Literature DB >> 30810874

The role of heterogeneous environment and docetaxel gradient in the emergence of polyploid, mesenchymal and resistant prostate cancer cells.

Ke-Chih Lin1, Gonzalo Torga2, Yusha Sun3, Robert Axelrod4, Kenneth J Pienta2, James C Sturm3, Robert H Austin3.   

Abstract

The ability of a population of PC3 prostate epithelial cancer cells to become resistant to docetaxel therapy and progress to a mesenchymal state remains a fundamental problem. The progression towards resistance is difficult to directly study in heterogeneous ecological environments such as tumors. In this work, we use a micro-fabricated "evolution accelerator" environment to create a complex heterogeneous yet controllable in-vitro environment with a spatially-varying drug concentration. With such a structure we observe the rapid emergence of a surprisingly large number of polyploid giant cancer cells (PGCCs) in regions of very high drug concentration, which does not occur in conventional cell culture of uniform concentration. This emergence of PGCCs in a high drug environment is due to migration of diploid epithelial cells from regions of low drug concentration, where they proliferate, to regions of high drug concentration, where they rapidly convert to PGCCs. Such a mechanism can only occur in spatially-varying rather than homogeneous environments. Further, PGCCs exhibit increased expression of the mesenchymal marker ZEB1 in the same high-drug regions where they are formed, suggesting the possible induction of an epithelial to mesenchymal transition (EMT) in these cells. This is consistent with prior work suggesting the PGCC cells are mediators of resistance in response to chemotherapeutic stress. Taken together, this work shows the key role of spatial heterogeneity and the migration of proliferative diploid cells to form PGCCs as a survival strategy for the cancer population, with implications for new therapies.

Entities:  

Keywords:  Cancer-on-a-chip; Cell migration; Chemotherapy gradient; Metastasis; Polyploid giant cancer cells; Tumor microenvironment

Mesh:

Substances:

Year:  2019        PMID: 30810874     DOI: 10.1007/s10585-019-09958-1

Source DB:  PubMed          Journal:  Clin Exp Metastasis        ISSN: 0262-0898            Impact factor:   5.150


  34 in total

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2.  Survival of docetaxel-resistant prostate cancer cells in vitro depends on phenotype alterations and continuity of drug exposure.

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9.  Multinucleated polyploidy drives resistance to Docetaxel chemotherapy in prostate cancer.

Authors:  Karuna Mittal; Shashi Donthamsetty; Ramneet Kaur; Chunhua Yang; Meenakshi V Gupta; Michelle D Reid; Da Hoon Choi; Padmashree C G Rida; Ritu Aneja
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  15 in total

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Review 5.  Polyploid giant cancer cells: Unrecognized actuators of tumorigenesis, metastasis, and resistance.

Authors:  Sarah R Amend; Gonzalo Torga; Ke-Chih Lin; Laurie G Kostecka; Angelo de Marzo; Robert H Austin; Kenneth J Pienta
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Review 6.  Polyploid giant cancer cell characterization: New frontiers in predicting response to chemotherapy in breast cancer.

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7.  Cancer recurrence and lethality are enabled by enhanced survival and reversible cell cycle arrest of polyaneuploid cells.

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Review 10.  Lipid droplet evolution gives insight into polyaneuploid cancer cell lipid droplet functions.

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