SiHa cells against paclitaxel-induced apoptosis. Our findings indicate that the JNK signaling pathway plays an important role in EGF-mediated protection from paclitaxel-induced apoptosis in SiHa cells. © 2001 Cancer Research Campaign http://www.bjcancer.co
Characterization of an Nmr Homolog That Modulates GATA Factor-Mediated Nitrogen Metabolite Repression in Cryptococcus neoformans
- Author
- A Andrianopoulos
- A Idnurm
- A Platt
- AP Mitchell
- AP Mitchell
- B Kudla
- B Magasanik
- BJ Park
- CA D'Souza
- CA Morrow
- Carl A. Morrow
- CD Chun
- D Wagner
- DA Garsin
- DK Stammers
- E Mylonakis
- E Southern
- ES Jacobson
- F Staib
- G Janbon
- GA Marzluf
- GM Cox
- H Conlon
- H Haas
- H Pan
- HE Bugeja
- HK Edskes
- HK Edskes
- HK Lamb
- HK Lamb
- HK Lamb
- HN Arst Jr
- I. Russel Lee
- IR Lee
- IY Morozov
- J Kronstad
- J Sambrook
- JA Coffman
- JA Fraser
- JA Fraser
- JA Fraser
- JA Pateman
- James A. Fraser
- JB Thoden
- JC Rhodes
- JC Rutherford
- JC Slot
- JD Thompson
- JL Young
- Jonathan W. C. Lim
- JR Perfect
- K Biswas
- K Nielsen
- K Nielsen
- Kate L. Ormerod
- KH Wong
- KH Wong
- Kirsten Nielsen
- KJ Kwon-Chung
- KJ Kwon-Chung
- KJ Livak
- KK Leuther
- KK Leuther
- L Bousset
- L Kmetzsch
- M Hensel
- M Stanbrough
- ME Cardenas
- MX Caddick
- N Dabas
- N Jiang
- OW Liu
- P James
- PG Bertram
- PL Minehart
- PR Williamson
- R Premakumar
- R Pukkila-Worley
- RC Davidson
- RD Gietz
- S Brenner
- S Honda
- SB Selleck
- SF Altschul
- T Beck
- T Langdon
- T Limjindaporn
- TA Missall
- TC Umland
- TG Cooper
- TG Copper
- TS Cunningham
- V Kumar
- V Stewart
- WH Jung
- WL Liao
- X Xiao
- X Zheng
- X Zhu
- YH Fu
- Publication venue
- Public Library of Science
- Publication date
- 01/01/2012
- Field of study
Nitrogen source utilization plays a critical role in fungal development, secondary metabolite production and pathogenesis. In both the Ascomycota and Basidiomycota, GATA transcription factors globally activate the expression of catabolic enzyme-encoding genes required to degrade complex nitrogenous compounds. However, in the presence of preferred nitrogen sources such as ammonium, GATA factor activity is inhibited in some species through interaction with co-repressor Nmr proteins. This regulatory phenomenon, nitrogen metabolite repression, enables preferential utilization of readily assimilated nitrogen sources. In the basidiomycete pathogen Cryptococcus neoformans, the GATA factor Gat1/Are1 has been co-opted into regulating multiple key virulence traits in addition to nitrogen catabolism. Here, we further characterize Gat1/Are1 function and investigate the regulatory role of the predicted Nmr homolog Tar1. While GAT1/ARE1 expression is induced during nitrogen limitation, TAR1 transcription is unaffected by nitrogen availability. Deletion of TAR1 leads to inappropriate derepression of non-preferred nitrogen catabolic pathways in the simultaneous presence of favoured sources. In addition to exhibiting its evolutionary conserved role of inhibiting GATA factor activity under repressing conditions, Tar1 also positively regulates GAT1/ARE1 transcription under non-repressing conditions. The molecular mechanism by which Tar1 modulates nitrogen metabolite repression, however, remains open to speculation. Interaction between Tar1 and Gat1/Are1 was undetectable in a yeast two-hybrid assay, consistent with Tar1 and Gat1/Are1 each lacking the conserved C-terminus regions present in ascomycete Nmr proteins and GATA factors that are known to interact with each other. Importantly, both Tar1 and Gat1/Are1 are suppressors of C. neoformans virulence, reiterating and highlighting the paradigm of nitrogen regulation of pathogenesis
Measurement of the cross-section for b-jets produced in association with a Z boson at root s=7 TeV with the ATLAS detector ATLAS Collaboration
- Author
- Aad G
- Abbott B
- Abdallah J
- Abdelalim AA
- Abdesselam A
- Abdinov O
- Abi B
- Abolins M
- Abramowicz H
- Abreu H
- Acerbi E
- Acharya BS
- Adams DL
- Addy TN
- Adelman J
- Aderholz M
- Adomeit S
- Adragna P
- Adye T
- Aefsky S
- Aguilar-Saavedra JA
- Aharrouche M
- Ahlen SP
- Ahles F
- Ahmad A
- Ahsan M
- Aielli G
- Akdogan T
- Akesson TPA
- Akimoto G
- Akimov AV
- Akiyama A
- Alam MA
- Alam MS
- Albert J
- Albrand S
- Aleksa M
- Aleksandrov IN
- Alessandria F
- Alexa C
- Alexander G
- Alexandre G
- Alexopoulos T
- Alhroob M
- Aliev M
- Alimonti G
- Alison J
- Aliyev M
- Allport PP
- Allwood-Spiers SE
- Almenar CC
- Almond J
- Aloisio A
- Alon R
- Alonso A
- Alviggi MG
- Amako K
- Amaral P
- Amelung C
- Ammosov VV
- Amorim A
- Amoros G
- Amram N
- Anastopoulos C
- Ancu LS
- Andari N
- Andeen T
- Anders CF
- Anders G
- Anderson KJ
- Andreazza A
- Andrei V
- Andrieux M-L
- Anduaga XS
- Angerami A
- Anghinolfi F
- Anh TV
- Anjos N
- Annovi A
- Antonaki A
- Antonelli M
- Antonov A
- Antos J
- Anulli F
- Aoun S
- Apolle R
- Arabidze G
- Aracena I
- Arai Y
- Arce ATH
- Archambault JP
- Arfaoui S
- Arguin J-F
- Arik E
- Arik M
- Armbruster AJ
- Arnaez O
- Arnault C
- Artamonov A
- Artoni G
- Arutinov D
- Asai S
- Asfandiyarov R
- Ask S
- Asman B
- Asquith L
- Assamagan K
- Astbury A
- Astvatsatourov A
- Atoian G
- Aubert B
- Auge E
- Augsten K
- Aurousseau M
- Austin N
- Avolio G
- Avramidou R
- Axen D
- Ay C
- Azuelos G
- Azuma Y
- Baak MA
- Baccaglioni G
- Bacci C
- Bach AM
- Bachacou H
- Bachas K
- Bachy G
- Backes M
- Backhaus M
- Badescu E
- Bagnaia P
- Bahinipati S
- Bai Y
- Bailey DC
- Bain T
- Baines JT
- Baker MD
- Baker OK
- Baker S
- Banas E
- Banerjee P
- Banerjee S
- Banfi D
- Bangert A
- Bansal V
- Bansil HS
- Barajas CAC
- Barak L
- Baranov SP
- Barashkou A
- Barber T
- Barberio EL
- Barberis D
- Barbero M
- Bardin DY
- Barillari T
- Barisonzi M
- Barklow T
- Barlow N
- Barnett BM
- Barnett RM
- Baroncellia A
- Barone G
- Barr AJ
- Barreiro F
- Barrera CO
- Barrillon P
- Bartoldus R
- Barton AE
- Bartsch D
- Bartsch V
- Bates RL
- Batkovaa L
- Batley JR
- Battaglia A
- Battistin M
- Battistonia G
- Bauer F
- Bawa HS
- Beare B
- Beau T
- Beauchemin PH
- Beccherlea R
- Bechtle R
- Beck HP
- Beckingham M
- Becks KH
- Beddallc A
- Beddallc AJ
- Bedikian S
- Bednyakov VA
- Bee CP
- Begel M
- Behera PK
- Beimforde M
- Belanger-Champagne C
- Belenguer MJ
- Bell PJ
- Bell WH
- Bella G
- Bella LA
- Bellagambaa L
- Bellina F
- Bellomo M
- Belloni A
- Beloborodova O
- Belotskiy K
- Beltramello O
- Ben Ami S
- Benary O
- Benchekrouna D
- Benchouk C
- Bendel M
- Benekos N
- Benhammou Y
- Benjamin DP
- Benoit M
- Bensinger JR
- Benslama K
- Bentvelsen S
- Berge D
- Berger N
- Berghaus F
- Berglund E
- Beringer J
- Bernardet K
- Bernat P
- Bernhard R
- Bernius C
- Berry T
- Bertina A
- Bertinelli F
- Bertoluccia F
- Besanaa MI
- Besson N
- Bethke S
- Bhimji W
- Bianchi RM
- Biancoa M
- Biebel O
- Bieniek SR
- Bierwagen K
- Biesiada J
- Bigliettia M
- Bilokon H
- Bindia M
- Binet S
- Bingulc A
- Binia C
- Biscarat C
- Bitenc U
- Black KM
- Blair RE
- Blanchard J-B
- Blanchot G
- Blazeka T
- Blocker C
- Blocki J
- Blondel A
- Blum W
- Blumenschein U
- Bobbink GJ
- Bobrovnikov VB
- Bocchetta SS
- Bocci A
- Boddy CR
- Boehler M
- Boek J
- Boelaert N
- Boeriu OEV
- Boeser S
- Bogaerts JA
- Bogdanchikov A
- Bogouch A
- Bohma C
- Boisvert V
- Bold T
- Boldeaa V
- Bolnet NM
- Bona M
- Bondarenko VG
- Bondioli M
- Boonekamp M
- Boorman G
- Booth CN
- Bordoni S
- Borer C
- Borisov A
- Borissov G
- Borjanovica I
- Borronia S
- Bos K
- Boscherinia D
- Bosman M
- Boterenbrood H
- Botterill D
- Bouchami J
- Boudreau J
- Bouhova-Thacker EV
- Bourdarios C
- Bousson N
- Boveia A
- Boyd J
- Boyko IR
- Bozhko NI
- Bozovic-Jelisavcicb I
- Bracinik J
- Braem A
- Branchinia P
- Brandenburg GW
- Brandt A
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- Brandt O
- Bratzler U
- Brau B
- Brau JE
- Braun HM
- Brelier B
- Bremer J
- Brenner R
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- Breton D
- Britton D
- Brochu FM
- Brock I
- Brock R
- Brodbeck TJ
- Brodet E
- Broggia F
- Bromberg C
- Brooijmans G
- Brooksb WK
- Brown G
- Brown H
- Bruckman de Renstrom PA
- Bruncko D
- Bruneliere R
- Brunet S
- Brunia A
- Brunia G
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- Buanes T
- Bucci F
- Buchanan J
- Buchanan NJ
- Buchholz P
- Buckingham RM
- Buckley AG
- Budaa SI
- Budagov IA
- Budick B
- Buescher V
- Bueso XP
- Bugge L
- Buira-Clark D
- Bulekov O
- Bunse M
- Buran T
- Burckhart H
- Burdin S
- Burgess T
- Burke S
- Busato E
- Bussey P
- Buszello CP
- Butin F
- Butler B
- Butler JM
- Buttar CM
- Butterworth JM
- Buttinger W
- Byatt T
- Cabrera Urban S
- Caforioa D
- Cakir IT
- Cakira O
- Calafiura P
- Calderini G
- Calfayan P
- Calkins R
- Calobaa LP
- Caloia R
- Calvet D
- Calvet S
- Camarri P
- Cambiaghia M
- Cameron D
- Camillocci ES
- Campana S
- Campanelli M
- Canalea V
- Canelli F
- Canepaa A
- Cantero J
- Capassoa L
- Caprinia I
- Caprinia M
- Capriotti D
- Capuaa M
- Caputo R
- Cardarelli R
- Carli T
- Carlinoa G
- Carminatia L
- Caron S
- Carona B
- Carter AA
- Carter JR
- Carvalhoa J
- Casadei D
- Casado MP
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- Casoa C
- Castaneda-Miranda E
- Castanheira MTD
- Castillo Gimenez V
- Castillo LRF
- Castro NF
- Cataldia G
- Cataneo F
- Catinaccio A
- Catmore JR
- Cattai A
- Cattani G
- Caughron S
- Cauza D
- Cavalcanti TP
- Cavalleri P
- Cavalli-Sforza M
- Cavallia D
- Cavasinnia V
- Ceradinia F
- Cerqueiraa AS
- Cerri A
- Cerrito L
- Cerutti F
- Cetinb SA
- Ceveninia F
- Chafaqa A
- Chakraborty D
- Chan K
- Chapleau B
- Chapman JD
- Chapman JW
- Chareyre E
- Charlton DG
- Chavda V
- Cheatham S
- Chekanov S
- Chekulaeva SV
- Chelkov GA
- Chelstowska MA
- Chen C
- Chen H
- Chen X
- Chenc S
- Chenc T
- Chenga S
- Cheong ALF
- Cheplakov A
- Chepurnov VF
- Cherkaoui El Moursli R
- Chernyatin V
- Cheu E
- Cheung SL
- Chevalier L
- Chiefaria G
- Chikovani L
- Childersa JT
- Chilingarov A
- Chiodinia G
- Chizhov MV
- Choudalakis G
- Chouridou S
- Christidi IA
- Christov A
- Chromek-Burckhart D
- Chu ML
- Chudoba J
- Ciapettia G
- Ciba K
- Ciftcia AK
- Ciftcia R
- Cinca D
- Cindro V
- Ciobotaru MD
- Cioccaa C
- Ciocio A
- Cirilli M
- Ciubancana M
- Clark A
- Clark PJ
- Cleland W
- Clemens JC
- Clement B
- Clementa C
- Clifft RW
- Coadou Y
- Cobala M
- Coccaroa A
- Cochran J
- Coe P
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- Yagci KD
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- Yamaguchi H
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- Zhemchugov A
- Zheng S
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- Zieminska D
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- Zimmermann S
- Zimmermann S
- Ziolkowski M
- Zitoun R
- Zivkovic L
- Zmouchko VV
- Zobernig G
- Zoccoli A
- Zolnierowski Y
- Zsenei A
- zur Nedden M
- Zutshi V
- Zwalinski L
- Publication venue
- 'Elsevier BV'
- Publication date
- 01/01/2011
- Field of study
A measurement is presented of the inclusive cross-section for b-jet production in association with a Z boson in pp collisions at a centre-of-mass energy of root s = 7 TeV. The analysis uses the data sample collected by the ATLAS experiment in 2010, corresponding to an integrated luminosity of approximately 36 pb(-1). The event selection requires a Z boson decaying into high P-T electrons or muons, and at least one b-jet, identified by its displaced vertex, with transverse momentum p(T) > 25 GeV and rapidity vertical bar y vertical bar < 2.1. After subtraction of background processes, the yield is extracted from the vertex mass distribution of the candidate b-jets. The ratio of this cross-section to the inclusive Z cross-section (the average number of b-jets per Z event) is also measured. Both results are found to be in good agreement with perturbative QCD predictions at next-to-leading order
Antiinflammatory Therapy with Canakinumab for Atherosclerotic Disease
- Author
- A Abbate
- A Abhyankar
- A Adams
- A Agafina
- A Akyea-Djamson
- A Alan
- A Alfieri
- A Alfrey
- A Alvarisqueta
- A Amos
- A Anadiotis
- A Anneveldt
- A Antolick
- A Arthur
- A Aslam
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- Abdullakutty J
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- Yaoqing H
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- Yokoyama M
- Yong H
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- Youssef G
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- Yupanqui H
- Z Zhai
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- Zadionchenko V
- Zadra R
- Zagozen P
- Zaidman C
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- Zareczky P
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- Zdrenghea D
- Zebrack J
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- Zielinski M
- Zieve F
- Zineldine A.
- Zirlik A
- Zucchetti C
- Publication venue
- 'Massachusetts Medical Society'
- Publication date
- 01/01/2017
- Field of study
Background: Experimental and clinical data suggest that reducing inflammation without affecting lipid levels may reduce the risk of cardiovascular disease. Yet, the inflammatory hypothesis of atherothrombosis has remained unproved. Methods: We conducted a randomized, double-blind trial of canakinumab, a therapeutic monoclonal antibody targeting interleukin-1β, involving 10,061 patients with previous myocardial infarction and a high-sensitivity C-reactive protein level of 2 mg or more per liter. The trial compared three doses of canakinumab (50 mg, 150 mg, and 300 mg, administered subcutaneously every 3 months) with placebo. The primary efficacy end point was nonfatal myocardial infarction, nonfatal stroke, or cardiovascular death. RESULTS: At 48 months, the median reduction from baseline in the high-sensitivity C-reactive protein level was 26 percentage points greater in the group that received the 50-mg dose of canakinumab, 37 percentage points greater in the 150-mg group, and 41 percentage points greater in the 300-mg group than in the placebo group. Canakinumab did not reduce lipid levels from baseline. At a median follow-up of 3.7 years, the incidence rate for the primary end point was 4.50 events per 100 person-years in the placebo group, 4.11 events per 100 person-years in the 50-mg group, 3.86 events per 100 person-years in the 150-mg group, and 3.90 events per 100 person-years in the 300-mg group. The hazard ratios as compared with placebo were as follows: in the 50-mg group, 0.93 (95% confidence interval [CI], 0.80 to 1.07; P = 0.30); in the 150-mg group, 0.85 (95% CI, 0.74 to 0.98; P = 0.021); and in the 300-mg group, 0.86 (95% CI, 0.75 to 0.99; P = 0.031). The 150-mg dose, but not the other doses, met the prespecified multiplicity-adjusted threshold for statistical significance for the primary end point and the secondary end point that additionally included hospitalization for unstable angina that led to urgent revascularization (hazard ratio vs. placebo, 0.83; 95% CI, 0.73 to 0.95; P = 0.005). Canakinumab was associated with a higher incidence of fatal infection than was placebo. There was no significant difference in all-cause mortality (hazard ratio for all canakinumab doses vs. placebo, 0.94; 95% CI, 0.83 to 1.06; P = 0.31). Conclusions: Antiinflammatory therapy targeting the interleukin-1β innate immunity pathway with canakinumab at a dose of 150 mg every 3 months led to a significantly lower rate of recurrent cardiovascular events than placebo, independent of lipid-level lowering. (Funded by Novartis; CANTOS ClinicalTrials.gov number, NCT01327846.
HE-LHC: The High-Energy Large Hadron Collider: Future Circular Collider Conceptual Design Report Volume 4
- Author
- Abada A
- Abbrescia M
- AbdusSalam SS
- Abdyukhanov I
- Abelleira Fernandez J
- Abramov A
- Aburaia M
- Acar AO
- Adzic PR
- Agrawal P
- Aguilar-Saavedra JA
- Aguilera-Verdugo JJ
- Aiba M
- Aichinger I
- Aielli G
- Akay A
- Akhundov A
- Aksakal H
- Albacete JL
- Albergo S
- Alekou A
- Aleksa M
- Aleksan R
- Alemany Fernandez RM
- Alexahin Y
- Alia RG
- Alioli S
- Alipour Tehrani N
- Allanach BC
- Allport PP
- Altinli M
- Altmannshofer W
- Ambrosio G
- Amorim D
- Amstutz O
- Anderlini L
- Andreazza A
- Andreini M
- Andriatis A
- Andris C
- Andronic A
- Angelucci M
- Antinori F
- Antipov SA
- Antonelli M
- Antonello M
- Antonioli P
- Antusch S
- Anulli F
- Apolinario L
- Apollinari G
- Apollonio A
- Appeloe D
- Appleby RB
- Apyan A
- Apyan A
- Arbey A
- Arbuzov A
- Arduini G
- Ari V
- Arias S
- Armesto N
- Arnaldi R
- Arsenyev SA
- Arzeo M
- Asai S
- Aslanides E
- Assmann RW
- Astapovych D
- Atanasov M
- Atieh S
- Attie D
- Auchmann B
- Audurier A
- Aull S
- Aumon S
- Aune S
- Avino F
- Avrillaud G
- Aydin G
- Azatov A
- Azuelos G
- Azzi P
- Azzolini O
- Azzurri P
- Bacchetta N
- Bacchiocchi E
- Bachacou H
- Baek YW
- Baglin V
- Bai Y
- Baird S
- Baker MJ
- Baldwin MJ
- Ball AH
- Ballarino A
- Banerjee S
- Barber DP
- Barducci D
- Barjhoux P
- Barna D
- Barnafoldi GG
- Barnes MJ
- Barr A
- Barranco Garcia J
- Barreiro Guimaraes da Costa J
- Bartmann W
- Baryshevsky V
- Barzi E
- Bass SA
- Bastianin A
- Baudouy B
- Bauer F
- Bauer M
- Baumgartner T
- Bautista-Guzman I
- Bayindir C
- Beaudette F
- Bedeschi F
- Beguin M
- Bellafont I
- Bellagamba L
- Bellegarde N
- Belli E
- Bellingeri E
- Bellini F
- Bellomo G
- Belomestnykh S
- Bencivenni G
- Benedikt M
- Bernardi G
- Bernardi J
- Bernet C
- Bernhardt JM
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- Yao W-M
- Yazgan E
- Yermolchik V
- Yilmaz A
- Yilmaz A
- Yoo H-D
- Yost SA
- You T
- Young C
- Yu F
- Yu T-T
- Zaborowska A
- Zadeh SG
- Zahnd M
- Zanetti M
- Zanotto L
- Zawiejski L
- Zeiler P
- Zerlauth M
- Zernov SM
- Zevi Dell Porta G
- Zhang C
- Zhang H
- Zhang Y
- Zhang Z
- Zhao Z
- Zhong Y-M
- Zhou D
- Zhou J
- Zhuang P
- Zick G
- Zimmermann F
- Zinn-Justin J
- Zivkovic L
- Zlobin AV
- Zobov M
- Zupan J
- Zurita J
- Publication venue
- SPRINGER HEIDELBERG
- Publication date
- 01/07/2019
- Field of study
In response to the 2013 Update of the European Strategy for Particle Physics (EPPSU), the Future Circular Collider (FCC) study was launched as a world-wide international collaboration hosted by CERN. The FCC study covered an energy-frontier hadron collider (FCC-hh), a highest-luminosity high-energy lepton collider (FCC-ee), the corresponding 100 km tunnel infrastructure, as well as the physics opportunities of these two colliders, and a high-energy LHC, based on FCC-hh technology. This document constitutes the third volume of the FCC Conceptual Design Report, devoted to the hadron collider FCC-hh. It summarizes the FCC-hh physics discovery opportunities, presents the FCC-hh accelerator design, performance reach, and staged operation plan, discusses the underlying technologies, the civil engineering and technical infrastructure, and also sketches a possible implementation. Combining ingredients from the Large Hadron Collider (LHC), the high-luminosity LHC upgrade and adding novel technologies and approaches, the FCC-hh design aims at significantly extending the energy frontier to 100 TeV. Its unprecedented centre-of-mass collision energy will make the FCC-hh a unique instrument to explore physics beyond the Standard Model, offering great direct sensitivity to new physics and discoveries
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