R. Spencer, Potential bio-terror agents, Journal of Hospital Infection, vol.65, issue.2, pp.19-22, 2007.
DOI : 10.1016/S0195-6701(07)60008-5

S. , /. Sgdsn, . Pse, and . Psn-octobre, Plan national de prévention et de lutte 'pandémie grippale, 2011.

N. H. Horowitz, The Origin of Life, Annual Review of Genetics, vol.8, issue.1, pp.21-26, 1956.
DOI : 10.1146/annurev.ge.08.120174.002141

S. Riedel, Biological warfare and bioterrorism: a historical review Proc Bayl Univ Med Cent, pp.400-406, 2004.

D. Resnik, H5N1 Avian Flu Research and the Ethics of Knowledge, Hastings Center Report, vol.283, issue.3, pp.22-33, 2013.
DOI : 10.1002/hast.143

M. Enserink and M. D. Biosecurity, Will flu papers lead to new research oversight? Science, pp.20-22, 2012.

P. Anderson and G. Bokor, Bioterrorism: Pathogens as Weapons, Journal of Pharmacy Practice, vol.60, issue.12, pp.521-530, 2012.
DOI : 10.1177/0897190012456366

R. Atlas, Science and society: Bioterrorism and biodefence research: changing the focus of microbiology, Nature Reviews Microbiology, vol.421, issue.1, pp.70-74, 2003.
DOI : 10.1038/nrmicro728

A. Kaufmann, M. Meltzer, and G. Schmid, The Economic Impact of a Bioterrorist Attack: Are Prevention and Postattack Intervention Programs Justifiable?, Emerging Infectious Diseases, vol.3, issue.2, pp.83-94, 1997.
DOI : 10.3201/eid0302.970201

. Broché, Risques chimiques et biologiques -Equipier reconnaissance

R. Manchee, M. Broster, J. Melling, R. Henstridge, and A. Stagg, Bacillus anthracis on Gruinard Island, Nature, vol.172, issue.5838, pp.254-259, 1981.
DOI : 10.1038/294254a0

P. Bossi, A. Guihot, and F. Bricaire, Bioterrorisme/Maladies infectieuses -Infections émergentes ou réémergentes utilisables pour le bioterrorisme, 2008.
DOI : 10.1016/s0761-8425(04)71578-8

C. Roy, D. Reed, and J. Hutt, Aerobiology and Inhalation Exposure to Biological Select Agents and Toxins, Veterinary Pathology, vol.76, issue.5, pp.779-89, 2010.
DOI : 10.1089/jam.1997.10.105

]. Internet, Secrétariat général de la défense et de la sécurité nationale -Plans d'intervention " Pirate, Consultable sur Secrétariat général de la défense et de la sécurité nationale -Pour approfondir [Internet]. Consultable sur, 2013.

. Sgdn, CIRCULAIRE relative à la doctrine nationale d'emploi des moyens de secours et de soins face à une action terroriste mettant en oeuvre des matières radioactives. février, 2011.

. Sgdn, CIRCULAIRE relative à la doctrine nationale d'emploi des moyens de secours et de soins face à une action terroriste mettant en oeuvre des matières chimiques, 2008.

. Secrétariat-général-de-la-défense-et-de-la-sécurité-nationale, CIRCULAIRE relative à la découverte de plis, colis, contenants et substances suspectés de renfermer des agents radiologiques, biologiques ou chimiques dangereux, 2011.

. Liens-utiles-biotox-ansm, Agence nationale de sécurité du médicament et des produits de santé [Internet] Consultable sur: http://ansm.sante.fr/Dossiers/Biotox- Piratox-Piratome/Liens-utiles-Biotox, 2014.

L. Blanc-de-la-défense and . La-sécurité-nationale, Consultable sur: file, p.2013, 2014.

F. Thibault, F. Samuel, L. Lionel, and V. Dominique, R??ponse ?? la menace biologique : le r??seau des laboratoires Biotox-Piratox, Revue Francophone des Laboratoires, vol.2009, issue.415, pp.71-76, 2009.
DOI : 10.1016/S1773-035X(09)70132-7

C. N. Peyrefitte, F. Thibault, S. P. Peyrefitte, N. Tordo, D. Garin et al., Approche intégrée pour une réponse à la menace bioterroriste en France, EuroReference, 2012.

T. Catherine, Projet de loi de finances pour 2012 : Sécurité civile [Internet]. 112 p, Consultable sur, pp.22-29

B. Budowle, S. Schutzer, J. Burans, D. Beecher, T. Cebula et al., Quality Sample Collection, Handling, and Preservation for an Effective Microbial Forensics Program, Applied and Environmental Microbiology, vol.72, issue.10
DOI : 10.1128/AEM.01165-06

D. Lim, J. Simpson, E. Kearns, and M. Kramer, Current and Developing Technologies for Monitoring Agents of Bioterrorism and Biowarfare, Clinical Microbiology Reviews, vol.18, issue.4, pp.583-607, 2005.
DOI : 10.1128/CMR.18.4.583-607.2005

B. and J. Martha, Early and reliable detection and identification: an important element for efficient biodefense preparedness and response

L. Hodges, L. Rose, O. Connell, H. Arduino, and M. , National validation study of a swab protocol for the recovery of Bacillus anthracis spores from surfaces, Journal of Microbiological Methods, vol.81, issue.2, pp.141-147, 2010.
DOI : 10.1016/j.mimet.2010.02.010

M. Bergeron, Rapid polymerase chain reaction detection of bacteria and their antibiotic resistance genes: Improved management, better treatment, and less resistance, Current Infectious Disease Reports, vol.3, issue.3, pp.201-203, 2001.
DOI : 10.1007/s11908-001-0019-2

M. Boissinot and M. Bergeron, Toward rapid real-time molecular diagnostic to guide smart use of antimicrobials, Current Opinion in Microbiology, vol.5, issue.5, pp.478-82, 2002.
DOI : 10.1016/S1369-5274(02)00362-4

M. Bergeron and M. Ouellette, Preventing Antibiotic Resistance through Rapid Genotypic Identification of Bacteria and of Their Antibiotic Resistance Genes in the Clinical Microbiology Laboratory, J Clin Microbiol, vol.36, issue.8, pp.2169-72, 1998.

L. Jopling, Détection chimique, biologique, radiologique ou nucléaire (CBRN): apperçu des technologies, 2005.

A. Leask, V. Delpech, and J. Mcanulty, Anthrax and other suspect powders: initial responses to an outbreak of hoaxes and scares. New South Wales Public Health Bull, pp.11-12218, 2003.

M. Wade, M. Campbell, K. Niyogi, J. Rogers, J. Coughlin et al., Evaluation of an Inexpensive Field Test for Ruling Out the Presence of Biological Threat Agents in Suspicious Powders, Feb, 2006.

J. Lee and R. Deininger, A rapid screening method for the detection of viable spores in powder using bioluminescence, Luminescence, vol.19, issue.4, pp.209-220, 2004.
DOI : 10.1002/bio.775

C. Poore, P. Clark, and P. Emanuel, An evaluation of suspicious powder screening tools for first responders, Journal of Hazardous Materials, vol.172, issue.2-3, pp.559-65, 2009.
DOI : 10.1016/j.jhazmat.2009.05.142

D. Champiat, Atp-metrie pour detecter et denombrer les virus [Internet]. EP1812587 A1 Consultable sur: http://www.google.com/patents/EP1812587A1?cl=fr 56. Rapid assay, method and system for detecting biowarfare agents, 2014.

J. Simard, S. Buteau, P. Lahaie, P. Mathieu, G. Roy et al., BioSense/SR-BioSpectra demonstrations of wide area/early warning for bioaerosol threats: program description and early test and evaluation results, Optics and Photonics for Counterterrorism and Crime Fighting VII; Optical Materials in Defence Systems Technology VIII; and Quantum-Physics-based Information Security, pp.81890-81890, 2009.
DOI : 10.1117/12.894631

S. Sonea and M. Panisset, Introduction a la nouvelle bacteriologie. Presses de l, 1980.

S. Rollins, S. Rollins, and E. Ryan, Yersinia pestis and the Plague, Pathology Patterns Reviews, vol.119, issue.0, pp.78-85, 2003.
DOI : 10.1309/DQM93R8QNQWBFYU8

. Gov, Table 6: presumptive Bacillus anthracis identification and similar organisms [Internet], Consultable sur, 2014.

S. Orenga, A. James, M. Manafi, J. Perry, and D. Pincus, Enzymatic substrates in microbiology, Journal of Microbiological Methods, vol.79, issue.2, pp.139-55, 2009.
DOI : 10.1016/j.mimet.2009.08.001

D. Baltimore, Expression of animal virus genomes, Bacteriol Rev, vol.35, issue.3, pp.235-276, 1971.

B. Schweitzer and S. Kingsmore, Combining nucleic acid amplification and detection, Current Opinion in Biotechnology, vol.12, issue.1, pp.21-28, 2001.
DOI : 10.1016/S0958-1669(00)00172-5

G. Walker, M. Fraiser, J. Schram, M. Little, J. Nadeau et al., Strand displacement amplification?an isothermal, in vitro DNA amplification technique, Nucleic Acids Res, 1992.

F. Barany, Genetic disease detection and DNA amplification using cloned thermostable ligase., Proceedings of the National Academy of Sciences, vol.88, issue.1, pp.189-93, 1991.
DOI : 10.1073/pnas.88.1.189

J. Compton, Nucleic acid sequence-based amplification, Nature, vol.350, issue.6313, pp.91-93, 1991.
DOI : 10.1038/350091a0

M. Collins, B. Irvine, D. Tyner, E. Fine, C. Zayati et al., A branched DNA signal amplification assay for quantification of nucleic acid targets below 100 molecules/ml, Nucleic Acids Research, vol.25, issue.15, pp.2979-84, 1997.
DOI : 10.1093/nar/25.15.2979

M. Pfaller, Molecular Approaches to Diagnosing and Managing Infectious Diseases: Practicality and Costs, Emerging Infectious Diseases, vol.7, issue.2, pp.312-320, 2001.
DOI : 10.3201/eid0702.010234

P. Lizardi, X. Huang, Z. Zhu, P. Bray-ward, D. Thomas et al., Mutation detection and single-molecule counting using isothermal rolling-circle amplification, Nat Genet, 1998.

K. Mullis, F. Faloona, S. Scharf, R. Saiki, G. Horn et al., Specific Enzymatic Amplification of DNA In Vitro: The Polymerase Chain Reaction, Cold Spring Harbor Symposia on Quantitative Biology, vol.51, issue.0, pp.263-73, 1986.
DOI : 10.1101/SQB.1986.051.01.032

H. Erlich, Polymerase chain reaction, Journal of Clinical Immunology, vol.2, issue.6, pp.437-484, 1989.
DOI : 10.1007/BF00918012

S. Yang and R. Rothman, PCR-based diagnostics for infectious diseases: uses, limitations, and future applications in acute-care settings, The Lancet Infectious Diseases, vol.4, issue.6, pp.337-385, 2004.
DOI : 10.1016/S1473-3099(04)01044-8

V. Luna, D. King, C. Davis, T. Rycerz, M. Ewert et al., Novel Sample Preparation Method for Safe and Rapid Detection of Bacillus anthracis Spores in Environmental Powders and Nasal Swabs, Journal of Clinical Microbiology, vol.41, issue.3, pp.1252-1257, 2003.
DOI : 10.1128/JCM.41.3.1252-1255.2003

K. Anslinger, B. Bayer, R. B. Keil, W. Eisenmenger, and W. , Application of the BioRobot EZ1 in a forensic laboratory, Legal Medicine, vol.7, issue.3, pp.164-172, 2005.
DOI : 10.1016/j.legalmed.2005.01.002

M. Nagy, P. Otremba, C. Krüger, S. Bergner-greiner, P. Anders et al., Optimization and validation of a fully automated silica-coated magnetic beads purification technology in forensics, Forensic Science International, vol.152, issue.1, pp.13-22, 2005.
DOI : 10.1016/j.forsciint.2005.02.027

S. Greenspoon, J. Ban, K. Sykes, E. Ballard, S. Edler et al., Application of the BioMek?? 2000 Laboratory Automation Workstation and the DNA IQ??? System to the Extraction of Forensic Casework Samples, Journal of Forensic Sciences, vol.49, issue.1, pp.29-39, 2004.
DOI : 10.1520/JFS2003179

P. Rådström, R. Knutsson, P. Wolffs, M. Lövenklev, and C. Löfström, Pre-PCR Processing : Strategies to Generate PCR-Compatible Samples, Molecular Biotechnology, vol.26, issue.2, pp.133-179, 2004.
DOI : 10.1385/MB:26:2:133

F. Mao, W. Leung, and X. Xin, Characterization of EvaGreen and the implication of its physicochemical properties for qPCR applications, BMC Biotechnology, vol.7, issue.1, p.76, 2007.
DOI : 10.1186/1472-6750-7-76

P. Holland, R. Abramson, R. Watson, and D. Gelfand, Detection of specific polymerase chain reaction product by utilizing the 5'----3' exonuclease activity of Thermus aquaticus DNA polymerase., Proceedings of the National Academy of Sciences, vol.88, issue.16, pp.7276-80, 1991.
DOI : 10.1073/pnas.88.16.7276

A. Koshkin, S. Singh, P. Nielsen, V. Rajwanshi, R. Kumar et al., LNA (Locked Nucleic Acids): Synthesis of the adenine, cytosine, guanine, 5-methylcytosine, thymine and uracil bicyclonucleoside monomers, oligomerisation, and unprecedented nucleic acid recognition, Tetrahedron, vol.54, issue.14, pp.3607-3637, 1998.
DOI : 10.1016/S0040-4020(98)00094-5

M. Johansson and R. Cook, Intramolecular Dimers: A New Design Strategy for Fluorescence-Quenched Probes, Chemistry - A European Journal, vol.9, issue.15, pp.3466-71, 2003.
DOI : 10.1002/chem.200304941

S. Tyagi and F. Kramer, Molecular Beacons: Probes that Fluoresce upon Hybridization, Nature Biotechnology, vol.13, issue.3, pp.303-311, 1996.
DOI : 10.1073/pnas.93.18.9881

I. Nazarenko, B. Lowe, M. Darfler, P. Ikonomi, D. Schuster et al., Multiplex quantitative PCR using self-quenched primers labeled with a single fluorophore, Nucleic Acids Research, vol.30, issue.9, p.37, 2002.
DOI : 10.1093/nar/30.9.e37

D. Whitcombe, J. Theaker, S. Guy, T. Brown, and S. Little, Detection of PCR products using selfprobing amplicons and fluorescence, Nature Biotechnology, vol.17, issue.8, pp.804-811, 1999.
DOI : 10.1038/11751

L. Haff, Improved quantitative PCR using nested primers. PCR Methods Appl, 1994.

L. Malek, R. Sooknanan, and J. Compton, Nucleic Acid Sequence-Based Amplification (NASBA TM )
DOI : 10.1385/0-89603-254-x:253

M. Healy, H. J. Bittner, T. Lising, M. Frye, S. Raza et al., Microbial DNA Typing by Automated Repetitive-Sequence-Based PCR, Journal of Clinical Microbiology, vol.43, issue.1, pp.199-207, 2005.
DOI : 10.1128/JCM.43.1.199-207.2005

A. Renvoisé, F. Brossier, W. Sougakoff, V. Jarlier, and A. A. , Broad-range PCR: past, present, or future of bacteriology? Médecine Mal Infect, pp.322-352, 2013.

J. Chenau, F. Fenaille, V. Caro, M. Haustant, L. Diancourt et al., Identification and Validation of Specific Markers of Bacillus anthracis Spores by Proteomics and Genomics Approaches, Molecular & Cellular Proteomics, vol.13, issue.3, 2013.
DOI : 10.1074/mcp.M113.032946

T. Koehler, Bacillus anthracis Genetics and Virulence Gene Regulation, Anthrax [Internet], pp.143-64, 2002.
DOI : 10.1007/978-3-662-05767-4_7

M. Mock and F. A. Anthrax, Anthrax, Annual Review of Microbiology, vol.55, issue.1, pp.647-71, 2001.
DOI : 10.1146/annurev.micro.55.1.647

URL : https://hal.archives-ouvertes.fr/hal-00083712

A. Hoffmaster, J. Ravel, D. Rasko, G. Chapman, M. Chute et al., Identification of anthrax toxin genes in a Bacillus cereus associated with an illness resembling inhalation anthrax, Proceedings of the National Academy of Sciences, vol.101, issue.22, pp.8449-54, 2004.
DOI : 10.1073/pnas.0402414101

K. Lampel and P. Orlandi, Polymerase Chain Reaction Detection of Invasive Shigella and Salmonella enterica in Food, Methods Mol Biol Clifton NJ, vol.179, pp.235-279, 2002.
DOI : 10.1385/1-59259-238-4:235

R. Wang, W. Cao, and C. Cerniglia, A universal protocol for PCR detection of 13 species of foodborne pathogens in foods, Journal of Applied Microbiology, vol.83, issue.6, pp.727-763, 1997.
DOI : 10.1046/j.1365-2672.1997.00300.x

Q. Hu, D. Lyu, X. Shi, Y. Jiang, Y. Lin et al., A Modified Molecular Beacons???Based Multiplex Real-Time PCR Assay for Simultaneous Detection of Eight Foodborne Pathogens in a Single Reaction and Its Application, Foodborne Pathogens and Disease, vol.11, issue.3, 2013.
DOI : 10.1089/fpd.2013.1607

I. Janse, R. Hamidjaja, J. Bok, B. Rotterdam, and . Van, Reliable detection of Bacillus anthracis, Francisella tularensis and Yersinia pestis by using multiplex qPCR including internal controls for nucleic acid extraction and amplification, BMC Microbiol, vol.10, issue.1, p.314, 2010.

R. Charrel and X. De-lamballerie, Arenaviruses other than Lassa virus, Antiviral Research, vol.57, issue.1-2, 2003.
DOI : 10.1016/S0166-3542(02)00202-4

C. Drosten, B. Kümmerer, H. Schmitz, and S. Günther, Molecular diagnostics of viral hemorrhagic fevers, Antiviral Research, vol.57, issue.1-2, pp.61-87, 2003.
DOI : 10.1016/S0166-3542(02)00201-2

H. Ellerbrok, H. Nattermann, M. Özel, L. Beutin, B. Appel et al., by real-time PCR, FEMS Microbiology Letters, vol.214, issue.1, pp.51-60, 2002.
DOI : 10.1111/j.1574-6968.2002.tb11324.x

Y. Qi, G. Patra, X. Liang, L. Williams, S. Rose et al., Utilization of the rpoB Gene as a Specific Chromosomal Marker for Real-Time PCR Detection of Bacillus anthracis, Applied and Environmental Microbiology, vol.67, issue.8, pp.3720-3727, 2001.
DOI : 10.1128/AEM.67.8.3720-3727.2001

U. S. Epa, Protocol for Detection of Bacillus anthracis in Environmental Samples During the Remediation Phase of an Anthrax Event

S. Makino, H. I. Cheun, M. Watarai, I. Uchida, and K. Takeshi, Detection of anthrax spores from the air by real-time PCR, Letters in Applied Microbiology, vol.131, issue.3, pp.237-277, 2001.
DOI : 10.1001/archinte.158.5.429

S. Makino and H. Cheun, Application of the real-time PCR for the detection of airborne microbial pathogens in reference to the anthrax spores, Journal of Microbiological Methods, vol.53, issue.2, pp.141-148, 2003.
DOI : 10.1016/S0167-7012(03)00019-8

K. Mertens, L. Freund, G. Schmoock, C. Hänsel, F. Melzer et al., Comparative evaluation of eleven commercial DNA extraction kits for real-time PCR detection of Bacillus anthracis spores in spiked dairy samples, International Journal of Food Microbiology, vol.170, pp.29-37, 2014.
DOI : 10.1016/j.ijfoodmicro.2013.10.022

P. Welcome and . Diagnostics, eu by Ecoli -provides more than 500 different types of PCR diagnostic kits for clinical, veterinary diagnostics and GMO ? pcrdiagnostics, Consultable sur, 2014.

M. Lindström, R. Keto, A. Markkula, M. Nevas, S. Hielm et al., Multiplex PCR Assay for Detection and Identification of Clostridium botulinum Types A, B, E, and F in Food and Fecal Material, Applied and Environmental Microbiology, vol.67, issue.12, pp.5694-5703, 2001.
DOI : 10.1128/AEM.67.12.5694-5699.2001

S. Hielm, E. Hyytiä, J. Ridell, and H. Korkeala, Detection of Clostridium botulinum in fish and environmental samples using polymerase chain reaction, International Journal of Food Microbiology, vol.31, issue.1-3, pp.1-3357, 1996.
DOI : 10.1016/0168-1605(96)00984-1

D. Medici, D. Anniballi, F. Wyatt, G. Lindstrom, M. Messelhausser et al., Multiplex PCR for Detection of Botulinum Neurotoxin-Producing Clostridia in Clinical, Food, and Environmental Samples, Applied and Environmental Microbiology, vol.75, issue.20, pp.6457-61, 2009.
DOI : 10.1128/AEM.00805-09

D. Bausch, J. Towner, S. Dowell, F. Kaducu, M. Lukwiya et al., Assessment of the Risk of Ebola Virus Transmission from Bodily Fluids and Fomites, The Journal of Infectious Diseases, vol.196, issue.s2, pp.142-147, 2007.
DOI : 10.1086/520545

M. Weidmann, E. Mühlberger, and F. Hufert, Rapid detection protocol for filoviruses, Journal of Clinical Virology, vol.30, issue.1, pp.94-103, 2004.
DOI : 10.1016/j.jcv.2003.09.004

Y. Huang, H. Wei, Y. Wang, Z. Shi, R. H. Yuan et al., Rapid detection of filoviruses by real-time TaqMan polymerase chain reaction assays, Virologica Sinica, vol.72, issue.1???2, pp.273-280, 2012.
DOI : 10.1007/s12250-012-3252-y

C. Drosten, S. Göttig, S. Schilling, M. Asper, M. Panning et al., Rapid Detection and Quantification of RNA of Ebola and Marburg Viruses, Lassa Virus, Crimean-Congo Hemorrhagic Fever Virus, Rift Valley Fever Virus, Dengue Virus, and Yellow Fever Virus by Real-Time Reverse Transcription-PCR, Journal of Clinical Microbiology, vol.40, issue.7, pp.2323-2353, 2002.
DOI : 10.1128/JCM.40.7.2323-2330.2002

A. Grolla, A. Lucht, D. Dick, J. Strong, and H. Feldmann, Laboratory diagnosis of Ebola and Marburg hemorrhagic fever, Bull Société Pathol Exot, vol.98, issue.3, pp.205-214, 1990.

R. Sellek, O. Jimenez, C. Aizpurua, B. Fernandez-frutos, P. Leon et al., Recovery of Francisella tularensis from soil samples by filtration and detection by real-time PCR and cELISA, Journal of Environmental Monitoring, vol.16, issue.1, pp.362-371, 2008.
DOI : 10.1039/b716608g

M. Forsman, A. Nyrén, A. Sjöstedt, L. Sjökvist, and G. Sandström, Identification of Francisella tularensis in natural water samples by PCR, FEMS Microbiology Ecology, vol.16, issue.1, pp.83-92, 1995.
DOI : 10.1111/j.1574-6941.1995.tb00271.x

H. Sim?ek, M. Taner, A. Karadenizli, M. Ertek, and H. Vahabo?lu, Identification of Francisella tularensis by both culture and real-time TaqMan PCR methods from environmental water specimens in outbreak areas where tularemia cases were not previously reported, European Journal of Clinical Microbiology & Infectious Diseases, vol.41, issue.9, pp.2353-2360, 2012.
DOI : 10.1007/s10096-012-1576-z

A. Hauri, I. Hofstetter, E. Seibold, P. Kaysser, J. Eckert et al., Investigating an airborne tularemia outbreak, Germany. Emerg Infect Dis, Feb, vol.16, issue.2, pp.238-281, 2010.
DOI : 10.3201/eid1602.081727

URL : http://doi.org/10.3201/eid1602.081727

C. Whitehouse and H. Hottel, Comparison of five commercial DNA extraction kits for the recovery of Francisella tularensis DNA from spiked soil samples, Molecular and Cellular Probes, vol.21, issue.2, 2007.
DOI : 10.1016/j.mcp.2006.08.003

S. Ibrahim, M. Kulesh, D. Saleh, S. Damon, I. Esposito et al., Real-Time PCR Assay To Detect Smallpox Virus, Journal of Clinical Microbiology, vol.41, issue.8, pp.3835-3844, 2003.
DOI : 10.1128/JCM.41.8.3835-3839.2003

N. Scaramozzino, A. Ferrier-rembert, A. Favier, C. Rothlisberger, S. Richard et al., Real-Time PCR to Identify Variola Virus or Other Human Pathogenic Orthopox Viruses, Clinical Chemistry, vol.53, issue.4, pp.606-619, 2007.
DOI : 10.1373/clinchem.2006.068635

E. Hong-geller, Y. Valdez, Y. Shou, T. Yoshida, B. Marrone et al., sample collection from nonporous surfaces by quantitative real-time PCR, Letters in Applied Microbiology, vol.71, issue.4, pp.431-438, 2010.
DOI : 10.1111/j.1472-765X.2010.02821.x

A. Woron, E. Nazarian, C. Egan, K. Mcdonough, N. Cirino et al., Development and evaluation of a 4-target multiplex real-time polymerase chain reaction assay for the detection and characterization of Yersinia pestis, Diagnostic Microbiology and Infectious Disease, vol.56, issue.3, 2006.
DOI : 10.1016/j.diagmicrobio.2006.06.009

L. Dauphin, K. Stephens, S. Eufinger, and M. Bowen, Comparison of five commercial DNA extraction kits for the recovery of Yersinia pestis DNA from bacterial suspensions and spiked environmental samples, Journal of Applied Microbiology, vol.56, issue.1, pp.163-72, 2010.
DOI : 10.1111/j.1365-2672.2009.04404.x

G. Doganay and M. Doganay, Brucella as a potential agent of bioterrorism. Recent Patents Anti- Infect Drug Disc, 2013, vol.8, issue.1, pp.27-33

B. Bricker, PCR as a diagnostic tool for brucellosis, Veterinary Microbiology, vol.90, issue.1-4, pp.1-4435, 2002.
DOI : 10.1016/S0378-1135(02)00228-6

J. Salles, D. Souza, F. Van-elsas, and J. , Molecular Method To Assess the Diversity of Burkholderia Species in Environmental Samples, Applied and Environmental Microbiology, vol.68, issue.4, pp.1595-603, 2002.
DOI : 10.1128/AEM.68.4.1595-1603.2002

J. Gilad, I. Harary, T. Dushnitsky, D. Schwartz, and Y. Amsalem, Burkholderia mallei and Burkholderia pseudomallei as bioterrorism agents: national aspects of emergency preparedness, Isr Med Assoc J IMAJ, vol.9, issue.7, pp.499-503, 2007.

E. Price, J. Dale, J. Cook, D. Sarovich, M. Seymour et al., Development and Validation of Burkholderia pseudomallei-Specific Real-Time PCR Assays for Clinical, Environmental or Forensic Detection Applications, PLoS ONE, vol.774, issue.605, p.37723, 2012.
DOI : 10.1371/journal.pone.0037723.s012

D. Limmathurotsakul, D. Dance, V. Wuthiekanun, M. Kaestli, M. Mayo et al., Systematic Review and Consensus Guidelines for Environmental Sampling of Burkholderia pseudomallei, PLoS Neglected Tropical Diseases, vol.45, issue.1, p.2105, 2013.
DOI : 10.1371/journal.pntd.0002105.s005

T. Trung, A. Hetzer, A. Göhler, E. Topfstedt, V. Wuthiekanun et al., Highly Sensitive Direct Detection and Quantification of Burkholderia pseudomallei Bacteria in Environmental Soil Samples by Using Real-Time PCR, Applied and Environmental Microbiology, vol.77, issue.18, pp.6486-94, 2011.
DOI : 10.1128/AEM.00735-11

P. Fach and M. Popoff, Detection of enterotoxigenic Clostridium perfringens in food and fecal samples with a duplex PCR and the slide latex agglutination test, Appl Environ Microbiol, vol.63, issue.11, pp.4232-4238, 1997.

I. Kaneko, K. Miyamoto, K. Mimura, N. Yumine, H. Utsunomiya et al., Detection of Enterotoxigenic Clostridium perfringens in Meat Samples by Using Molecular Methods, Applied and Environmental Microbiology, vol.77, issue.21, pp.7526-7558, 2011.
DOI : 10.1128/AEM.06216-11

R. Wang, W. Cao, W. Franklin, W. Campbell, and C. Cerniglia, A 16S rDNA-based PCR method for rapid and specific detection of Clostridium perfringens in food, Molecular and Cellular Probes, vol.8, issue.2, 1994.
DOI : 10.1006/mcpr.1994.1018

N. Kato, S. Kim, H. Kato, K. Tanaka, K. Watanabe et al., Identification of Enterotoxin-Producing Clostridium perfringens by the Polymerase Chain Reaction, Journal of the Japanese Association for Infectious Diseases, vol.67, issue.8, pp.724-733, 1993.
DOI : 10.11150/kansenshogakuzasshi1970.67.724

K. Fitzpatrick, G. Kersh, and R. Massung, Practical Method for Extraction of PCR-Quality DNA from Environmental Soil Samples, Applied and Environmental Microbiology, vol.76, issue.13, pp.4571-4574, 2010.
DOI : 10.1128/AEM.02825-09

M. Lockhart, The detection of Coxiella burnetii (Q fever) in clinical and environmental samples, 2010.

I. Jado, C. Carranza-rodríguez, J. Barandika, Á. Toledo, C. García-amil et al., Molecular method for the characterization of Coxiella burnetii from clinical and environmental samples: variability of genotypes in Spain, BMC Microbiology, vol.12, issue.1, p.91, 2012.
DOI : 10.1086/426440

D. Bruin, A. De-groot, A. De-heer, L. Bok, J. Wielinga et al., Detection of Coxiella burnetii in Complex Matrices by Using Multiplex Quantitative PCR during a Major Q Fever Outbreak in The Netherlands, Applied and Environmental Microbiology, vol.77, issue.18, pp.6516-6539, 2011.
DOI : 10.1128/AEM.05097-11

R. E. Levin, Rapid Detection and Characterization of Foodborne Pathogens by Molecular Techniques, 2009.
DOI : 10.1201/9781420092431

J. Beaubrun, J. Cheng, C. Chen, K. Ewing, L. Wang et al., The evaluation of a PCR-based method for identification of Salmonella enterica serotypes from environmental samples and various food matrices, Food Microbiology, vol.31, issue.2, pp.199-209, 2012.
DOI : 10.1016/j.fm.2012.03.016

C. Soumet, G. Ermel, N. Rose, V. Rose, P. Drouin et al., Evaluation of a Multiplex PCR assay for simultaneous identification of Salmonella sp., Salmonella Enteritidis and Salmonella Typhimurium from environmental swabs of poultry houses, Letters in Applied Microbiology, vol.30, issue.2, 1999.
DOI : 10.1006/mcpr.1994.1068

P. Elizaquível and R. Aznar, A multiplex RTi-PCR reaction for simultaneous detection of Escherichia coli O157:H7, Salmonella spp. and Staphylococcus aureus on fresh, minimally processed vegetables, Food Microbiology, vol.25, issue.5, pp.705-718, 2008.
DOI : 10.1016/j.fm.2008.03.002

S. Kumar, K. Balakrishna, and H. Batra, Detection of Salmonella enterica serovar Typhi (S. Typhi) by selective amplification of invA, viaB, fliC-d and prt genes by polymerase chain reaction in mutiplex format, Letters in Applied Microbiology, vol.80, issue.2, pp.149-54, 2006.
DOI : 10.1016/S0043-1354(00)00348-1

M. Ocepek, M. Pate, D. Ku?ar, B. Hubad, J. Avber?ek et al., Comparison Of DNA extraction methods to detect Salmonella spp in tap water, Slov Vet Res, vol.48, issue.34, pp.93-101, 2011.

X. He, S. Mcmahon, T. Mckeon, and D. Brandon, Development of a Novel Immuno-PCR Assay for Detection of Ricin in Ground Beef, Liquid Chicken Egg, and Milk, Journal of Food Protection, vol.73, issue.4, 2010.
DOI : 10.4315/0362-028X-73.4.695

X. He, J. Carter, D. Brandon, L. Cheng, and T. Mckeon, Application of a Real Time Polymerase Chain Reaction Method to Detect Castor Toxin Contamination in Fluid Milk and Eggs, Journal of Agricultural and Food Chemistry, vol.55, issue.17, pp.6897-902, 2007.
DOI : 10.1021/jf0707738

N. Sharma, C. Rees, and C. Dodd, Development of a Single-Reaction Multiplex PCR Toxin Typing Assay for Staphylococcus aureus Strains, Applied and Environmental Microbiology, vol.66, issue.4, pp.1347-53, 2000.
DOI : 10.1128/AEM.66.4.1347-1353.2000

A. Rajkovic, B. Moualij, M. Uyttendaele, P. Brolet, W. Zorzi et al., Immunoquantitative Real-Time PCR for Detection and Quantification of Staphylococcus aureus Enterotoxin B in Foods, Applied and Environmental Microbiology, vol.72, issue.10, pp.6593-6602, 2006.
DOI : 10.1128/AEM.03068-05

I. Jado, R. Escudero, H. Gil, M. Jimenez-alonso, R. Sousa et al., Molecular Method for Identification of Rickettsia Species in Clinical and Environmental Samples, Journal of Clinical Microbiology, vol.44, issue.12, pp.4572-4578, 2006.
DOI : 10.1128/JCM.01227-06

M. Henriquez, The Platinum Path Kit: A Single Nucleic Acid Purification Kit for a Variety of Sample Types, a Tool for Bioterrorism Preparedness, 2009.

A. Lambert, D. Martin, and R. Lanciotti, Detection of North American Eastern and Western Equine Encephalitis Viruses by Nucleic Acid Amplification Assays, Journal of Clinical Microbiology, vol.41, issue.1, 2003.
DOI : 10.1128/JCM.41.1.379-385.2003

W. Koch, W. Payne, B. Wentz, and T. Cebula, Rapid polymerase chain reaction method for detection of Vibrio cholerae in foods, Appl Environ Microbiol Feb, vol.159, issue.2, pp.556-60, 1993.

A. Gubala, Multiplex real-time PCR detection of Vibrio cholerae, Journal of Microbiological Methods, vol.65, issue.2, pp.278-93, 2006.
DOI : 10.1016/j.mimet.2005.07.017

I. Rivera, E. Lipp, A. Gil, N. Choopun, A. Huq et al., Method of DNA extraction and application of multiplex polymerase chain reaction to detect toxigenic Vibrio cholerae O1 and O139 from aquatic ecosystems, Environmental Microbiology, vol.63, issue.7, pp.599-606, 2003.
DOI : 10.1016/S0378-1097(99)00401-2

E. Fykse, G. Skogan, W. Davies, J. Olsen, and J. Blatny, Detection of Vibrio cholerae by Real-Time Nucleic Acid Sequence-Based Amplification, Applied and Environmental Microbiology, vol.73, issue.5, 2007.
DOI : 10.1128/AEM.01635-06

A. Huq, C. Grim, R. Colwell, and G. Nair, Detection, isolation, and identification of Vibrio cholerae from the environment, Curr Protoc Microbiol, issue.6, 2006.

Z. Liang and K. A. , Detection of Viable Cryptosporidium parvum in Soil by Reverse Transcription-Real-Time PCR Targeting hsp70 mRNA, Applied and Environmental Microbiology, vol.77, issue.18, 2011.
DOI : 10.1128/AEM.00677-11

T. Stinear, A. Matusan, K. Hines, and M. Sandery, Detection of a single viable Cryptosporidium parvum oocyst in environmental water concentrates by reverse transcription-PCR, Appl Environ Microbiol, vol.62, issue.9, pp.3385-90, 1996.

C. Wagner-wiening and P. Kimmig, Detection of viable Cryptosporidium parvum oocysts by PCR, Appl Environ Microbiol, vol.61, issue.12, pp.4514-4520, 1995.

M. Nikaeen, . Mesdaghinia, . Tehrani, K. Rezaeian, and . Makimura, A Nested-PCR Assay for Detection of Cryptosporidium parvum Oocysts in Water Samples, Iranian J Publ Health, vol.34, issue.1, pp.13-21, 2005.

L. Xiao, A. Singh, J. Limor, T. Graczyk, S. Gradus et al., Molecular Characterization of Cryptosporidium Oocysts in Samples of Raw Surface Water and Wastewater, Applied and Environmental Microbiology, vol.67, issue.3, pp.1097-101, 2001.
DOI : 10.1128/AEM.67.3.1097-1101.2001

A. Wiedenmann, P. Krüger, and K. Botzenhart, PCR detection of Cryptosporidium parvum in environmental samples--a review of published protocols and current developments, Journal of Industrial Microbiology and Biotechnology, vol.21, issue.3, pp.150-66, 1998.
DOI : 10.1038/sj.jim.2900566

A. Trombley, L. Wachter, J. Garrison, V. Buckley-beason, J. Jahrling et al., Comprehensive Panel of Real-Time TaqManTM Polymerase Chain Reaction Assays for Detection and Absolute Quantification of Filoviruses, Arenaviruses, and New World Hantaviruses, American Journal of Tropical Medicine and Hygiene, vol.82, issue.5, pp.954-60, 2010.
DOI : 10.4269/ajtmh.2010.09-0636

K. P. O-'connell, P. E. Anderson, J. R. Bucher, C. Holmes, T. Howland et al., Performance Of A Handheld Pcr Instrument In The Detection Of Bacillus Anthracis, Francisella Tularensis, And Yersinia Pestis: Sensitivity, Specificity, And Effect Of Interferents On Assay Results, U.S. Army Edgewood Chemical Biological Center, pp.1-7, 2004.

D. Seiner, H. Colburn, C. Baird, R. Bartholomew, T. Straub et al., Evaluation of the FilmArray(R) system for detection of Bacillus anthracis, Francisella tularensis and Yersinia pestis, J Appl Microbiol. 2013, vol.114, issue.4, pp.992-1000

C. Baird, D. Seiner, R. Ozanich, H. Colburn, T. Straub et al., Biodetection technologies for first responders, Nov. Report, p.21713, 2012.
DOI : 10.2172/1163823

M. Ulrich, D. Christensen, S. Coyne, P. Craw, E. Henchal et al., Evaluation of the Cepheid GeneXpertR system for detecting Bacillus anthracis, Journal of Applied Microbiology, vol.63, issue.5, pp.1011-1017, 2006.
DOI : 10.1128/JCM.41.6.2440-2443.2003

|. Cepheid and . Biothreat, Consultable sur: http://www.cepheid.com/us/cepheid-solutions/reagents-and-accessories/industrial- reagents

J. Sanchez, K. Pierce, J. Rice, and L. Wangh, Linear-After-The-Exponential (LATE)???PCR: An advanced method of asymmetric PCR and its uses in quantitative real-time analysis, Proceedings of the National Academy of Sciences, vol.101, issue.7, pp.1933-1941, 2004.
DOI : 10.1073/pnas.0305476101

P. Bio-seeq, Consultable sur: http://www.smithsdetection.com/biological-agents-detection/114-biological-agents-detection/bio- seeq-plus.html#, pp.4-8

M. Sanchez, L. Probst, E. Blazevic, B. Nakao, and M. Northrup, The microfluidic bioagent autonomous networked detector (M-BAND): an update. Fully integrated, automated, and networked field identification of airborne pathogens, pp.818907-818907, 2011.

P. Corporation and T. , Consultable sur: http://www.positiveidcorp.com/products_firefly.html 191. Photo Release --PositiveID Corporation Launches Development of Firefly Dx to Confirm Biological Threats in the Field Within Minutes (NASDAQ:PSID) [Internet], Consultable sur

M. Louie, L. Louie, and A. Simor, The role of DNA amplification technology in the diagnosis of infectious diseases, CMAJ Can Med Assoc J, vol.163, issue.3, pp.301-310, 2000.

A. Herzog, S. Mclennan, A. Pandey, C. Gerba, C. Haas et al., Implications of Limits of Detection of Various Methods for Bacillus anthracis in Computing Risks to Human Health, Applied and Environmental Microbiology, vol.75, issue.19, pp.6331-6340, 2009.
DOI : 10.1128/AEM.00288-09

T. Mifflin, Setting Up a PCR Laboratory Cold Spring Harb Protoc, p.14, 2007.

C. Sensors, M. , M. For, A. Design, B. et al., Sensor Systems for Biological Agent Attacks: Protecting Buildings and Military Bases, 2005.

F. Sanger, S. Nicklen, and A. Coulson, DNA sequencing with chain-terminating inhibitors, Proceedings of the National Academy of Sciences, vol.74, issue.12, pp.5463-5470, 1977.
DOI : 10.1073/pnas.74.12.5463

J. Shendure and J. H. , Next-generation DNA sequencing, Nature Biotechnology, vol.105, issue.10, pp.1135-1180, 2008.
DOI : 10.1038/nbt1486

O. Morozova and M. Marra, Applications of next-generation sequencing technologies in functional genomics, Genomics, vol.92, issue.5, pp.255-64, 2008.
DOI : 10.1016/j.ygeno.2008.07.001

A. Klindworth, E. Pruesse, T. Schweer, J. Peplies, C. Quast et al., Evaluation of general 16S ribosomal RNA gene PCR primers for classical and next-generation sequencing-based diversity studies, Nucleic Acids Research, vol.41, issue.1, 2012.
DOI : 10.1093/nar/gks808

L. Fabre, J. Zhang, G. Guigon, L. Hello, S. Guibert et al., CRISPR Typing and Subtyping for Improved Laboratory Surveillance of Salmonella Infections Consultable sur, PLoS ONE [Internet], vol.7, issue.5, 2012.

R. Seshadri, I. Paulsen, J. Eisen, T. Read, K. Nelson et al., Complete genome sequence of the Q-fever pathogen Coxiella burnetii, Proceedings of the National Academy of Sciences, vol.100, issue.9, pp.5455-60, 2003.
DOI : 10.1073/pnas.0931379100

P. Chain, P. Hu, S. Malfatti, L. Radnedge, F. Larimer et al., Complete Genome Sequence of Yersinia pestis Strains Antiqua and Nepal516: Evidence of Gene Reduction in an Emerging Pathogen, Journal of Bacteriology, vol.188, issue.12, pp.4453-63, 2006.
DOI : 10.1128/JB.00124-06

P. Larsson, P. Oyston, P. Chain, M. Chu, M. Duffield et al., The complete genome sequence of Francisella tularensis, the causative agent of tularemia, Nature Genetics, vol.18, issue.2, 2005.
DOI : 10.1186/gb-2003-4-9-r54

R. Massung, L. Liu, J. Qi, J. Knight, T. Yuran et al., Analysis of the Complete Genome of Smallpox Variola Major Virus Strain Bangladesh-1975, Virology, vol.201, issue.2, 1994.
DOI : 10.1006/viro.1994.1288

M. Mcleod, X. Qin, S. Karpathy, J. Gioia, S. Highlander et al., Complete Genome Sequence of Rickettsia typhi and Comparison with Sequences of Other Rickettsiae, Journal of Bacteriology, vol.186, issue.17, pp.5842-55, 2004.
DOI : 10.1128/JB.186.17.5842-5855.2004

J. Ravel, L. Jiang, S. Stanley, M. Wilson, R. Decker et al., The Complete Genome Sequence of Bacillus anthracis Ames "Ancestor", Journal of Bacteriology, vol.191, issue.1, pp.445-451, 2009.
DOI : 10.1128/JB.01347-08

. Burkholderia-genome-database, A database for Burkholderia cepacia complex genomes [Internet], Consultable sur

P. Andreotti, G. Ludwig, A. Peruski, J. Tuite, S. Morse et al., Immunoassay of infectious agents, BioTechniques, vol.35, issue.4, pp.850-859, 2003.

A. Peruski and L. Peruski, Immunological Methods for Detection and Identification of Infectious Disease and Biological Warfare Agents, Clinical and Vaccine Immunology, vol.10, issue.4, pp.506-519, 2003.
DOI : 10.1128/CDLI.10.4.506-513.2003

J. Beechem and L. Brand, Time-Resolved Fluorescence of Proteins, Annual Review of Biochemistry, vol.54, issue.1, pp.43-71, 1985.
DOI : 10.1146/annurev.bi.54.070185.000355

G. Yakub and K. Stadterman-knauer, Immunomagnetic Separation of Pathogenic Organisms From Environmental Matrices, Methods Mol Biol Clifton NJ, vol.268, pp.189-97, 2004.
DOI : 10.1385/1-59259-766-1:189

H. Tomaso, P. Thullier, E. Seibold, V. Guglielmo, A. Buckendahl et al., Comparison of Hand-Held Test Kits, Immunofluorescence Microscopy, Enzyme-Linked Immunosorbent Assay, and Flow Cytometric Analysis for Rapid Presumptive Identification of Yersinia pestis, Journal of Clinical Microbiology, vol.45, issue.10, pp.3404-3411, 2007.
DOI : 10.1128/JCM.00458-07

E. U. Battelle, Environmental Protection Agency Environmental Technology Verification (ETV) Report for Response Biomedical Corp., RAMP Test Cartridges for detecting anthrax, botulinum toxin, and ricin [Internet], Consultable sur, 2004.

F. Gessler, S. Pagel-wieder, M. Avondet, and H. Böhnel, Evaluation of lateral flow assays for the detection of botulinum neurotoxin type A and their application in laboratory diagnosis of botulism, Diagnostic Microbiology and Infectious Disease, vol.57, issue.3, pp.243-252, 2007.
DOI : 10.1016/j.diagmicrobio.2006.07.017

A. P. Heroux-karen and M. Ground, Evaluation of a Rapid Immunoassay System for the Detection of Bacillus anthracis Spores [Internet] Consultable sur: http://www.accutest.net/products/pdf/EdgewoodEvaluation.pdf 221

E. Battelle, Environmental technology verification (ETV) report -Tetracore, INC Biothreat Alert(r) anthrax, botulinum toxin and ricin immunoassay test strips [Internet], Consultable sur, 2004.

M. Townsend, A. Macneil, M. Reynolds, C. Hughes, V. Olson et al., Evaluation of the Tetracore Orthopox BioThreat?? antigen detection assay using laboratory grown orthopoxviruses and rash illness clinical specimens, Journal of Virological Methods, vol.187, issue.1, pp.37-42, 2013.
DOI : 10.1016/j.jviromet.2012.08.023

D. Thavaselvam and R. Vijayaraghavan, Biological warfare agents, Journal of Pharmacy and Bioallied Sciences, vol.2, issue.3, p.179, 2010.
DOI : 10.4103/0975-7406.68499

P. Kumar and O. , Integrating Immunobased Detection and Identification Methods for Ricin Analysis: An Overview Consultable sur: http://www.omicsonline.org/integrating-immunobased-detection-and- identification-methods-for-ricin-analysis-an-overview-2157-2526, J Bioterrorism Biodefense [Internet], pp.2-003

G. Posthuma-trumpie, J. Korf, and A. Van-amerongen, Lateral flow (immuno)assay: its strengths, weaknesses, opportunities and threats. A literature survey, Analytical and Bioanalytical Chemistry, vol.4, issue.2, 2009.
DOI : 10.1007/s00216-008-2287-2

URL : http://dx.doi.org/10.1007/s00216-008-2287-2

M. Menet, Principes de la spectrométrie de masse. Rev Francoph Lab, 2011.
DOI : 10.1016/s1773-035x(11)71211-4

Y. Seto and M. Kanamori-kataoka, Mass Spectrometric Strategy for the Determination of Natural and Synthetic Organic Toxins, JOURNAL OF HEALTH SCIENCE, vol.51, issue.5, pp.519-544
DOI : 10.1248/jhs.51.519

M. Karas, D. Bachmann, U. Bahr, and F. Hillenkamp, Matrix-assisted ultraviolet laser desorption of non-volatile compounds, International Journal of Mass Spectrometry and Ion Processes, vol.78, pp.53-68, 1987.
DOI : 10.1016/0168-1176(87)87041-6

P. Seng, M. Drancourt, F. Gouriet, L. Scola, B. Fournier et al., Ongoing Revolution in Bacteriology: Routine Identification of Bacteria by Matrix???Assisted Laser Desorption Ionization Time???of???Flight Mass Spectrometry, Clinical Infectious Diseases, vol.49, issue.4, pp.543-51, 2009.
DOI : 10.1086/600885

M. Uttamchandani, J. Neo, B. Ong, and S. Moochhala, Applications of microarrays in pathogen detection and biodefence, Trends in Biotechnology, vol.27, issue.1, pp.53-61, 2009.
DOI : 10.1016/j.tibtech.2008.09.004

J. Avarre, P. De-lajudie, and G. Béna, Hybridization of genomic DNA to microarrays: A challenge for the analysis of environmental samples, Journal of Microbiological Methods, vol.69, issue.2, pp.242-250, 2007.
DOI : 10.1016/j.mimet.2006.11.007

H. Fan and Y. Tong, Potential dual-use of bacteriophage in bioterrorism and biodefense, J Bioterr Biodef, vol.3, issue.3, pp.1-4, 2012.

V. Radosavljevic, E. Finke, and G. Belojevic, Escherichia coli O104:H4 outbreak in Germany--clarification of the origin of the epidemic, The European Journal of Public Health, vol.25, issue.1, 2014.
DOI : 10.1093/eurpub/cku048

P. Anderson, Bioterrorism: Toxins as Weapons, Journal of Pharmacy Practice, vol.278, issue.5, pp.121-130
DOI : 10.1177/0897190012442351