Author: Tavakoli, Hamed; Zhou, Wan; Ma, Lei; Perez, Stefani; Ibarra, Andrea; Xu, Feng; Zhan, Sihui; Li, XiuJun
                    Title: Recent advances in microfluidic platforms for single-cell analysis in cancer biology, diagnosis and therapy.  Cord-id: qb2x3aa4  Document date: 2019_8_1
                    ID: qb2x3aa4
                    
                    Snippet: Understanding molecular, cellular, genetic and functional heterogeneity of tumors at the single-cell level has become a major challenge for cancer research. The microfluidic technique has emerged as an important tool that offers advantages in analyzing single-cells with the capability to integrate time-consuming and labour-intensive experimental procedures such as single-cell capture into a single microdevice at ease and in a high-throughput fashion. Single-cell manipulation and analysis can be 
                    
                    
                    
                     
                    
                    
                    
                    
                        
                            
                                Document: Understanding molecular, cellular, genetic and functional heterogeneity of tumors at the single-cell level has become a major challenge for cancer research. The microfluidic technique has emerged as an important tool that offers advantages in analyzing single-cells with the capability to integrate time-consuming and labour-intensive experimental procedures such as single-cell capture into a single microdevice at ease and in a high-throughput fashion. Single-cell manipulation and analysis can be implemented within a multi-functional microfluidic device for various applications in cancer research. Here, we present recent advances of microfluidic devices for single-cell analysis pertaining to cancer biology, diagnostics, and therapeutics. We first concisely introduce various microfluidic platforms used for single-cell analysis, followed with different microfluidic techniques for single-cell manipulation. Then, we highlight their various applications in cancer research, with an emphasis on cancer biology, diagnosis, and therapy. Current limitations and prospective trends of microfluidic single-cell analysis are discussed at the end.
 
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