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Siemann, D.

Publications and source records attributed to Siemann, D..

2 recordsLinked to original sources

All-optical mechanobiology interrogation of YAP in human cancer and normal cells using a novel multi-functional system

Long-term multi-functional imaging and analysis of live cells require streamlined functional coordination of various hardware and software platforms. However, manual control of various equipment produced by different manufacturers is labor-intensive and time-consuming, potentially decreasing the accuracy, reproducibility, and quality of acquired data. Therefore, an all-in-one and user-programmable system that enables automatic, multi-functional, and long-term image acquisition and is compatible with most fluorescent microscopy platforms can desirably benefit the scientific community. In this paper, we introduce the full operating protocols of utilizing a novel integrated software system that consists of (1) a home-built software program, titled "Automatic Multi-functional Integration Program (AMFIP)", which enables automatic multi-channel imaging acquisition, and (2) a suite of quantitative imaging analysis and cell traction computation packages. We applied this integrated system to reveal the previously unknown relationship between the spatial-temporal distribution of mechano-sensitive Yes-associated protein (YAP) and the cell mechanics, including cell spreading and traction, in human normal cells (B2B) and lung cancer cells (PC9). Leveraging our systems capability of multi-channel control and readout, we found: (1) B2B normal cells and PC9 cancer cells show distinct YAP expression, traction, and cell dynamics relationship during cell spreading and migration processes; and (2) PC9 cancer cells apply noticeable peri-nuclear forces on substrates. In summary, this paper presents a detailed stepwise protocol on how to utilize an integrated user-programmable system that enables automatic multi-functional imaging and analysis to elucidate YAP mechanosensitivity. These tools open the possibility for detailed explorations of multifaceted signaling dynamics in the context of cell physiology and pathology. SUMMARYThis paper presents a detailed stepwise protocol on how to utilize an integrated user-programmable system that enables all-optical electro-mechanobiology interrogation to elucidate YAP mechanosensitivity.

biophysics↗

Automatic Multi-functional Integration Program (AMFIP) towards All-optical Mechanobiology Interrogation

Automatic operations of multi-functional and time-lapse live-cell imaging are necessary for biomedical studies of active, multi-faceted, and long-term biological phenomena. To achieve automatic control, most existing solutions often require the purchase of extra software programs and hardware that rely on the manufacturers own specifications. However, these software programs are usually non-user-programmable and unaffordable for many laboratories. Manager is a widely used open-source software platform for controlling many optoelectronic instruments. Due to limited development since its introduction, Manager lacks compatibility with some of the latest microscopy equipment. To address this unmet need, we have developed a novel software-based automation program, titled Automatic Multi-functional Integration Program (AMFIP), as a new Java-based and hardware-independent plugin for Manager. Without extra hardware, AMFIP enables the functional synchronization of Manager, the Nikon NIS-Elements platform, and other 3rd party software to achieve automatic operations of most commercially available microscopy systems, including but not limited to Nikon. AMFIP provides a user-friendly and programmable graphical user interface (GUI), opening the door to expanding the customizability for many hardware and software. Users can customize AMFIP according to their own specific experimental requirements and hardware environments. To verify AMFIPs performance, we applied it to elucidate the relationship between cell spreading and spatial-temporal cellular expression of Yes-associated protein (YAP), a mechanosensitive protein that shuttles between cytoplasm and nucleus upon mechanical stimulation, in an epithelial cell line. We found that the ratio of YAP expression in nucleus and cytoplasm decreases as the spreading area of cells increases, suggesting that the accumulation of YAP in the nucleus decreases throughout the cell spreading processes. In summary, AMFIP provides a new open-source and charge-free solution to integrate multiple hardware and software to satisfy the need of automatic imaging operations in the scientific community.

bioengineering↗