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Viverette, E.

Publications and source records attributed to Viverette, E..

3 recordsLinked to original sources

A higher order PUF complex is central to regulation of C. elegans germline stem cells

PUF RNA-binding proteins are broadly conserved stem cell regulators. Nematode PUF proteins maintain germline stem cells (GSCs) and, with key partner proteins, repress differentiation mRNAs, including gld-1. Here we report that PUF protein FBF-2 and its partner LST-1 form a ternary complex that represses gld-1 via a pair of adjacent FBF-2 binding elements (FBEs) in its 3UTR. One LST-1 molecule links two FBF-2 molecules via motifs in the LST-1 intrinsically-disordered region; the gld-1 FBE pair includes a well-established canonical FBE and a newly-identified noncanonical FBE. Remarkably, this FBE pair drives both full RNA repression in GSCs and full RNA activation upon differentiation. Discovery of the LST-1-FBF-2 ternary complex, the gld-1 adjacent FBEs, and their in vivo significance predicts an expanded regulatory repertoire of different assemblies of PUF-partner complexes in nematode germline stem cells. It also suggests analogous PUF controls may await discovery in other biological contexts and organisms.

biochemistry↗

Mouse α-synuclein fibrils are structurally and functionally distinct from human fibrils associated with Lewy body diseases

Short AbstractThe intricate process of -synuclein aggregation and fibrillization hold pivotal roles in Parkinsons disease (PD) and multiple system atrophy (MSA). While mouse -synuclein can fibrillize in vitro, whether these fibrils commonly used in research to induce this process or form can reproduce structures in the human brain remains unknown. Here we report the first atomic structure of mouse -synuclein fibrils, which was solved in parallel by two independent teams. The structure shows striking similarity to MSA-amplified and PD-associated E46K fibrils. However, mouse -synuclein fibrils display altered packing arrangements, reduced hydrophobicity, heightened fragmentation sensitivity, and evoke only weak immunological responses. Furthermore, mouse -synuclein fibrils exhibit exacerbated pathological spread in neurons and humanized -synuclein mice. These findings provide new insights into the structural underpinnings of -synuclein pathogenicity and emphasize a need to reassess the role of mouse -synuclein fibrils in the development of related diagnostic probes and therapeutic interventions.

neuroscience↗

Structural and functional landscape of α-synuclein fibril conformations amplified from cerebrospinal fluid

Lewy body dementias are pathologically defined by the deposition of -synuclein fibrils into inclusions throughout the brain. Cerebrospinal fluid(CSF) in disease harbors circulating -synuclein-fibril seeds, and parental -synuclein fibrils can template core structure into amplified fibrils. Using cryo-electron microscopy, we identify six novel -synuclein fibril assemblies amplified from ten CSF samples (3.8[A] to 2.9[A] nominal resolutions). Fibrils are classified based on two types of filament interaction, two types of {beta}-sheet stacking, and two types of hydrophobic pocket. CSF-amplified fibril products have one, two, or three distinct assemblies each. Six of ten samples share a common fibril assembly. Within this classification, the fibrils have distinct profiles in amyloid dye binding, and dramatically different potencies in both seeding new inclusions in neurons and evoked microglial pro-inflammatory responses. However, no single structural feature predicts functional phenotypes. Our results highlight CSF as a valuable resource to identify novel -synuclein assemblies potentially important in disease.

neuroscience↗