Single-cell gene expression signatures reveal melanoma cell heterogeneity

被引:63
作者
Ennen, M. [1 ]
Keime, C. [1 ]
Kobi, D. [1 ]
Mengus, G. [1 ]
Lipsker, D. [1 ,2 ,3 ]
Thibault-Carpentier, C. [1 ]
Davidson, I. [1 ]
机构
[1] CNRS INSERM UDS, Inst Genet & Biol Mol & Cellulaire, F-67404 Illkirch Graffenstaden, France
[2] Hop Univ Strasbourg, Hop Civil, Fac Med, Strasbourg, France
[3] Hop Univ Strasbourg, Hop Civil, Serv Dermatol, Strasbourg, France
关键词
MITF TRANSCRIPTION FACTORS; RESISTANCE; PHENOTYPE; IDENTIFICATION; MELANOGENESIS; SWITCH; MOUSE;
D O I
10.1038/onc.2014.262
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
It is well established that tumours are not homogenous, but comprise cells with differing invasive, proliferative and tumourinitiating potential. A major challenge in cancer research is therefore to develop methods to characterize cell heterogeneity. In melanoma, proliferative and invasive cells are characterized by distinct gene expression profiles and accumulating evidence suggests that cells can alternate between these states through a process called phenotype switching. We have used microfluidic technology to isolate single melanoma cells grown in vitro as monolayers or melanospheres or in vivo as xenografted tumours and analyse the expression profiles of 114 genes that discriminate the proliferative and invasive states by quantitative PCR. Single-cell analysis accurately recapitulates the specific gene expression programmes of melanoma cell lines and defines subpopulations with distinct expression profiles. Cell heterogeneity is augmented when cells are grown as spheres and as xenografted tumours. Correlative analysis identifies gene-regulatory networks and changes in gene expression under different growth conditions. In tumours, subpopulations of cells that express specific invasion and drug resistance markers can be identified amongst which is the pluripotency factor POUF51 (OCT4) whose expression correlates with the tumorigenic potential. We therefore show that single-cell analysis can be used to define and quantify tumour heterogeneity based on detection of cells with specific gene expression profiles.
引用
收藏
页码:3251 / 3263
页数:13
相关论文
共 31 条
[1]
Differential expression analysis for sequence count data [J].
Anders, Simon ;
Huber, Wolfgang .
GENOME BIOLOGY, 2010, 11 (10)
[2]
A Switch in the Expression of Embryonic EMT-Inducers Drives the Development of Malignant Melanoma [J].
Caramel, Julie ;
Papadogeorgakis, Eftychios ;
Hill, Louise ;
Browne, Gareth J. ;
Richard, Geoffrey ;
Wierinckx, Anne ;
Saldanha, Gerald ;
Osborne, Joy ;
Hutchinson, Peter ;
Tse, Gina ;
Lachuer, Joel ;
Puisieux, Alain ;
Pringle, J. Howard ;
Ansieau, Stephane ;
Tulchinsky, Eugene .
CANCER CELL, 2013, 24 (04) :466-480
[3]
Mitf regulation of Dia1 controls melanoma proliferation and invasiveness [J].
Carreira, Suzanne ;
Goodall, Jane ;
Denat, Laurence ;
Rodriguez, Mercedes ;
Nuciforo, Paolo ;
Hoek, Keith S. ;
Testori, Alessandro ;
Larue, Lionel ;
Goding, Colin R. .
GENES & DEVELOPMENT, 2006, 20 (24) :3426-3439
[4]
Regulation of autologous immunity to the mouse 5T4 oncofoetal antigen: implications for immunotherapy [J].
Castro, Fernanda V. ;
Al-Muftah, Mariam ;
Mulryan, Kate ;
Jiang, Hui-Rong ;
Drijfhout, Jan-Wouter ;
Ali, Sumia ;
Rutkowski, Andrzej J. ;
Kalaitsidou, Milena ;
Gilham, David E. ;
Stern, Peter L. .
CANCER IMMUNOLOGY IMMUNOTHERAPY, 2012, 61 (07) :1005-1018
[5]
Mitf is the key molecular switch between mouse or human melanoma initiating cells and their differentiated progeny [J].
Cheli, Y. ;
Guiliano, S. ;
Botton, T. ;
Rocchi, S. ;
Hofman, V. ;
Hofman, P. ;
Bahadoran, P. ;
Bertolotto, C. ;
Ballotti, R. .
ONCOGENE, 2011, 30 (20) :2307-2318
[6]
Involvement of ABC transporters in melanogenesis and the development of multidrug resistance of melanoma [J].
Chen, Kevin G. ;
Valencia, Julio C. ;
Gillet, Jean-Pierre ;
Hearing, Vincent J. ;
Gottesman, Michael M. .
PIGMENT CELL & MELANOMA RESEARCH, 2009, 22 (06) :740-749
[7]
Microphthalmia-associated transcription factor regulates RAB27A gene expression and controls melanosome transport [J].
Chiaverini, Christine ;
Beuret, Laurent ;
Flori, Enrica ;
Busca, Roser ;
Abbe, Patricia ;
Bille, Karine ;
Bahadoran, Philippe ;
Ortonne, Jean-Paul ;
Bertolotto, Corine ;
Ballotti, Robert .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2008, 283 (18) :12635-12642
[8]
Single-cell dissection of transcriptional heterogeneity in human colon tumors [J].
Dalerba, Piero ;
Kalisky, Tomer ;
Sahoo, Debashis ;
Rajendran, Pradeep S. ;
Rothenberg, Michael E. ;
Leyrat, Anne A. ;
Sim, Sopheak ;
Okamoto, Jennifer ;
Johnston, Darius M. ;
Qian, Dalong ;
Zabala, Maider ;
Bueno, Janet ;
Neff, Norma F. ;
Wang, Jianbin ;
Shelton, Andrew A. ;
Visser, Brendan ;
Hisamori, Shigeo ;
Shimono, Yohei ;
van de Wetering, Marc ;
Clevers, Hans ;
Clarke, Michael F. ;
Quake, Stephen R. .
NATURE BIOTECHNOLOGY, 2011, 29 (12) :1120-U11
[9]
Identification of a ZEB2-MITF-ZEB1 transcriptional network that controls melanogenesis and melanoma progression [J].
Denecker, G. ;
Vandamme, N. ;
Akay, O. ;
Koludrovic, D. ;
Taminau, J. ;
Lemeire, K. ;
Gheldof, A. ;
De Craene, B. ;
Van Gele, M. ;
Brochez, L. ;
Udupi, G. M. ;
Rafferty, M. ;
Balint, B. ;
Gallagher, W. M. ;
Ghanem, G. ;
Huylebroeck, D. ;
Haigh, J. ;
van den Oord, J. ;
Larue, L. ;
Davidson, I. ;
Marine, J-C ;
Berx, G. .
CELL DEATH AND DIFFERENTIATION, 2014, 21 (08) :1250-1261
[10]
Brn-2 represses microphthalmia-associated transcription factor expression and marks a distinct subpopulation of microphthalmia-associated transcription factor-negative melanoma cells [J].
Goodall, Jane ;
Carreira, Suzanne ;
Denat, Laurence ;
Kobi, Dominique ;
Davidson, Irwin ;
Nuciforo, Paolo ;
Sturm, Richard A. ;
Larue, Lionel ;
Goding, Colin R. .
CANCER RESEARCH, 2008, 68 (19) :7788-7794