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Takasu, A.

Publications and source records attributed to Takasu, A..

2 recordsLinked to original sources

Snapshots from Cryo-ET of active SARS-CoV-2 virions

Understanding the molecular properties of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is crucial for tackling future outbreaks. Current structural knowledge of the trimeric spike protein relies on truncated recombinant proteins and/or inactivated full-length forms, which may suffer from overstabilization. Here, we apply cryo-electron tomography (cryo-ET) at a Biosafety Level 3 facility to study the virus structure in its native, active state. The virus particles exhibit variable shapes and sizes with diffusible spikes, with the majority in typical prefusion conformations. Notably, we identified unprecedented, a transient open-trimer prefusion states, revealing a hidden flexibility with opened S1 conformation. Subtomogram averaging of the prefusion spikes indicates a loosely packed trimeric architecture that may facilitate the formation of open-trimer state. A cryo-EM map of recombinant Omicron BA.2.75 spike protein further confirms the presence of this loosely packed trimer as a minor conformational state. The observed dynamics uncover conserved cryptic regions that can be targeted for broadly effective vaccines. Structural analysis of active viruses profoundly impacts our understanding of the overlooked fusion mechanism and vaccine, antibody/drug design.

microbiology↗

Transition to the structurally vulnerable nuclear state is an integral part of mouse embryonic development

Upon fertilization, germ cells are reprogrammed to acquire the ability to develop into an entire organism. Whereas extensive studies have focused on epigenetic reprogramming of chromatin states during development, changes of the nucleus that surrounds chromatin are ill-defined. Here, we show that nuclei become structurally and mechanically vulnerable at the 2-cell stage during mouse embryonic development. The 2-cell stage nuclei are extraordinarily plastic and deformable in contrast to those of 1-cell and 4-cell stages. The mechanically vulnerable nuclear state is attained by autophagy-mediated loss of lamin B1 from the nuclear membrane. This developmentally programmed lamin B1 dynamics is required for chromatin organization and major zygotic genome activation. We thus demonstrate that structural reprogramming of nuclei is a major determinant of embryonic gene expression and acquisition of totipotency.

cell biology↗