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Konstantinidou, S. M.

Publications and source records attributed to Konstantinidou, S. M..

2 recordsLinked to original sources

C9ORF72-derived polyGR polypeptides disrupt passive nucleocytoplasmic transport by tuning protein affinity for the nuclear pore barrier

Nucleocytoplasmic partitioning is an essential determinant of eukaryotic cellular function, governed by the nuclear pore complex, a molecular portal filled by a disordered phenylalanine-glycine (FG)-rich phase that governs selective entry and exit. Disruption of nucleocytoplasmic partitioning is seen across many different diseases, including viral infection, cancer, and neurodegeneration. However, what determines whether a given protein mislocalises when nucleocytoplasmic transport is disrupted remains unknown. This question is central to amyotrophic lateral sclerosis and frontotemporal dementia (ALS/FTD), where cytosolic mislocalisation of the nuclear RNA-binding protein TDP-43 is a defining pathological feature. The most common genetic cause of these diseases is a G4C2 repeat expansion in the gene C9ORF72, which produces aberrant neurotoxic polypeptides that induce nucleocytoplasmic transport defects. Here, we show how the highly toxic poly(glycine-arginine/GR) polypeptide engages the nuclear pore FG-rich selectivity barrier and retunes passive nucleocytoplasmic transport according to client surface chemistry. Using coarse-grained simulations, in vitro FG-phase reconstitution and human cell lines and neurons, we find that polyGR produces a non-linear, biphasic modulation of nuclear pore passage. Proteins with low affinity for the FG phase are unaffected, whereas proteins with higher affinity due to solvent-exposed hydrophobic residues exhibit enhanced transport up to a critical threshold, beyond which highly hydrophobic proteins experience transport suppression, cytoplasmic accumulation and aggregation. Together, these findings establish how disease-associated polypeptides retune the physicochemical rules governing passive nuclear pore transport, leading to biphasic outcomes determined by protein surface chemistry that alter protein compartmentalisation and aggregation. This provides a biophysical mechanism by which polyGR drives selective protein vulnerability to nuclear pore dysfunction in C9ORF72-associated ALS/FTD.

cell biology↗

Prominent white matter related abnormalities associated with diverse molecular alterations in a mouse model of Col4a1 cerebral small vessel disease.

White matter abnormalities are a hallmark of cerebral small vessel disease (cSVD) and are closely linked to cognitive decline and dementia. However, despite their clinical importance, underlying mechanisms remain poorly understood. Collagen IV, encoded by genes COL4A1/COL4A2, is a major component of the basement membrane, a specialised extracellular matrix (ECM) structure. Mutations in these genes cause a genetic form of cSVD. We tested the hypothesis that ECM defects caused by a Col4a1 mutation lead to white matter pathology using an established mouse model of cSVD (Col4a1+/Svc). Behavioural testing with magnetic resonance diffusion tensor imaging, pathology and ultrastructural investigations of white matter were studied. The studies revealed that Col4a1+/Svc mice have cognitive impairments, reduced myelinating oligodendrocyte pools, axonal myelination defects, and altered white matter structural integrity. Proteomic analysis, of isolated white matter from Col4a1+/Svcmice, identified extensive changes to ECM composition and endoplasmic reticulum (ER) biology including ER stress induction. We also demonstrated that targeting protein folding to promote collagen secretion and reduce ER stress, increased myelinating oligodendrocytes and axon-glial integrity in Col4a1+/Svc mice. These data provide novel insight into the pathomolecular mechanisms of white matter abnormalities in cSVD and identify a modifiable pathway as a putative therapeutic target for cSVD.

neuroscience↗