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Application of Pharmacovigilance Methods in Occupational Health Surveillance: Comparison of Seven Disproportionality Metrics

Identifieur interne : 000638 ( Main/Exploration ); précédent : 000637; suivant : 000639

Application of Pharmacovigilance Methods in Occupational Health Surveillance: Comparison of Seven Disproportionality Metrics

Auteurs : Vincent Bonneterre [France] ; Dominique Joseph Bicout [France] ; Regis De Gaudemaris [France]

Source :

RBID : PMC:3440466

Abstract

Objectives

The French National Occupational Diseases Surveillance and Prevention Network (RNV3P) is a French network of occupational disease specialists, which collects, in standardised coded reports, all cases where a physician of any specialty, referred a patient to a university occupational disease centre, to establish the relation between the disease observed and occupational exposures, independently of statutory considerations related to compensation. The objective is to compare the relevance of disproportionality measures, widely used in pharmacovigilance, for the detection of potentially new disease × exposure associations in RNV3P database (by analogy with the detection of potentially new health event × drug associations in the spontaneous reporting databases from pharmacovigilance).

Methods

2001-2009 data from RNV3P are used (81,132 observations leading to 11,627 disease × exposure associations). The structure of RNV3P database is compared with the ones of pharmacovigilance databases. Seven disproportionality metrics are tested and their results, notably in terms of ranking the disease × exposure associations, are compared.

Results

RNV3P and pharmacovigilance databases showed similar structure. Frequentist methods (proportional reporting ratio [PRR], reporting odds ratio [ROR]) and a Bayesian one (known as BCPNN for "Bayesian Confidence Propagation Neural Network") show a rather similar behaviour on our data, conversely to other methods (as Poisson). Finally the PRR method was chosen, because more complex methods did not show a greater value with the RNV3P data. Accordingly, a procedure for detecting signals with PRR method, automatic triage for exclusion of associations already known, and then investigating these signals is suggested.

Conclusion

This procedure may be seen as a first step of hypothesis generation before launching epidemiological and/or experimental studies.


Url:
DOI: 10.5491/SHAW.2012.3.2.92
PubMed: 22993712
PubMed Central: 3440466


Affiliations:


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Le document en format XML

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<title>Objectives</title>
<p>The French National Occupational Diseases Surveillance and Prevention Network (RNV3P) is a French network of occupational disease specialists, which collects, in standardised coded reports, all cases where a physician of any specialty, referred a patient to a university occupational disease centre, to establish the relation between the disease observed and occupational exposures, independently of statutory considerations related to compensation. The objective is to compare the relevance of disproportionality measures, widely used in pharmacovigilance, for the detection of potentially new disease × exposure associations in RNV3P database (by analogy with the detection of potentially new health event × drug associations in the spontaneous reporting databases from pharmacovigilance).</p>
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<p>2001-2009 data from RNV3P are used (81,132 observations leading to 11,627 disease × exposure associations). The structure of RNV3P database is compared with the ones of pharmacovigilance databases. Seven disproportionality metrics are tested and their results, notably in terms of ranking the disease × exposure associations, are compared.</p>
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<p>RNV3P and pharmacovigilance databases showed similar structure. Frequentist methods (proportional reporting ratio [PRR], reporting odds ratio [ROR]) and a Bayesian one (known as BCPNN for "Bayesian Confidence Propagation Neural Network") show a rather similar behaviour on our data, conversely to other methods (as Poisson). Finally the PRR method was chosen, because more complex methods did not show a greater value with the RNV3P data. Accordingly, a procedure for detecting signals with PRR method, automatic triage for exclusion of associations already known, and then investigating these signals is suggested.</p>
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<name sortKey="Orre, R" uniqKey="Orre R">R Orre</name>
</author>
<author>
<name sortKey="Egberts, Ac" uniqKey="Egberts A">AC Egberts</name>
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<analytic>
<author>
<name sortKey="Szarfman, A" uniqKey="Szarfman A">A Szarfman</name>
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<author>
<name sortKey="Machado, Sg" uniqKey="Machado S">SG Machado</name>
</author>
<author>
<name sortKey="O Neill, Rt" uniqKey="O Neill R">RT O'Neill</name>
</author>
</analytic>
</biblStruct>
<biblStruct>
<analytic>
<author>
<name sortKey="Hauben, M" uniqKey="Hauben M">M Hauben</name>
</author>
<author>
<name sortKey="Reich, L" uniqKey="Reich L">L Reich</name>
</author>
<author>
<name sortKey="Chung, S" uniqKey="Chung S">S Chung</name>
</author>
</analytic>
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<analytic>
<author>
<name sortKey="Faisandier, L" uniqKey="Faisandier L">L Faisandier</name>
</author>
<author>
<name sortKey="Bonneterre, V" uniqKey="Bonneterre V">V Bonneterre</name>
</author>
<author>
<name sortKey="De Gaudemaris, R" uniqKey="De Gaudemaris R">R De Gaudemaris</name>
</author>
<author>
<name sortKey="Bicout, Dj" uniqKey="Bicout D">DJ Bicout</name>
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</TEI>
<affiliations>
<list>
<country>
<li>France</li>
</country>
<settlement>
<li>Grenoble</li>
</settlement>
</list>
<tree>
<country name="France">
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<name sortKey="Bonneterre, Vincent" sort="Bonneterre, Vincent" uniqKey="Bonneterre V" first="Vincent" last="Bonneterre">Vincent Bonneterre</name>
</noRegion>
<name sortKey="Bicout, Dominique Joseph" sort="Bicout, Dominique Joseph" uniqKey="Bicout D" first="Dominique Joseph" last="Bicout">Dominique Joseph Bicout</name>
<name sortKey="Bonneterre, Vincent" sort="Bonneterre, Vincent" uniqKey="Bonneterre V" first="Vincent" last="Bonneterre">Vincent Bonneterre</name>
<name sortKey="Bonneterre, Vincent" sort="Bonneterre, Vincent" uniqKey="Bonneterre V" first="Vincent" last="Bonneterre">Vincent Bonneterre</name>
<name sortKey="De Gaudemaris, Regis" sort="De Gaudemaris, Regis" uniqKey="De Gaudemaris R" first="Regis" last="De Gaudemaris">Regis De Gaudemaris</name>
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<name sortKey="De Gaudemaris, Regis" sort="De Gaudemaris, Regis" uniqKey="De Gaudemaris R" first="Regis" last="De Gaudemaris">Regis De Gaudemaris</name>
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</affiliations>
</record>

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