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The MicroArray Quality Control (MAQC) project shows inter- and intraplatform reproducibility of gene expression measurements.


ABSTRACT: Over the last decade, the introduction of microarray technology has had a profound impact on gene expression research. The publication of studies with dissimilar or altogether contradictory results, obtained using different microarray platforms to analyze identical RNA samples, has raised concerns about the reliability of this technology. The MicroArray Quality Control (MAQC) project was initiated to address these concerns, as well as other performance and data analysis issues. Expression data on four titration pools from two distinct reference RNA samples were generated at multiple test sites using a variety of microarray-based and alternative technology platforms. Here we describe the experimental design and probe mapping efforts behind the MAQC project. We show intraplatform consistency across test sites as well as a high level of interplatform concordance in terms of genes identified as differentially expressed. This study provides a resource that represents an important first step toward establishing a framework for the use of microarrays in clinical and regulatory settings.

SUBMITTER: MAQC Consortium 

PROVIDER: S-EPMC3272078 | biostudies-literature | 2006 Sep

REPOSITORIES: biostudies-literature

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The MicroArray Quality Control (MAQC) project shows inter- and intraplatform reproducibility of gene expression measurements.

Shi Leming L   Reid Laura H LH   Jones Wendell D WD   Shippy Richard R   Warrington Janet A JA   Baker Shawn C SC   Collins Patrick J PJ   de Longueville Francoise F   Kawasaki Ernest S ES   Lee Kathleen Y KY   Luo Yuling Y   Sun Yongming Andrew YA   Willey James C JC   Setterquist Robert A RA   Fischer Gavin M GM   Tong Weida W   Dragan Yvonne P YP   Dix David J DJ   Frueh Felix W FW   Goodsaid Frederico M FM   Herman Damir D   Jensen Roderick V RV   Johnson Charles D CD   Lobenhofer Edward K EK   Puri Raj K RK   Schrf Uwe U   Thierry-Mieg Jean J   Wang Charles C   Wilson Mike M   Wolber Paul K PK   Zhang Lu L   Amur Shashi S   Bao Wenjun W   Barbacioru Catalin C CC   Lucas Anne Bergstrom AB   Bertholet Vincent V   Boysen Cecilie C   Bromley Bud B   Brown Donna D   Brunner Alan A   Canales Roger R   Cao Xiaoxi Megan XM   Cebula Thomas A TA   Chen James J JJ   Cheng Jing J   Chu Tzu-Ming TM   Chudin Eugene E   Corson John J   Corton J Christopher JC   Croner Lisa J LJ   Davies Christopher C   Davison Timothy S TS   Delenstarr Glenda G   Deng Xutao X   Dorris David D   Eklund Aron C AC   Fan Xiao-hui XH   Fang Hong H   Fulmer-Smentek Stephanie S   Fuscoe James C JC   Gallagher Kathryn K   Ge Weigong W   Guo Lei L   Guo Xu X   Hager Janet J   Haje Paul K PK   Han Jing J   Han Tao T   Harbottle Heather C HC   Harris Stephen C SC   Hatchwell Eli E   Hauser Craig A CA   Hester Susan S   Hong Huixiao H   Hurban Patrick P   Jackson Scott A SA   Ji Hanlee H   Knight Charles R CR   Kuo Winston P WP   LeClerc J Eugene JE   Levy Shawn S   Li Quan-Zhen QZ   Liu Chunmei C   Liu Ying Y   Lombardi Michael J MJ   Ma Yunqing Y   Magnuson Scott R SR   Maqsodi Botoul B   McDaniel Tim T   Mei Nan N   Myklebost Ola O   Ning Baitang B   Novoradovskaya Natalia N   Orr Michael S MS   Osborn Terry W TW   Papallo Adam A   Patterson Tucker A TA   Perkins Roger G RG   Peters Elizabeth H EH   Peterson Ron R   Philips Kenneth L KL   Pine P Scott PS   Pusztai Lajos L   Qian Feng F   Ren Hongzu H   Rosen Mitch M   Rosenzweig Barry A BA   Samaha Raymond R RR   Schena Mark M   Schroth Gary P GP   Shchegrova Svetlana S   Smith Dave D DD   Staedtler Frank F   Su Zhenqiang Z   Sun Hongmei H   Szallasi Zoltan Z   Tezak Zivana Z   Thierry-Mieg Danielle D   Thompson Karol L KL   Tikhonova Irina I   Turpaz Yaron Y   Vallanat Beena B   Van Christophe C   Walker Stephen J SJ   Wang Sue Jane SJ   Wang Yonghong Y   Wolfinger Russ R   Wong Alex A   Wu Jie J   Xiao Chunlin C   Xie Qian Q   Xu Jun J   Yang Wen W   Zhang Liang L   Zhong Sheng S   Zong Yaping Y   Slikker William W  

Nature biotechnology 20060901 9


Over the last decade, the introduction of microarray technology has had a profound impact on gene expression research. The publication of studies with dissimilar or altogether contradictory results, obtained using different microarray platforms to analyze identical RNA samples, has raised concerns about the reliability of this technology. The MicroArray Quality Control (MAQC) project was initiated to address these concerns, as well as other performance and data analysis issues. Expression data o  ...[more]

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