78 research outputs found
Open data from the third observing run of LIGO, Virgo, KAGRA, and GEO
- Author
- Abbott R.
- Abe H.
- Acernese F.
- Ackley K.
- Adhicary S.
- Adhikari N.
- Adhikari R.X.
- Adkins V.K.
- Adya V.B.
- Affeldt C.
- Agarwal D.
- Agathos M.
- Aguiar O.D.
- Aiello L.
- Ain A.
- Ajith P.
- Akutsu T.
- Al-Jodah A.
- Albanesi S.
- Alfaidi R.A.
- Allocca A.
- Alléné C.
- Almualla M.
- Altin P.A.
- Amato A.
- Amez-Droz L.
- Amorosi A.
- Anand S.
- Ananyeva A.
- Andersen R.
- Anderson S.B.
- Anderson W.G.
- Andia M.
- Ando M.
- Andrade T.
- Andres N.
- AndriÄ T.
- Andrés-Carcasona M.
- Ansoldi S.
- Antelis J.M.
- Antier S.
- Aoumi M.
- Apostolatos T.
- Appavuravther E.Z.
- Appert S.
- Apple S.K.
- Arai K.
- Araya A.
- Araya M.C.
- Areeda J.S.
- Arellano F.E.P.
- Aritomi N.
- Arnaud N.
- Arogeti M.
- Aronson S.M.
- Arun K.G.
- ArĂšne M.
- Asada H.
- Ashton G.
- Aso Y.
- Assiduo M.
- Assis de Souza Melo S.
- Aston S.M.
- Astone P.
- Aubin F.
- AultONeal K.
- Babak S.
- Badalyan A.
- Badaracco F.
- Badger C.
- Bae S.
- Bagnasco S.
- Bai Y.
- Baier J.G.
- Baiotti L.
- Baird J.
- Bajpai R.
- Baka T.
- Ball M.
- Ballardin G.
- Ballmer S.W.
- Baltus G.
- Banagiri S.
- Banerjee B.
- Bankar D.
- Baral P.
- Barayoga J.C.
- Barber J.
- Barish B.C.
- Barker D.
- Barneo P.
- Barone F.
- Barr B.
- Barsotti L.
- Barsuglia M.
- Barta D.
- Barthelmy S.D.
- Barton M.A.
- Bartos I.
- Basak S.
- Basalaev A.
- Bassiri R.
- Basti A.
- Bawaj M.
- Bayley J.C.
- Baylor A.C.
- Bazzan M.
- Bedakihale V.M.
- Beirnaert F.
- Bejger M.
- Bell A.S.
- Benedetto V.
- Beniwal D.
- Benoit W.
- Bentley J.D.
- Bera S.
- Berbel M.
- Bergamin F.
- Berger B.K.
- Bernuzzi S.
- Beroiz M.
- Berry C.P.L.
- Bersanetti D.
- Bertolini A.
- Betzwieser J.
- Beveridge D.
- Bevins N.
- Bhandare R.
- Bhandari A.V.
- Bhardwaj U.
- Bhatt R.
- Bhattacharjee D.
- Bhaumik S.
- Bianchi A.
- Bilenko I.A.
- Bilicki M.
- Billingsley G.
- Bini S.
- Birnholtz O.
- Biscans S.
- Bischi M.
- Biscoveanu S.
- Bisht A.
- Biswas B.
- Bitossi M.
- Bizouard M.-A.
- Blackburn J.K.
- Blair C.D.
- Blair D.G.
- Blair R.M.
- Bobba F.
- Bode N.
- Bogaert G.
- Boileau G.
- Boldrini M.
- Bolingbroke G.N.
- Bonavena L.D.
- Bondarescu R.
- Bondu F.
- Bonilla E.
- Bonilla G.S.
- Bonnand R.
- Booker P.
- Bork R.
- Boschi V.
- Bose N.
- Bose S.
- Bossilkov V.
- Boudart V.
- Bouffanais Y.
- Bozzi A.
- Boër M.
- Bradaschia C.
- Brady P.R.
- Braglia M.
- Branch A.
- Branchesi M.
- Brau J.E.
- Breschi M.
- Briant T.
- Brillet A.
- Brinkmann M.
- Brockill P.
- Brooks A.F.
- Brooks J.
- Brown D.D.
- Brunett S.
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- Buchanan J.
- Bulashenko O.
- Bulik T.
- Bulten H.J.
- Buonanno A.
- Burtnyk K.
- Buscicchio R.
- Buskulic D.
- Buy C.
- Byer R.L.
- BĂ©csy B.
- Cabourn Davies G.S.
- Cabras G.
- Cabrita R.
- Cadonati L.
- Caesar S.
- Cagnoli G.
- Cahillane C.
- CalderĂłn Bustillo J.
- Callaghan J.D.
- Callister T.A.
- Calloni E.
- Camp J.B.
- Canepa M.
- Cannavacciuolo M.
- Cannon K.C.
- Cao H.
- Cao Z.
- Capistran L.A.
- Capocasa E.
- Capote E.
- Carapella G.
- Carbognani F.
- Carlassara M.
- Carlin J.B.
- Carpinelli M.
- Carter J.J.
- Carullo G.
- Casanueva Diaz J.
- Casentini C.
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- Castro-Lucas S.Y.
- Caudill S.
- CavagliĂ M.
- Cavalieri R.
- Cella G.
- CerdĂĄ-DurĂĄn P.
- Cesarini E.
- Chaibi W.
- Chakalis W.
- Chalathadka Subrahmanya S.
- Champion E.
- Chan C.
- Chan C.L.
- Chandra K.
- Chang I.P.
- Chang W.
- Chanial P.
- Chao S.
- Chapman-Bird C.
- Charlton E.L.
- Charlton P.
- Chassande-Mottin E.
- Chastain L.
- Chatterjee C.
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- Chatterjee D.
- Chaturvedi M.
- Chaty S.
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- Chaudhary S.S.
- Chen D.
- Chen H.
- Chen H.Y.
- Chen J.
- Chen K.H.
- Chen X.
- Chen Y.
- Chen Y.-R.
- Cheng H.
- Chessa P.
- Cheung H.Y.
- Chia H.Y.
- Chiadini F.
- Chiang C.
- Chiang C.-I.
- Chiarini G.
- Chiba A.
- Chiba R.
- Chierici R.
- Chincarini A.
- Chiofalo M.L.
- Chiummo A.
- Choudhary S.
- Christensen N.
- Chua S.S.Y.
- Chung K.W.
- Ciani G.
- Ciecielag P.
- CieĆlar M.
- Cifaldi M.
- Ciobanu A.A.
- Ciolfi R.
- Clara F.
- Clark J.A.
- Clarke T.A.
- Clearwater P.
- Clesse S.
- Cleva F.
- Coccia E.
- Codazzo E.
- Cohadon P.-F.
- Colleoni M.
- Collette C.G.
- Colombo A.
- Colpi M.
- Compton C.M.
- Conti L.
- Cooper S.J.
- Corban P.
- Corbitt T.R.
- Cordero-CarriĂłn I.
- Corezzi S.
- Cornish N.J.
- Corsi A.
- Cortese S.
- Coschizza A.C.
- Cottingham R.
- Coughlin M.W.
- Coulon J.-P.
- Countryman S.T.
- Coupechoux J.-F.
- Cousins B.
- Couvares P.
- Coward D.M.
- Cowart M.J.
- Cowburn B.D.
- Coyne D.C.
- Coyne R.
- Craig K.
- Creighton J.D.E.
- Creighton T.D.
- Criswell A.W.
- Crockett-Gray J.C.G.
- Croquette M.
- Crowder S.G.
- Cudell J.R.
- Cullen T.J.
- Cumming A.
- Cummings R.
- Cuoco E.
- CuryĆo M.
- Dabadie P.
- Dal Canton T.
- DallâOsso S.
- Danilishin S.
- Danzmann K.
- Darroch K.E.
- Darsow-Fromm C.
- Dasgupta A.
- Datrier L.E.H.
- Datta S.
- Dattilo V.
- Dave I.
- Davenport A.
- Davier M.
- Davis D.
- Davis M.C.
- Daw E.J.
- Dax M.
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- De Lillo F.
- De Lillo N.
- De Matteis F.
- De Pietri R.
- De Rosa R.
- De Rossi C.
- De Simone R.
- DeBra D.
- Deenadayalan M.
- Degallaix J.
- Del Favero V.
- Del Pozzo W.
- DellâAquila D.
- Deléglise S.
- Demos N.
- Dent T.
- Depasse A.
- DeSalvo R.
- Dhurandhar S.
- Di Fiore L.
- Di Fronzo C.
- Di Giorgio C.
- Di Giovanni F.
- Di Giovanni M.
- Di Girolamo T.
- Di Lieto A.
- Di Michele A.
- Di Pace S.
- Di Palma I.
- Di Renzo F.
- Diab R.
- Diamond P.Z.
- Didio N.A.
- Dietrich T.
- Diksha D.
- Divyajyoti
- Dmitriev A.
- Doctor Z.
- Dohmen E.
- Doleva P.P.
- Donahue L.
- Donovan F.
- Dooley K.L.
- Dooney T.
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- Dorosh O.
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- Drori Y.
- Ducoin J.-G.
- Dunn L.
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- Durante O.
- Duverne P.-A.
- Dwyer S.E.
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- DĂaz M.C.
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- DâUrso D.
- e Melo I.T.
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- Ebersold M.
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- Edy O.
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- Eisenmann M.
- Eisenstein R.A.
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- Engelby E.
- Engl A.J.
- Errico L.
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- Estellés H.
- Estevez D.
- Etzel T.
- Evans C.
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- Ewing B.E.
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- Fafone V.
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- Fan X.
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- Fauchon-Jones E.J.
- Favaro G.
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- Fays M.
- Feicht J.
- Fejer M.M.
- Fenyvesi E.
- Ferguson D.L.
- Fernandez-Galiana A.
- Ferrante I.
- Ferreira T.A.
- Fidecaro F.
- Figura P.
- Fiori A.
- Fiori I.
- Fishbach M.
- Fisher R.P.
- Fittipaldi R.
- Fiumara V.
- Flaminio R.
- Fleischer S.M.
- Fleming L.S.
- Floden E.
- Fong H.K.
- Font J.A.
- Fornal B.
- Forsyth P.W.F.
- Franke A.
- Frasca S.
- Frasconi F.
- Freed J.P.
- Frei Z.
- Freise A.
- Freitas O.
- Frey R.
- Fritschel P.
- Frolov V.V.
- Fronzé G.G.
- Fujimoto Y.
- Fukunaga I.
- Fulda P.
- Fyffe M.
- Gabbard H.A.
- Gabella W.E.
- Gadre B.U.
- Gaglani K.
- Gair J.R.
- Gais J.
- Galaudage S.
- Gallardo S.
- Gamba R.
- Ganapathy D.
- Ganguly A.
- Gao D.
- Gaonkar S.G.
- Garaventa B.
- Garcia-Bellido J.
- GarcĂa-NĂșñez C.
- GarcĂa-QuirĂłs C.
- Gardner K.A.
- Gargiulo J.
- Garufi F.
- Gasbarra C.
- Gateley B.
- Gayathri V.
- Gemme G.
- Gennai A.
- George J.
- Gerberding O.
- Gergely L.
- Ghonge S.
- Ghosh A.
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- Ghosh S.
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- Giacoppo L.
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- Giardina K.D.
- Gibson D.R.
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- Gleckl A.E.
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- Godfrey J.
- Godwin P.
- Goetz E.
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- Golomb J.
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- GonzĂĄlez G.
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- Graham V.
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- Greco G.
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- Gretarsson A.M.
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- Griffith D.
- Griffiths W.L.
- Griggs H.L.
- Grignani G.
- Grimaldi A.
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- Guerra D.
- Guetta D.
- Guidi G.M.
- Guimaraes A.R.
- Gulati H.K.
- Gulminelli F.
- Gunny A.M.
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- Gutierrez N.
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- Publication venue
- American Astronomical Society
- Publication date
- 01/01/2023
- Field of study
The global network of gravitational-wave observatories now includes five detectors, namely LIGO Hanford, LIGO Livingston, Virgo, KAGRA, and GEO 600. These detectors collected data during their third observing run, O3, composed of three phases: O3a starting in 2019 April and lasting six months, O3b starting in 2019 November and lasting five months, and O3GK starting in 2020 April and lasting two weeks. In this paper we describe these data and various other science products that can be freely accessed through the Gravitational Wave Open Science Center at https://gwosc.org. The main data set, consisting of the gravitational-wave strain time series that contains the astrophysical signals, is released together with supporting data useful for their analysis and documentation, tutorials, as well as analysis software packages
Search for gravitational-wave transients associated with magnetar bursts in advanced LIGO and advanced Virgo data from the third observing run
- Author
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- Abe H
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- Yeh S.-W
- Yelikar A.B
- Ying M
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- Yokozawa T
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- Publication venue
- American Astronomical Society
- Publication date
- 01/01/2024
- Field of study
Gravitational waves are expected to be produced from neutron star oscillations associated with magnetar giant f lares and short bursts. We present the results of a search for short-duration (milliseconds to seconds) and longduration (âŒ100 s) transient gravitational waves from 13 magnetar short bursts observed during Advanced LIGO, Advanced Virgo, and KAGRAâs third observation run. These 13 bursts come from two magnetars, SGR1935 +2154 and SwiftJ1818.0â1607. We also include three other electromagnetic burst events detected by FermiGBM which were identified as likely coming from one or more magnetars, but they have no association with a known magnetar. No magnetar giant flares were detected during the analysis period. We find no evidence of gravitational waves associated with any of these 16 bursts. We place upper limits on the rms of the integrated incident gravitational-wave strain that reach 3.6 Ă 10âÂČÂł Hz at 100 Hz for the short-duration search and 1.1 Ă10âÂČÂČ Hz at 450 Hz for the long-duration search. For a ringdown signal at 1590 Hz targeted by the short-duration search the limit is set to 2.3 Ă 10âÂČÂČ Hz. Using the estimated distance to each magnetar, we derive upper limits upper limits on the emitted gravitational-wave energy of 1.5 Ă 1044 erg (1.0 Ă 1044 erg) for SGR 1935+2154 and 9.4 Ă 10^43 erg (1.3 Ă 1044 erg) for Swift J1818.0â1607, for the short-duration (long-duration) search. Assuming isotropic emission of electromagnetic radiation of the burst ïŹuences, we constrain the ratio of gravitational-wave energy to electromagnetic energy for bursts from SGR 1935+2154 with the available ïŹuence information. The lowest of these ratios is 4.5 Ă 103
A joint Fermi-GBM and Swift-BAT analysis of gravitational-wave candidates from the third gravitational-wave observing run
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- Zweizig J.
- Publication venue
- American Astronomical Society
- Publication date
- 01/04/2024
- Field of study
We present Fermi Gamma-ray Burst Monitor (Fermi-GBM) and Swift Burst Alert Telescope (Swift-BAT) searches for gamma-ray/X-ray counterparts to gravitational-wave (GW) candidate events identified during the third observing run of the Advanced LIGO and Advanced Virgo detectors. Using Fermi-GBM onboard triggers and subthreshold gamma-ray burst (GRB) candidates found in the Fermi-GBM ground analyses, the Targeted Search and the Untargeted Search, we investigate whether there are any coincident GRBs associated with the GWs. We also search the Swift-BAT rate data around the GW times to determine whether a GRB counterpart is present. No counterparts are found. Using both the Fermi-GBM Targeted Search and the Swift-BAT search, we calculate flux upper limits and present joint upper limits on the gamma-ray luminosity of each GW. Given these limits, we constrain theoretical models for the emission of gamma rays from binary black hole mergers
Constraints on the cosmic expansion history from GWTCâ3
- Author
- Abbott R.
- Abe H.
- Acernese F.
- Ackley K.
- Adhikari N.
- Adhikari R.X.
- Adkins V.K.
- Adya V.B.
- Affeldt C.
- Agarwal D.
- Agathos M.
- Agatsuma K.
- Aggarwal N.
- Aguiar O.D.
- Aiello L.
- Ain A.
- Ajith P.
- Akutsu T.
- Albanesi S.
- Alfaidi R.A.
- Allocca A.
- Altin P.A.
- Amato A.
- Anand C.
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- Publication venue
- 'American Astronomical Society'
- Publication date
- 01/06/2023
- Field of study
We use 47 gravitational wave sources from the Third LIGOâVirgoâKamioka Gravitational Wave Detector Gravitational Wave Transient Catalog (GWTCâ3) to estimate the Hubble parameter H(z), including its current value, the Hubble constant H0. Each gravitational wave (GW) signal provides the luminosity distance to the source, and we estimate the corresponding redshift using two methods: the redshifted masses and a galaxy catalog. Using the binary black hole (BBH) redshifted masses, we simultaneously infer the source mass distribution and H(z). The source mass distribution displays a peak around 34 Mâ, followed by a drop-off. Assuming this mass scale does not evolve with the redshift results in a H(z) measurement, yielding H0â=68â8+12âkm  sâ1Mpcâ1 (68% credible interval) when combined with the H0 measurement from GW170817 and its electromagnetic counterpart. This represents an improvement of 17% with respect to the H0 estimate from GWTCâ1. The second method associates each GW event with its probable host galaxy in the catalog GLADE+, statistically marginalizing over the redshifts of each event's potential hosts. Assuming a fixed BBH population, we estimate a value of H0â=68â6+8âkm  sâ1Mpcâ1 with the galaxy catalog method, an improvement of 42% with respect to our GWTCâ1 result and 20% with respect to recent H0 studies using GWTCâ2 events. However, we show that this result is strongly impacted by assumptions about the BBH source mass distribution; the only event which is not strongly impacted by such assumptions (and is thus informative about H0) is the well-localized event GW190814
Not Available
- Publication venue
- Not Available
- Publication date
- 01/01/2018
- Field of study
Not AvailableRaoultella ornithinolyitca is a Gram-negative bacillus belongs to the family Enterobacteriaceae. We describe first isolation, identification and characterization of multiple drug resistant strain of Raoultella ornithinolytica isolated from Indian Major Carps, Labeo rohita (Hamilton, 1822) fishes from Chhattisgarh state of India. We describe antimicrobial resistant pattern of the isolate which could facilitate the transfer of genetic material among the other species and also indicates significant public health hazards by presence of multidrug resistant isolates in food chain. The study illustrates the importance of recognizing uncommon emerging pathogen from aquatic ecosystem that can cause significant diseases in humans as an opportunistic pathogen.Not Availabl
Enhancing resilience in costal agriculture through optimization of farm income: A farming system approach in Sunderbans region of West Bengal, India
- Publication venue
- Publication date
- 03/10/2018
- Field of study
The study was conducted in Sundarbans region of West Bengal, India with an objective of identifying and analyzing the economics of major farming systems and to suggest suitable farm plans for the study area. 180 sample farmers were chosen using multi-stage random sampling method from six villages of three from each Basanti and Kultali blocks. Fourteen major farming systems were identified among the various farming systems prevalent in the study area. Majority of the sample farmers were smallholders(84.53 %) who practiced cereal based farming system that is also limited to mono-cropping of kharif paddy (18.89%) followed by Cereal +Fish farming system (13.89 %) and subsequently Cereal + Dairy (12.78 %) farming system. A great transformation in the economic life of the farmers was possible through reallocation of their existing resources base and taking up alternative enterprises like vegetable farming, fishery, poultry farming and rearing dairy animals. At existing resource level, adoption of optimum plan M-I can increase net income by more than 25 per cent. The rearrangement of enterprise at enhanced resource level (optimum plan M-II) would increase the net income by more than 45 per cent than the existing plan with minimal risk.
Acknowledgement : I duly acknowledge all the support that I got in Bidhan Chandra Krishi Viswavidyalaya, Mohanpur, Nadia, West Bengal, India-741252 to successfully complete my PhD Thesis and awarding me with the degree of Doctor of Philosophy (Agriculture) in Agricultural Economics
Impact of Nonfarm Activity on Rural Income Inequality in South 24 Parganas District of West Bengal
- Publication venue
- Publication date
- 01/04/2017
- Field of study
High dielectric constants in BaTiO 3
- Publication venue
- 'Cambridge University Press (CUP)'
- Publication date
- Field of study
Not Available
- Author
- Publication venue
- Society for Applied Microbiology
- Publication date
- 13/09/2019
- Field of study
Not AvailableAim
To study the association of opportunistic infection due to Myroides odoratimimus in piglets immunocompromised by porcine circovirus type 2 (PCV2) infection.
Methods and Results
The clinical samples (n = 101) were analysed bacteriologically. The isolates were identified by their phenotypes and MALDI TOFâMS analysis as Myroides species. The phylogram constructed based on nucleotide sequences of the 16S rRNA gene showed identity (~99%) with the M. odoratimimus isolates. The minimum inhibitory concentration values for antibiotics revealed M. odoratimimus to be resistant against carbapenem, cephalosporins, aminoglycosides and fluoroquinolones. The presence of PCV2 in affected tissue samples was confirmed by amplification of the 565 bp region of ORF2 of the PCV2 genome. The topology of the phylogenetic tree grouped the PCV2 with clusterâ2d.
Conclusions
PCV2 being immunosuppressive in nature might have impaired the immunity thereby increasing the susceptibility of immunocompromised piglets to opportunistic pathogens such as M. odoratimimus leading to disease severity and high mortality. The M. odoratimimus isolates were found to be multidrug resistant and evidenced for uncertain clinical relevance and hence could act as hidden source of public health hazard.
Significance and Impact of the Study
Myroides odoratimimus is a rarely reported human pathogen. We reported the incidence of infection due to seemingly rare isolates of M. odoratimimus causing an outbreak of pneumonia in piglets. This appears, to the best of authors' knowledge, to be the first outbreak due to Myroides recorded in animal clinical cases described in the literature.Not Availabl
Not Available
- Publication venue
- 'Royal College of Obstetricians & Gynaecologists (RCOG)'
- Publication date
- 01/01/2018
- Field of study
Not AvailableLeclercia adecarboxylata, a Gram-negative bacillus of family Enterobacteriaceae, is an uncommonly identified pathogen isolated from environmental and clinical specimens. Most of the human infections are polymicrobial and commonly occur in immunocompromised hosts, although nosocomial infections in immunocompetent hosts have been documented. Here, we describe the case of isolation of Leclercia species as polymicrobial infection from bovine suffering from respiratory distress in Chhattisgarh state of India. The isolates were identified by their phenotypes, 16S rDNA sequencing and MALDI-TOF-MS. The isolate was found to be resistant to aminoglycosides and fluoroquinolone antibiotics and intermediate resistant to cephalosporins and evidenced for uncertain clinical relevance and could act as hidden source of public health hazard.
SIGNIFICANCE AND IMPACT OF THE STUDY:
Leclercia adecarboxylata is a rarely reported human pathogen. We report here the case from bovine suffering from respiratory distress; the sample yielded Leclercia species as polymicrobial culture. The isolate was found to be multidrug resistant and evidenced for uncertain clinical relevance and could act as hidden source of public health hazard. The limited literature available on this organism is reviewed, and the potential implications of findings are discussed. To the best of our knowledge, this is the first report of isolation and characterization of multidrug-resistant Leclercia species from animal clinical case from India.Not Availabl
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