Javascript must be enabled to continue!
Affinity hierarchies and amphiphilic proteins underlie the co-assembly of nucleolar and heterochromatin condensates
View through CrossRef
Abstract
Nucleoli are surrounded by Pericentromeric Heterochromatin (PCH), reflecting a close spatial association between the two largest biomolecular condensates in eukaryotic nuclei. Nucleoli are the sites of ribosome synthesis, while the repeat-rich PCH is essential for chromosome segregation, genome stability, and transcriptional silencing. How and why these two distinct condensates co-assemble is unclear. Here, using high-resolution live imaging of
Drosophila
embryogenesis, we find that
de novo
establishment of PCH around the nucleolus is highly dynamic, transitioning from the nuclear edge to surrounding the nucleolus. Eliminating the nucleolus by removing the ribosomal RNA genes (rDNA) resulted in increased PCH compaction and subsequent reorganization into a toroidal structure. In addition, in embryos lacking rDNA, some nucleolar proteins were redistributed into new bodies or ‘neocondensates’, including enrichment in the PCH toroidal hole. Combining these observations with physical modeling revealed that nucleolar-PCH associations can be mediated by a hierarchy of interaction strengths between PCH, nucleoli, and ‘amphiphilic’ protein(s) that have affinities for both nucleolar and PCH components. We validated this model by identifying a candidate amphiphile, a DEAD-Box RNA Helicase called Pitchoune, whose depletion or mutation of its PCH interaction motif disrupted PCH-nucleolar associations. Together, this study unveils a dynamic program for establishing nucleolar-PCH associations during animal development, demonstrates that nucleoli are required for normal PCH organization, and identifies Pitchoune as an amphiphilic molecular link required for PCH-nucleolar associations.
Title: Affinity hierarchies and amphiphilic proteins underlie the co-assembly of nucleolar and heterochromatin condensates
Description:
Abstract
Nucleoli are surrounded by Pericentromeric Heterochromatin (PCH), reflecting a close spatial association between the two largest biomolecular condensates in eukaryotic nuclei.
Nucleoli are the sites of ribosome synthesis, while the repeat-rich PCH is essential for chromosome segregation, genome stability, and transcriptional silencing.
How and why these two distinct condensates co-assemble is unclear.
Here, using high-resolution live imaging of
Drosophila
embryogenesis, we find that
de novo
establishment of PCH around the nucleolus is highly dynamic, transitioning from the nuclear edge to surrounding the nucleolus.
Eliminating the nucleolus by removing the ribosomal RNA genes (rDNA) resulted in increased PCH compaction and subsequent reorganization into a toroidal structure.
In addition, in embryos lacking rDNA, some nucleolar proteins were redistributed into new bodies or ‘neocondensates’, including enrichment in the PCH toroidal hole.
Combining these observations with physical modeling revealed that nucleolar-PCH associations can be mediated by a hierarchy of interaction strengths between PCH, nucleoli, and ‘amphiphilic’ protein(s) that have affinities for both nucleolar and PCH components.
We validated this model by identifying a candidate amphiphile, a DEAD-Box RNA Helicase called Pitchoune, whose depletion or mutation of its PCH interaction motif disrupted PCH-nucleolar associations.
Together, this study unveils a dynamic program for establishing nucleolar-PCH associations during animal development, demonstrates that nucleoli are required for normal PCH organization, and identifies Pitchoune as an amphiphilic molecular link required for PCH-nucleolar associations.
Related Results
Affinity hierarchies and amphiphilic proteins underlie
the co-assembly of nucleolar and heterochromatin condensates
Affinity hierarchies and amphiphilic proteins underlie
the co-assembly of nucleolar and heterochromatin condensates
Abstract
Nucleoli are surrounded by Pericentromeric Heterochromatin (PCH), reflecting a close spatial association between the two largest biomolecular condensates in eukary...
Abstract 1720: 53BP1 regulates heterochromatin through liquid-liquid phase separation (LLPS)
Abstract 1720: 53BP1 regulates heterochromatin through liquid-liquid phase separation (LLPS)
Abstract
As compacted DNA, heterochromatin represses abnormal gene expression by inhibiting DNA transcription and maintains genome integrity by protecting aberrant c...
Amphiphilic proteins coassemble into multiphasic condensates and act as biomolecular surfactants
Amphiphilic proteins coassemble into multiphasic condensates and act as biomolecular surfactants
AbstractCells contain membraneless compartments that assemble due to liquid-liquid phase separation, including biomolecular condensates with complex morphologies. For instance, cer...
7
th
International Symposium on Enabling Technologies for Life Sciences (ETP)
7
th
International Symposium on Enabling Technologies for Life Sciences (ETP)
The seventh in the series of ETP Symposia (see
Rapid Communications in Mass Spectrometry
2012,
26
, ...
Lytic Reactivation of the Kaposi’s sarcoma-associated herpesvirus (KSHV) is Accompanied by Major Nucleolar Alterations
Lytic Reactivation of the Kaposi’s sarcoma-associated herpesvirus (KSHV) is Accompanied by Major Nucleolar Alterations
Abstract
The nucleolus is a sub-nuclear compartment whose primary function is the biogenesis of ribosomal subunits. Certain viral infections affe...
Ligand Effects on Phase Separation of Multivalent Macromolecules
Ligand Effects on Phase Separation of Multivalent Macromolecules
Abstract
Biomolecular condensates enable spatial and temporal control over cellular processes by concentrating biomolecules into non-stoichiometr...
Nucleolar stress: Friend or foe in cardiac function?
Nucleolar stress: Friend or foe in cardiac function?
Studies in the past decades have uncovered an emerging role of the nucleolus in stress response and human disease progression. The disruption of ribosome biogenesis in the nucleolu...
Elasticity generates indissoluble biomolecular condensates
Elasticity generates indissoluble biomolecular condensates
While biomolecular condensates are often liquid-like, many experiments found that condensates also exhibit solid-like behaviors, making them indissoluble in conditions liquid conde...

