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Aizawa, E.

Publications and source records attributed to Aizawa, E..

3 recordsLinked to original sources

Cryo-sensitive aggregation triggers NLRP3 inflammasome assemblyin cryopyrin-associated periodic syndrome

Cryopyrin-associated periodic syndrome (CAPS) is an autoinflammatory syndrome caused by mutations of NLRP3, which was originally identified as cryopyrin. Familial cold autoinflammatory syndrome (FCAS), the mildest form of CAPS, is characterized by cold-induced inflammation induced by the overproduction of IL-1{beta}. However, the molecular mechanism of how mutated NLRP3 causes inflammasome activation in CAPS remains unclear. Here, we found that CAPS-associated NLRP3 mutants form cryo-sensitive aggregates that function as a scaffold for inflammasome activation. Cold exposure promoted inflammasome assembly and subsequent IL-1{beta} release triggered by mutated NLRP3. While K+ efflux was dispensable, Ca2+ was indispensable for mutated NLRP3-mediated inflammasome assembly. Notably, Ca2+ influx was induced during mutated NLRP3-mediated inflammasome assembly. Furthermore, caspase-1 inhibition prevented Ca2+ influx and inflammasome assembly induced by the mutated NLRP3, suggesting a feed-forward Ca2+ influx loop triggered by mutated NLRP3. Thus, the mutated NLRP3 forms cryo-sensitive aggregates to promote inflammasome assembly distinct from canonical NLRP3 inflammasome activation.

immunology

Haploid mouse germ cell precursors from embryonic stem cells reveal Xist activation from a single X chromosome

Mammalian haploid cells have applications for genetic screening and substituting gametic genomes. Here we characterize a culture system for obtaining haploid primordial germ cell-like cells (PCGLCs) from haploid mouse embryonic stem cells (ESCs). We find that a haploid genome is maintained in PGCLCs with a high frequency indicating a substantially lower rate of diploidization than somatic cells. Characterization of the differentiating haploid ESCs reveals that Xist is activated from the single X chromosome. This observation suggests that X chromosome inactivation is initiated in haploid cells consistent with a model where autosomal blocking factors set a threshold for X-linked activators. The germline segregates from the epiblast and differs from somatic lineages in gene expression and epigenetic mechanisms. The ability of primordial germ cells for repressing Xist might contribute to the maintenance of a haploid genome.

developmental biology

Polyploidy of semi-cloned embryos generated from parthenogenetic haploid embryonic stem cells

In mammals, the fusion of two gametes, an oocyte and a spermatozoon, during fertilization forms a totipotent zygote. There has been no reported case of natural parthenogenesis, in which embryos develop from unfertilized oocytes. The genome and epigenetic information of haploid gametes are crucial for the proper development of embryos. Haploid embryonic stem cells (haESCs) are unique stem cells established from uniparental blastocysts and possess only one set of chromosomes. Previous studies have shown that sperm or oocyte genome can be replaced by haESCs with or without manipulation of genomic imprinting for generation of mice. Recently, these remarkable semi-cloning methods have been applied for screening of key factors of mouse embryonic development. While haESCs have been applied as substitute of gametic genome, the fundamental mechanism how haESCs contribute to the genome of totipotent embryos is unclear. Here, we show the generation of fertile semi-cloned mice by injection of parthenogenetic haESCs (phaESCs) into oocytes after deletions of two differentially methylated regions (DMRs), the IG-DMR and H19-DMR. For characterizing the genome of semi-cloned embryos further we establish ESC lines from semi-cloned blastocysts. We report that polyploid karyotypes are observed frequently in semi-cloned ESCs (scESCs). Our results confirm that mitotically arrested phaESCs provide high efficiency for semi-cloning when the IG-DMR and H19-DMR are deleted. In addition, we highlight the occurrence of polyploidy that needs to be considered for further improvement for development of semi-cloned embryos derived by haESC injection.

developmental biology