Experimental Neurosurgery, Department of Neurosurgery, University of Heidelberg, INF 400, 69120, Heidelberg, Germany.
J Pathol. 2014 Sep;234(1):23-33. doi: 10.1002/path.4366. Epub 2014 Jul 10.
Cancer cells with enhanced self-renewal capacity influence tumour growth in glioblastoma. So far, a variety of surrogate markers have been proposed to enrich these cells, emphasizing the need to devise new characterization methods. Here, we screen a large panel of glioblastoma cultures (n = 21) cultivated under stem cell-permissive conditions and identify several cell lines with enhanced self-renewal capacity. These cell lines are capable of matrix-independent growth and form fast-growing, orthotopic tumours in mice. Employing isolation, re-plating, and label-retention techniques, we show that self-renewal potential of individual cells is partitioned asymmetrically between daughter cells in a robust and cell line-specific fashion. This yields populations of fast- and slow-cycling cells, which differ in the expression of cell cycle-associated transcripts. Intriguingly, fast-growing cells keep their slow-cycling counterparts in a reversible state of quiescence associated with high chemoresistance. Our results suggest that two different subpopulations of tumour cells contribute to aberrant growth and tumour recurrence after therapy in glioblastoma.
具有增强自我更新能力的癌细胞会影响胶质母细胞瘤的生长。到目前为止,已经提出了多种替代标志物来富集这些细胞,这强调了需要设计新的特征描述方法。在这里,我们筛选了一组在干细胞允许的条件下培养的大型胶质母细胞瘤培养物(n = 21),并鉴定出了几种具有增强自我更新能力的细胞系。这些细胞系能够在无基质的情况下生长,并在小鼠中形成快速生长的原位肿瘤。通过采用分离、再培养和标记保留技术,我们表明,单个细胞的自我更新潜力在细胞分裂时以稳健且细胞系特异性的方式在子细胞之间不对称分配。这产生了快速和慢速循环细胞群体,它们在与高化疗抗性相关的细胞周期相关转录物的表达上存在差异。有趣的是,快速生长的细胞将其慢速循环的对应物保持在与化学抗性相关的可逆静止状态。我们的结果表明,两种不同的肿瘤细胞亚群有助于胶质母细胞瘤治疗后异常生长和肿瘤复发。