Here, we provide a method for live cell imaging analysis that can be used to manually track the lineages of passage 0 keratinocytes and that allows the collection of proliferation metrics, including cell division fate and cell cycle duration.
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Method Article
Here, we provide a method for live cell imaging analysis that can be used to manually track the lineages of passage 0 keratinocytes and that allows the collection of proliferation metrics, including cell division fate and cell cycle duration.
Live-cell imaging is an evolving and somewhat challenging method to study keratinocyte behavior in vitro. Historically, keratinocyte division behavior was investigated via methods such as clonal analysis, immunostaining, and cell cycle analysis. None of these methods allow for the analysis of keratinocyte behavior at the single-cell level in real time. Over the past decade, groups have utilized live cell imaging to identify keratinocyte stem cells and committed progenitors without the need for labeling. Differences have been identified in each respective group's division behavior, rate of terminal differentiation, and cell cycle duration. Here, a method for keratinocyte live cell imaging with time-lapse photography and its analysis is described. Utilizing unpassaged keratinocytes is recommended for this method to most closely mimic in vivo behavior. Live cell imaging provides a unique ability to study stem cell and committed progenitor behavior at the single cell level and to determine division fates, cell cycle duration, as well as other proliferation metrics.
The ability to visualize cell populations in vitro in real-time as they expand for extended periods of time is a unique benefit of live cell imaging. Live cell imaging allows for cell motility, migration, and proliferation to be assessed at the single-cell level. The goal of this protocol is to optimize the visualization of keratinocyte cultures via time-lapse photography, producing videos that can then be tracked manually to obtain granular data on cellular behavior.
Our focus is on proliferation kinetics. From the analysis of the live cell imaging videos, lineage trees can be elucidated, and the time between divisions (a proxy for cell cycle duration), as well as the proportions of divisions that lead to further division versus differentiation of the daughter cells can be assessed.
There is substantial donor-to-donor variability when dealing with primary keratinocytes and frequent failed attempts at cell propagation. Because of this, many investigators opt to use highly proliferative keratinocytes such as HaCaT cells or neonatal keratinocytes, often after they have undergone multiple passages in vitro1. Culturing primary keratinocytes from adult or aged skin for the purpose of lineage tracing can be challenging. However, there are issues with the use of passaged cells from cell lines or from male foreskin. Repeated passaging results in cells that are significantly different from their in vivo state2. Furthermore, HaCaT cells have been shown to react differently than primary keratinocytes in multiple assays3,4,5. To utilize cells that most closely resemble their in vivo counterparts, passage 0 keratinocytes from adult human donors are utilized. Keratinocyte stem cells and committed progenitors exhibit distinct differences in behavior, that allow colonies from either population to be distinguished via live cell imaging6. This relatively novel ability to visualize the behavior of single keratinocytes over the long term has been used in only a few previous studies using similar techniques6,7,8. This protocol outlines live cell imaging of primary keratinocytes utilizing the IncuCyte S3 Live-Cell Analysis System. From the lineage trees that are constructed, colony type can be determined (stem cell versus committed progenitor), as well as cell cycle duration and the proportion of differentiation divisions.
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This study was performed in accordance with the Declaration of Helsinki. All human tissue was obtained after approval by the University of California, San Francisco (UCSF) institutional review board (IRB), and consent was obtained for all tissue used.
1. Time lapse photography of passage 0 human keratinocytes
NOTE: This protocol is specific to the IncuCyte S3 and SX5.
2. Using time-lapse imaging to construct lineage trees and generate data sheets
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Primary keratinocytes grow in a stereotyped fashion, which can be tracked via live cell imaging. VLC media player is used to survey recordings. The time until the first division is variable and can be multiple days depending upon the characteristics of the donor, such as age, health status, or the growth factors present in vitro environment. Upon initial seeding, keratinocytes have a small, rounded appearance (Figure 1). After seeding, the colony-forming keratinocytes typically beco...
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Live cell imaging of keratinocytes is a label-free method to track the division behavior of stem cells and committed progenitors. Given that maintenance of the epidermis is dependent on the proliferation kinetics of stem cells and committed progenitors10, having a granular understanding of the changes in these keratinocyte populations and how they are affected in various conditions facilitates the development of therapies to ameliorate defects that are discovered.
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This work was supported by Merit Review Award Number I01 CX001816 from the United States (U.S.) Department of Veterans Affairs Clinical Sciences R&D (CSRD) Service. The contents do not represent the views of the U.S. Department of Veterans Affairs or the United States Government. We thank Dr. Michael Rosenblum for providing us access to his time-lapse microscope to conduct our experiments.
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| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| 96 Well Imagelock plate | Sartorius | BA-04856 | Suggested microplate compatible with machine if using a 96 well plate. |
| 24 well plate | Corning | 3524 | Suggested microplate compatible with machine if using a 24 well plate. |
| Amphotericin B, 50 mL | Corning | 30-003-CF | Dilute to 5x (comes in 100x stock) for 5x PSA - 1x for media changes |
| Epilife, 50 mL | Gibco | MEP1500CA | Add S7, consider primocin |
| IncuCyte S3 | Sartorius | 4637 | Imager (Zoom/SX5 acceptable alternatives) |
| Penicillin/Streptomycin, 100 mL | Corning | 30-002-Cl | Dilute to 5x (comes in 100x stock) |
| Primocin | Invivogen | ant-pm-05 | 1 mL per 500 mL media |
| Supplement S7 | Gibco | S0175 | Added to epilife |
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