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PMID: 24065821 Published · ppublish English Evaluation Study Journal Article Research Support, Non-U.S. Gov't Validation Study

Diagnostic leukapheresis enables reliable detection of circulating tumor cells of nonmetastatic cancer patients.

Fischer JC, Niederacher D, Topp SA, Honisch E, Schumacher S, Schmitz N, Zacarias Föhrding L, Vay C, Hoffmann I, Kasprowicz NS, Hepp PG, Mohrmann S, Nitz U, Stresemann A, Krahn T, Henze T, Griebsch E, Raba K, Rox JM, Wenzel F, Sproll C, Janni W, Fehm T, Klein CA, Knoefel WT, Stoecklein NH

Abstract

Circulating tumor cells (CTCs) are promising biomarkers for diagnosis and therapy in systemic cancer. However, their infrequent and unreliable detection, especially in nonmetastatic cancer, currently impedes the clinical use of CTCs. Because leukapheresis (LA) targets peripheral blood mononuclear cells, which have a similar density to CTCs, and usually involves processing the whole circulating blood, we tested whether LA could substantially increase CTC detection in operable cancer patients. Therefore, we screened LA products generated from up to 25 L of blood per patient in two independent studies, and found that CTCs can be detected in more than 90% of nonmetastatic breast cancer patients. Interestingly, complete white blood cell sampling enabled determining an upper level for total CTC numbers of about 100,000 cells (median, 7,500 CTCs) per patient and identified a correlation of CTC numbers with anatomic disease spread. We further show that diagnostic leukapheresis can be easily combined with the US Food and Drug Administration-approved CellSearch system for standardized enumeration of CTCs. Direct comparison with 7.5 mL of blood revealed a significantly higher CTC frequency in matched LA samples. Finally, genomic single-cell profiling disclosed highly aberrant CTCs as therapy-escaping variants in breast cancer. In conclusion, LA is a clinically safe method that enabled a reliable detection of CTCs at high frequency even in nonmetastatic cancer patients, and might facilitate the routine clinical use of CTCs as in the sense of a liquid biopsy. Combined with technologies for single-cell molecular genetics or cell biology, it may significantly improve prediction of therapy response and monitoring of early systemic cancer.

Keywords
comparative genomic hybridization gastrointestinal cancer metastasis minimal residual disease single-cell analysis
MeSH Terms
Biomarkers, Tumor/blood Breast Neoplasms/blood,diagnosis Cohort Studies Comparative Genomic Hybridization Diagnostic Techniques and Procedures Female Germany Humans Leukapheresis/methods Neoplastic Cells, Circulating/pathology Prospective Studies Retrospective Studies Statistics, Nonparametric
Chemicals
Biomarkers, Tumor
Authors & Affiliations
26 authors, click to expand affiliations / ORCID
Fischer Johannes C
Institute for Transplantation Diagnostics and Cell Therapeutics and Departments of Obstetrics and Gynecology and General, Visceral and Pediatric Surgery, Medical Faculty, University Hospital, Heinrich Heine University Düsseldorf, 40225 Düsseldorf, Germany.
Niederacher Dieter
Topp Stefan A
Honisch Ellen
Schumacher Sarah
Schmitz Norma
Zacarias Föhrding Luisa
Vay Christian
Hoffmann Imke
Kasprowicz Nikola S
Hepp Philip G
Mohrmann Svjetlana
Nitz Ulrike
Stresemann Antje
Krahn Thomas
Henze Tanja
Griebsch Evelyn
Raba Katharina
Rox Jutta M
Wenzel Folker
Sproll Christoph
Janni Wolfgang
Fehm Tanja
Klein Christoph A
Knoefel Wolfram Trudo
Stoecklein Nikolas H
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Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2013-10-08
Epub
2013-00-24
Pages
16580-5
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC3799344
Subset
IM
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