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Updated: Apr 16, 2026

Detection of Nuclear Blebbing and DNA Leakage in Mammalian Cells by Immunofluorescence
Published on: January 17, 2025
Wash interacts with lamin and affects global nuclear organization
Jeffrey M Verboon1, Hector Rincon-Arano1, Timothy R Werwie1
1Basic Sciences Division, Fred Hutchinson Cancer Research Center, Seattle, WA 98109, USA.
Insights
Drosophila Wash protein, previously known for cytoplasmic roles, is found in the nucleus. It plays a crucial role in organizing nuclear structure and chromatin, revealing a new function for this Wiskott-Aldrich syndrome family protein.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Wiskott-Aldrich syndrome (WAS) family proteins are crucial for cytoskeleton dynamics and cellular functions.
- Drosophila washout (wash) was identified as a WAS family member with known cytoplasmic roles.
- Emerging evidence suggests nuclear functions for cytoplasmic proteins, including gene regulation.
Purpose of the Study:
- To investigate the nuclear localization and function of Drosophila Wash.
- To determine Wash's role in nuclear organization and chromatin structure.
Main Methods:
- Nuclear localization analysis of Drosophila Wash.
- Characterization of nuclear morphology in wash mutants and knockdown cells.
- Chromatin immunoprecipitation and analysis of histone modifications.
- Interaction studies between Wash and Lamin Dm0.
Main Results:
- Drosophila Wash is localized in the nucleus and is essential for global nuclear organization.
- Wash mutant and knockdown nuclei exhibit disrupted subnuclear structures and abnormal morphology.
- Wash interacts with Lamin Dm0 and associates with constitutive heterochromatin.
- Wash knockdown leads to increased chromatin accessibility and redistribution of histone modifications.
Conclusions:
- Drosophila Wash has a novel nuclear function in maintaining nuclear morphology and organizing chromatin.
- Wash's nuclear role impacts both chromatin and non-chromatin nuclear substructures.
- This discovery expands the known functions of WAS family proteins beyond the cytoplasm.
Abstract:
The cytoplasmic functions of Wiskott-Aldrich syndrome family (WAS) proteins are well established and include roles in cytoskeleton reorganization and membrane-cytoskeletal interactions important for membrane/vesicle trafficking, morphogenesis, immune response, and signal transduction. Misregulation of these proteins is associated with immune deficiency and metastasis [1-4]. Cytoplasmic WAS proteins act as effectors of Rho family GTPases and polymerize branched actin through the Arp2/3 complex [1, 5]. Previously, we identified Drosophila washout (wash) as a new member of the WAS family with essential cytoplasmic roles in early development [6, 7]. Studies in mammalian cells and Dictyostelium suggest that WASH functions primarily in a multiprotein complex that regulates endosome shape and trafficking in an Arp2/3-dependent manner [8-11]. However, roles for classically cytoplasmic proteins in the nucleus are beginning to emerge, in particular, as participants in the regulation of gene expression [12, 13]. Here, we show that Drosophila Wash is present in the nucleus, where it plays a key role in global nuclear organization. wash mutant and knockdown nuclei disrupt subnuclear structures/organelles and exhibit the abnormal wrinkled morphology reminiscent of those observed in diverse laminopathies [14-16]. We find that nuclear Wash interacts with B-type Lamin (Lamin Dm0), and, like Lamin, Wash associates with constitutive heterochromatin. Wash knockdown increases chromatin accessibility of repressive compartments and results in a global redistribution of repressive histone modifications. Thus, our results reveal a novel role for Wash in modulating nucleus morphology and in the organization of both chromatin and non-chromatin nuclear sub-structures.
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