Interpretation of cell–cell and cell-microenvironment interactions is critical for both advancing knowledge of basic biology and promoting applications of regenerative medicine.Cell patterning has been widely investi...Interpretation of cell–cell and cell-microenvironment interactions is critical for both advancing knowledge of basic biology and promoting applications of regenerative medicine.Cell patterning has been widely investigated in previous studies.However,the reported methods cannot simultaneously realize precise control of cell alignment and adhesion/spreading with a high efficiency at a high throughput.Here,a novel solid lift-off method with a micropore array as a shadow mask was proposed.Efficient and precise control of cell alignment and adhesion/spreading are simultaneously achieved via an ingeniously designed shadow mask,which contains large micropores(capture pores)in central areas and small micropores(spreading pores)in surrounding areas contributing to capture/alignment and adhesion/spreading control,respectively.The solid lift-off functions as follows:(1)protein micropattern generates through both the capture and spreading pores,(2)cell capture/alignment control is realized through the capture pores,and(3)cell adhesion/spreading is controlled through previously generated protein micropatterns after lift-off of the shadow mask.High-throughput(2.4–3.2×10^(4) cells/cm 2)cell alignments were achieved with high efficiencies(86.2±3.2%,56.7±9.4%and 51.1±4.0%for single-cell,double-cell,and triple-cell alignments,respectively).Precise control of cell spreading and applications for regulating cell skeletons and cell–cell junctions were investigated and verified using murine skeletal muscle myoblasts.To the best of our knowledge,this is the first report to demonstrate highly efficient and controllable multicell alignment and adhesion/spreading simultaneously via a simple solid lift-off operation.This study successfully fills a gap in literatures and promotes the effective and reproducible application of cell patterning in the fields of both basic mechanism studies and applied medicine.展开更多
基金This work was funded by the National Key Research and Development Program(Grant No.2016YFC1100704)the National Natural Science Foundation of China(Grant Nos.31470942,11827803,11421202 and 61904004)+2 种基金the Beijing Natural Science Foundation(Grant Nos.4172028 and L172005)the Postdoctoral Science Foundation of China(Grant Nos.2018M631261 and 2019T120018)the Seeding Grant for Medicine and Information Sciences awarded by Peking University(Grant No.BMU2018MI003).
文摘Interpretation of cell–cell and cell-microenvironment interactions is critical for both advancing knowledge of basic biology and promoting applications of regenerative medicine.Cell patterning has been widely investigated in previous studies.However,the reported methods cannot simultaneously realize precise control of cell alignment and adhesion/spreading with a high efficiency at a high throughput.Here,a novel solid lift-off method with a micropore array as a shadow mask was proposed.Efficient and precise control of cell alignment and adhesion/spreading are simultaneously achieved via an ingeniously designed shadow mask,which contains large micropores(capture pores)in central areas and small micropores(spreading pores)in surrounding areas contributing to capture/alignment and adhesion/spreading control,respectively.The solid lift-off functions as follows:(1)protein micropattern generates through both the capture and spreading pores,(2)cell capture/alignment control is realized through the capture pores,and(3)cell adhesion/spreading is controlled through previously generated protein micropatterns after lift-off of the shadow mask.High-throughput(2.4–3.2×10^(4) cells/cm 2)cell alignments were achieved with high efficiencies(86.2±3.2%,56.7±9.4%and 51.1±4.0%for single-cell,double-cell,and triple-cell alignments,respectively).Precise control of cell spreading and applications for regulating cell skeletons and cell–cell junctions were investigated and verified using murine skeletal muscle myoblasts.To the best of our knowledge,this is the first report to demonstrate highly efficient and controllable multicell alignment and adhesion/spreading simultaneously via a simple solid lift-off operation.This study successfully fills a gap in literatures and promotes the effective and reproducible application of cell patterning in the fields of both basic mechanism studies and applied medicine.