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Cost-efficient boundary-free surface patterning achieves high effective-throughput of time-lapse microscopy experiments
by
Allard, Jun
, Ding, Fangyuan
, Yin, Hong
, Liang, Guohao
in
Adhesives
/ Analysis
/ Biology and Life Sciences
/ Cell surface
/ Embryo cells
/ Embryonic stem cells
/ Engineering and Technology
/ Experiments
/ Free surfaces
/ High-throughput screening (Biochemical assaying)
/ Humidity
/ Lasers
/ Methods
/ Microscope and microscopy
/ Microscopy
/ Pattern formation
/ Phenotypes
/ Physical Sciences
/ Research and Analysis Methods
/ Stem cell transplantation
/ Stem cells
2022
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Cost-efficient boundary-free surface patterning achieves high effective-throughput of time-lapse microscopy experiments
by
Allard, Jun
, Ding, Fangyuan
, Yin, Hong
, Liang, Guohao
in
Adhesives
/ Analysis
/ Biology and Life Sciences
/ Cell surface
/ Embryo cells
/ Embryonic stem cells
/ Engineering and Technology
/ Experiments
/ Free surfaces
/ High-throughput screening (Biochemical assaying)
/ Humidity
/ Lasers
/ Methods
/ Microscope and microscopy
/ Microscopy
/ Pattern formation
/ Phenotypes
/ Physical Sciences
/ Research and Analysis Methods
/ Stem cell transplantation
/ Stem cells
2022
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Do you wish to request the book?
Cost-efficient boundary-free surface patterning achieves high effective-throughput of time-lapse microscopy experiments
by
Allard, Jun
, Ding, Fangyuan
, Yin, Hong
, Liang, Guohao
in
Adhesives
/ Analysis
/ Biology and Life Sciences
/ Cell surface
/ Embryo cells
/ Embryonic stem cells
/ Engineering and Technology
/ Experiments
/ Free surfaces
/ High-throughput screening (Biochemical assaying)
/ Humidity
/ Lasers
/ Methods
/ Microscope and microscopy
/ Microscopy
/ Pattern formation
/ Phenotypes
/ Physical Sciences
/ Research and Analysis Methods
/ Stem cell transplantation
/ Stem cells
2022
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Cost-efficient boundary-free surface patterning achieves high effective-throughput of time-lapse microscopy experiments
Journal Article
Cost-efficient boundary-free surface patterning achieves high effective-throughput of time-lapse microscopy experiments
2022
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Overview
Time-lapse microscopy plays critical roles in the studies of cellular dynamics. However, setting up a time-lapse movie experiments is not only laborious but also with low output, mainly due to the cell-losing problem (i.e., cells moving out of limited field of view), especially in a long-time recording. To overcome this issue, we have designed a cost-efficient way that enables cell patterning on the imaging surfaces without any physical boundaries. Using mouse embryonic stem cells as an example system, we have demonstrated that our boundary-free patterned surface solves the cell-losing problem without disturbing their cellular phenotype. Statistically, the presented system increases the effective-throughput of time-lapse microscopy experiments by an order of magnitude.
Publisher
Public Library of Science,Public Library of Science (PLoS)
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