Mammalian SUN Protein Interaction Networks at the Inner Nuclear Membrane and Their Role in Laminopathy Disease Processes
Сети взаимодействий белков SUN млекопитающих на внутренней ядерной мембране и их роль в патологических процессах при ламинопатиях
2009-11-22
SCID: 54.1/a6xsmg9c
Discuss with AI
Hutchinson-Gilford progeria syndromeLINC complexSUN protein interaction networksinner nuclear membranelaminopathies
Figures from the paper
Abstract (AI)
The nuclear envelope (NE) LINC complex, in mammals comprised of SUN domain and nesprin proteins, provides a direct connection between the nuclear lamina and the cytoskeleton, which contributes to nuclear positioning and cellular rigidity. SUN1 and SUN2 interact with lamin A, but lamin A is only required for NE localization of SUN2, and it remains unclear how SUN1 is anchored. Here, we identify emerin and short nesprin-2 isoforms as novel nucleoplasmic binding partners of SUN1/2. These have overlapping binding sites distinct from the lamin A binding site. However, we demonstrate that tight association of SUN1 with the nuclear lamina depends upon a short motif within residues 209-228, a region that does not interact significantly with known SUN1 binding partners. Moreover, SUN1 localizes correctly in cells lacking emerin. Importantly then, the major determinant of SUN1 NE localization has yet to be identified. We further find that a subset of lamin A mutations, associated with laminopathies Emery-Dreifuss muscular dystrophy (EDMD) and Hutchinson-Gilford progeria syndrome (HGPS), disrupt lamin A interaction with SUN1 and SUN2. Despite this, NE localization of SUN1 and SUN2 is not impaired in cell lines from either class of patients. Intriguingly, SUN1 expression at the NE is instead enhanced in a significant proportion of HGPS but not EDMD cells and strongly correlates with pre-lamin A accumulation due to preferential interaction of SUN1 with pre-lamin A. We propose that these different perturbations in lamin A-SUN protein interactions may underlie the opposing effects of EDMD and HGPS mutations on nuclear and cellular mechanics.
Key Findings
1
Emerin and short nesprin-2 isoforms are novel nucleoplasmic binding partners of SUN1 and SUN2, sharing binding sites distinct from lamin A.
2
SUN1 association with the nuclear lamina requires residues 209–228, which do not significantly interact with known SUN1 partners; its principal anchoring determinant remains unidentified.
3
SUN1 localizes correctly at the nuclear envelope without emerin, indicating emerin is not essential for SUN1 nuclear-envelope localization.
4
SUN1 nuclear-envelope expression is enhanced in many HGPS cells, correlating with pre-lamin A accumulation and preferential SUN1 binding; this may contribute to contrasting mechanical effects of EDMD and HGPS mutations.
5
Several EDMD- and HGPS-associated lamin A mutations disrupt lamin A interactions with SUN1 and SUN2, yet do not impair their nuclear-envelope localization.
Research Object
Mammalian SUN1/SUN2 protein interaction networks at the inner nuclear membrane, including their interactions with lamin A, emerin, nesprin-2 isoforms, and pre-lamin A in laminopathy-associated cells
Research Subject
The molecular determinants and disease-related perturbations of SUN1/SUN2 anchoring and localization at the nuclear envelope, including altered interactions with lamin A and pre-lamin A in EDMD and HGPS
Publication Details
Publication Date
2009-11-22
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest