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Biology subjects

Schwaller, N.

Publications and source records attributed to Schwaller, N..

4 recordsLinked to original sources

A human cell-free translation screen identifies the NT-2 mycotoxin as a ribosomal peptidyl transferase inhibitor

Translation inhibitors are invaluable for probing ribosome function and therapeutic applications, but systematic discovery in human systems is limited by the lack of scalable, screening-compatible cell-free platforms. Here, we establish a robust high-throughput screening using human lysates that bypasses cellular cytotoxic effects. After screening [~]28,000 small molecules, we identified known and a novel translation inhibitor, including NT-2, a trichothecene mycotoxin produced by the pathogenic Fusarium sporotrichioides. NT-2 suppressed protein synthesis in human cells and yeast lysates, while sparing translation in bacteria and intact yeast cells. Cryo-EM at 1.76 [A] revealed NT-2 bound at the peptidyl transferase center of the human 60S ribosome, confirming NT-2 as a ribosomal inhibitor associated with ribosomes in an inactive eEF2/SERBP1-associated dormant state. Together, these results expose NT-2 as a previously unrecognized environmental inhibitor of mammalian protein synthesis and demonstrate the power of cell-free translation screening to reveal new inhibitors with unexpected ribosome fates.

biochemistry↗

Uncoupling the functional roles of Coronavirus Nsp1

When host cells are infected with coronaviruses, the first viral protein produced is Nsp1. This protein inhibits host protein synthesis and induces host mRNA degradation to enhance viral proliferation. Despite its critical role, the mechanism by which Nsp1 mediates cellular mRNA degradation remains unclear. In this study, we use cell-free translation to address how the host mRNA stability is regulated by Nsp1. We reveal that SARS-CoV-2 Nsp1 binding to the ribosome is enough to trigger mRNA degradation independently of ribosome collisions or active translation. MERS-CoV Nsp1 inhibits translation without triggering degradation, highlighting mechanistic differences between the two Nsp1 counterparts. Nsp1 and viral mRNAs appear to co-evolve, rendering viral mRNAs immune to Nsp1-mediated degradation in SARS-CoV-2, MERS-CoV and Bat-Hp viruses. By providing new insights into the mode of action of Nsp1, our study helps to understand the biology of Nsp1 better and find new strategies for therapeutic targeting against coronaviral infections. SignificanceO_LICell-free assays allow the decoupling of Nsp1-mediated translation inhibition from RNA degradation. C_LIO_LINsp1 interaction with the ribosome is crucial for mRNA degradation, but active translation is not required. C_LIO_LISARS-CoV-2 Nsp1 induces mRNA degradation, while MERS-CoV Nsp1 inhibits translation without triggering degradation. C_LIO_LI5UTR-specific protection of viral mRNAs from Nsp1 indicates a co-evolutionary adaptation between the two features C_LI

molecular biology↗

Bi-allelic variants in WDR47 lead to neuronal loss causing a rare neurodevelopmental syndrome with corpus callosum dysgenesis in humans.

The corpus callosum (CC) is the largest interhemispheric connection that is largely formed by the axons of layer 2/3 callosal projection neurons (CPNs) through a series of tightly regulated cellular events, including neuronal specification, migration, axon extension and branching. Defects in any of those steps may prevent the proper development of the corpus callosum resulting in a spectrum of disorders collectively referred to as corpus callosum dysgenesis (CCD). Here, we report four unrelated families carrying bi-allelic variants in WDR47 presenting with CCD together with other neuroanatomical phenotypes such as microcephaly, cerebellar abnormalities and hydrocephalus. Using a combination of in vitro and in vivo mouse models and complementation assays, we show that independently from its previously identified functions in neuronal migration and axonal extension, WDR47 is required for survival of callosal neurons by contributing to the maintenance of mitochondrial and microtubule homeostasis. We further provide evidence that severity of the CCD phenotype is determined by the degree of the loss of function caused by the human variants. Taken together, we identify WDR47 as a causative gene of a new neurodevelopmental syndrome characterized by corpus callosum abnormalities and other neuroanatomical malformations.

neuroscience↗

The kinesin Kif21b regulates radial migration of cortical projection neurons through a noncanonical function on actin cytoskeleton.

Completion of neuronal migration is critical for brain development. Kif21b is a plus-end directed kinesin motor protein that promotes intracellular transport and controls microtubule dynamics in neurons. Here we report a physiological function of Kif21b during radial migration of projection neurons in the mouse developing cortex. In vivo analysis in mouse and live imaging on cultured slices demonstrate that Kif21b regulates the radial glia-guided locomotion of new-born neurons independently of its motility on microtubules. Unexpectedly we show that Kif21b directly binds and regulates the actin cytoskeleton both in vitro and in vivo in migratory neurons. We establish that Kif21b-mediated regulation of actin cytoskeleton dynamics influences branching and nucleokinesis during neuronal locomotion. Altogether, our results reveal atypical roles of Kif21b on the actin cytoskeleton during migration of cortical projection neurons.

neuroscience↗