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Multimodal Light Microscopy Approaches to Reveal Structural and Functional Properties of Promyelocytic Leukemia
Christian Hoischen1, Shamci Monajembashi1, Klaus Weisshart2
1Leibniz Institute on Aging Research, Jena, Germany.
Abstract:
The promyelocytic leukemia (pml) gene product PML is a tumor suppressor localized mainly in the nucleus of mammalian cells. In the cell nucleus, PML seeds the formation of macromolecular multiprotein complexes, known as PML nuclear bodies (PML NBs). While PML NBs have been implicated in many cellular functions including cell cycle regulation, survival and apoptosis their role as signaling hubs along major genome maintenance pathways emerged more clearly. However, despite extensive research over the past decades, the precise biochemical function of PML in these pathways is still elusive. It remains a big challenge to unify all the different previously suggested cellular functions of PML NBs into one mechanistic model. With the advent of genetically encoded fluorescent proteins it became possible to trace protein function in living specimens. In parallel, a variety of fluorescence fluctuation microscopy (FFM) approaches have been developed which allow precise determination of the biophysical and interaction properties of cellular factors at the single molecule level in living cells. In this report, we summarize the current knowledge on PML nuclear bodies and describe several fluorescence imaging, manipulation, FFM, and super-resolution techniques suitable to analyze PML body assembly and function. These include fluorescence redistribution after photobleaching, fluorescence resonance energy transfer, fluorescence correlation spectroscopy, raster image correlation spectroscopy, ultraviolet laser microbeam-induced DNA damage, erythrocyte-mediated force application, and super-resolution microscopy approaches. Since most if not all of the microscopic equipment to perform these techniques may be available in an institutional or nearby facility, we hope to encourage more researches to exploit sophisticated imaging tools for their research in cancer biology.
Insights
The promyelocytic leukemia (PML) protein forms nuclear bodies crucial for genome maintenance. Advanced microscopy techniques can now elucidate PML
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- The promyelocytic leukemia (PML) protein functions as a tumor suppressor, primarily in the cell nucleus.
- PML protein aggregates into macromolecular complexes known as PML nuclear bodies (PML NBs).
- PML NBs are involved in cell cycle regulation, survival, and apoptosis, acting as signaling hubs in genome maintenance.
Purpose of the Study:
- To review current knowledge on PML nuclear bodies and their functions.
- To describe advanced fluorescence imaging and microscopy techniques for analyzing PML NB assembly and function.
- To encourage the use of sophisticated imaging tools in cancer biology research.
Main Methods:
- Utilizing genetically encoded fluorescent proteins to track protein function in living cells.
- Employing fluorescence fluctuation microscopy (FFM) for single-molecule biophysical and interaction analysis.
- Summarizing techniques such as FRAP, FRET, FCS, RISC, UV laser-induced DNA damage, and super-resolution microscopy.
Main Results:
- The precise biochemical function of PML in genome maintenance pathways remains elusive.
- PML NBs are critical signaling hubs, but a unified mechanistic model for their functions is lacking.
- Advanced microscopy offers powerful tools to investigate PML NB dynamics and function at the molecular level.
Conclusions:
- Advanced fluorescence microscopy techniques provide unprecedented insights into PML nuclear body assembly and function.
- These methods enable the study of biophysical and interaction properties of PML at the single-molecule level in living cells.
- The application of these sophisticated imaging tools is encouraged to advance cancer biology research.
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