TY - JOUR
T1 - A primary hierarchically organized patient-derived model enables in depth interrogation of stemness driven by the coding and non-coding genome
AU - Boutzen, Héléna
AU - Madani Tonekaboni, Seyed Ali
AU - Chan-Seng-Yue, Michelle
AU - Murison, Alex
AU - Takayama, Naoya
AU - Mbong, Nathan
AU - Wagenblast, Elvin
AU - Orouji, Elias
AU - Arruda, Andrea
AU - Mitchell, Amanda
AU - Notta, Faiyaz
AU - Minden, Mark D.
AU - Lupien, Mathieu
AU - Kaufmann, Kerstin B.
AU - Dick, John E.
N1 - Publisher Copyright:
© 2022, The Author(s).
PY - 2022/11
Y1 - 2022/11
N2 - Many cancers are organized as cellular hierarchies sustained by cancer stem cells (CSC), whose eradication is crucial for achieving long-term remission. Difficulties to isolate and undertake in vitro and in vivo experimental studies of rare CSC under conditions that preserve their original properties currently constitute a bottleneck for identifying molecular mechanisms involving coding and non-coding genomic regions that govern stemness. We focussed on acute myeloid leukemia (AML) as a paradigm of the CSC model and developed a patient-derived system termed OCI-AML22 that recapitulates the cellular hierarchy driven by leukemia stem cells (LSC). Through classical flow sorting and functional analyses, we established that a single phenotypic population is highly enriched for LSC. The LSC fraction can be easily isolated and serially expanded in culture or in xenografts while faithfully recapitulating functional, transcriptional and epigenetic features of primary LSCs. A novel non-coding regulatory element was identified with a new computational approach using functionally validated primary AML LSC fractions and its role in LSC stemness validated through efficient CRISPR editing using methods optimized for OCI-AML22 LSC. Collectively, OCI-AML22 constitutes a valuable resource to uncover mechanisms governing CSC driven malignancies.
AB - Many cancers are organized as cellular hierarchies sustained by cancer stem cells (CSC), whose eradication is crucial for achieving long-term remission. Difficulties to isolate and undertake in vitro and in vivo experimental studies of rare CSC under conditions that preserve their original properties currently constitute a bottleneck for identifying molecular mechanisms involving coding and non-coding genomic regions that govern stemness. We focussed on acute myeloid leukemia (AML) as a paradigm of the CSC model and developed a patient-derived system termed OCI-AML22 that recapitulates the cellular hierarchy driven by leukemia stem cells (LSC). Through classical flow sorting and functional analyses, we established that a single phenotypic population is highly enriched for LSC. The LSC fraction can be easily isolated and serially expanded in culture or in xenografts while faithfully recapitulating functional, transcriptional and epigenetic features of primary LSCs. A novel non-coding regulatory element was identified with a new computational approach using functionally validated primary AML LSC fractions and its role in LSC stemness validated through efficient CRISPR editing using methods optimized for OCI-AML22 LSC. Collectively, OCI-AML22 constitutes a valuable resource to uncover mechanisms governing CSC driven malignancies.
UR - http://www.scopus.com/inward/record.url?scp=85138393170&partnerID=8YFLogxK
U2 - 10.1038/s41375-022-01697-9
DO - 10.1038/s41375-022-01697-9
M3 - Article
C2 - 36131042
AN - SCOPUS:85138393170
SN - 0887-6924
VL - 36
SP - 2690
EP - 2704
JO - Leukemia
JF - Leukemia
IS - 11
ER -