Search bioRxiv⌕ Search

Biology subjects

Negishi, L.

Publications and source records attributed to Negishi, L..

3 recordsLinked to original sources

Molecular and structural basis of the heterochromatin-specific chromatin remodeling activity by Arabidopsis DDM1

The chromatin remodeler DECREASE IN DNA METHYLATION 1 (DDM1) deposits the histone H2A variant H2A.W and silences transposons in Arabidopsis thaliana. However, the molecular mechanisms by which DDM1 specifically targets the nucleosome containing H2A.W and allows chromatin writers to access heterochromatin remained elusive. Here, we show that DDM1 promotes remodeling of the H2A.W nucleosome and requires interactions with the H2A.W-specific C-terminal tail. The cryo-EM structure of the DDM1-H2A.W nucleosome complex revealed that DDM1 binds to the N-terminal tail of H4 and the nucleosomal DNA. Comparison with the cryo-EM structure of the nucleosome containing H2A.W suggested that DDM1 increases the DNA end flexibility of nucleosomes. Based on these biochemical and structural results, we propose that the chromatin remodeling activity of DDM1 with the heterochromatin-specific H2A.W contributes to the maintenance of repressive epigenetic marks in heterochromatin by providing DNA methyltransferases with access to nucleosomal DNA.

molecular biology↗

TDP-43 safeguards the embryo genome from L1 retrotransposition

Transposable elements (TEs) are genomic parasites that propagate within the host genome and introduce mutations. Long interspersed nuclear element-1 (LINE-1 or L1) is the major TE class, which occupies nearly 20% of the mouse genome. L1 is highly active in mammalian preimplantation embryos, posing a major threat to genome integrity, but the mechanism of stage-specific protection against L1 retrotransposition is unknown. Here, we show that TAR DNA binding protein 43 (TDP-43), mutations in which constitute a major risk factor for amyotrophic lateral sclerosis (ALS), inhibits L1 retrotransposition in mouse embryonic stem cells (mESCs) and preimplantation embryos. Knock-down of TDP-43 resulted in massive genomic L1 expansion and impaired cell growth in preimplantation embryos and ESCs. Functional analysis demonstrated that TDP-43 interacts with L1 open reading frame 1 protein (L1 ORF1p) to mediate genomic protection, and loss of this interaction led to de-repression of L1 retrotransposition. Our results identify TDP-43 as a guardian of the embryonic genome. TeaserKnocking-down of TDP-43 causes massive L1 retrotransposition in preimplantation embryos.

developmental biology↗

SIPA1L1/SPAR1 is a non-PSD protein involved in GPCR signaling

SIPA1L1 (also known as SPAR1) has been proposed to regulate synaptic functions that are important in maintaining normal neuronal activities, such as regulating spine growth and synaptic scaling, as a component of the postsynaptic density (PSD)-95/N-methyl-D-aspartate receptor (NMDA-R)-complex. However, contrary to this view, our super-resolution and immunoelectron microscopic analyses demonstrate that SIPA1L1 is mainly localized to general submembranous and cytoplasmic regions in neurons, but scarcely to PSD. Our screening for native interactors of SIPA1L1 identified spinophilin and neurabin-1, regulators of G protein-coupled receptor (GPCR) signaling, but rejected PSD-95/NMDA-R-complex components. Furthermore, Sipa1l1-/- mice showed normal spine size distribution and NMDA-R-dependent synaptic plasticity. Nevertheless, Sipa1l1-/- mice showed aberrant responses to 2-adrenergic receptor (a spinophilin target) or adenosine A1 receptor (a neurabin-1 target) agonist stimulation and striking behavioral anomalies, such as hyperactivity, enhanced anxiety, learning impairments, social interaction deficits, and enhanced epileptic seizure susceptibility. Our findings revealed unexpected properties of SIPA1L1, suggesting a possible association of SIPA1L1 deficiency with neuropsychiatric disorders related to dysregulated GPCR signaling, such as epilepsy, attention deficit hyperactivity disorder (ADHD), autism, or fragile X syndrome.

neuroscience↗