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Marechal, N.

Publications and source records attributed to Marechal, N..

3 recordsLinked to original sources

Structural flexibility of the human vault protein revealed by high-resolution cryo-EM and molecular dynamics simulations

Vaults are massive ribonucleoprotein complexes, highly conserved and abundant in eukaryotic cells, yet with unclear function. Their thin-walled barrel-shape architecture is composed of two symmetrical, antiparallel half-shells, each containing 39 copies of the major vault protein (MVP). The spacious lumen of the vault suggests a role in cellular transport. To facilitate cargo encapsulation and release, the vault is thought to open into two halves, yet the molecular mechanism governing vault opening remains elusive. Here, we combine cryogenic electron microscopy (cryo-EM) and multi-scale molecular dynamics (MD) simulations to reveal the structural factors giving flexibility to the human vault protein. Using cryo-EM, we identified two alternative conformational states of the human vault, along with the half-vault shell. MD simulations of these structures show extensive, breathing-like motions, porous solvent-exposed surfaces, and distinct structural variability between conformational states. The stable intermediates and the flexibility at the interface of the half vaults together suggest a possible mechanism for the dynamic assembly and disassembly of the vault.

biochemistry↗

Organisation of axial regions of isolated mitotic chromosomes visualised by cryo correlative light and electron tomography

The formation of mitotic chromosomes is essential for the accurate segregation of genetic material during cell division. Increasing evidence suggests that chromosome formation involves the reorganization of DNA into loops anchored within chromosomal axial regions, whose structural organization remains insufficiently characterized. Taking advantage of DT40 cells, an avian cell model characterized by the presence of a range of chromosome sizes from 3.2-197 Mb, we have established a preparation of entire close-to-native native mitotic chromosomes for cryogenic correlative light and electron microscopy (cryo-CLEM). The size of the smallest chromosomes allows imaging of their axial regions without further thinning. Cryo-electron tomography of the chromosome axial regions reveals the presence of heterogeneous non-histone macromolecular densities (NHMDs), approximately 30-45 nm in size, interspersed within chromatin/DNA regions. We propose that NHMDs may contain condensins and contribute to chromosome architecture. In addition to NHMDs, we identified dense clusters of particles, similar in size, near the chromosome surface, likely associated with ribosomal components. To quantitatively differentiate NHMDs from these surface clusters, we developed an analytical approach based on particle interspacing and spatial distribution within the chromosome volume. By establishing a cryo-CLEM workflow for whole, near-native mitotic chromosomes, our study provides a foundation for investigating their ultrastructural architecture.

cell biology↗

Single-stranded DNA drives sigma subunit loading onto RNA polymerase to unlock initiation-competent conformations

Initiation of transcription requires the formation of the "open" promoter complex (RPo). For this, the {sigma} subunit of bacterial RNA polymerase (RNAP) binds to the non-template strand of the -10 element sequence of promoters and nucleates DNA unwinding. This is accompanied by a cascade of conformational changes on RNAP the mechanics of which remains elusive. Here, using single-molecule Forster resonance energy transfer and cryo-electron microscopy, we explored the conformational landscape of RNAP from the human pathogen Mycobacterium tuberculosis upon binding to a single-stranded DNA fragment that includes the -10 element sequence (-10 ssDNA). We found that like the transcription activator RbpA, -10 ssDNA induced {sigma} subunit loading onto the DNA/RNA channels of RNAP. This triggered RNAP clamp closure and unswiveling that are required for RPo formation and RNA synthesis initiation. Our results reveal a mechanism of ssDNA-guided RNAP maturation and identify the {sigma} subunit as a regulator of RNAP conformational dynamics

molecular biology↗