Martin

@mamueller.bsky.social

Postdoc, interested in translation regulation and mRNA decay

🦠What if viruses could act as "vehicles" for toxic brain proteins in neurodegenerative diseases? Our new preprint shows that lentiviral particles efficiently package and transmit seeding-competent tau in a cellular model, providing insights into how viral infections may drive neurodegeneration.

Virus-mediated tau aggregate seeding in a cellular model

Formation of neuronal tau protein aggregates is a defining feature of tauopathies, including Alzheimer’s disease and frontotemporal dementia. Tau pathology propagates across brain regions by a cell-to...

biorxiv.org

Join us at the @crick.ac.uk for the 2026 meeting of the UK proteostasis community! We especially encourage students and postdocs to attend and share their work. All talks (except the keynotes) will be selected from abstracts.

Proteostasis UK@proteostasisuk.bsky.social · 6mo ago

📣 UK Proteostasis Meeting 2026 – Registration Now Open! I’m delighted to share that registration is now open for the UK Proteostasis Meeting 2026, hosted by The Francis Crick Institute on 20–21 July 2026
. Please register here(lnkd.in/ervXMzWN) and through Eventbrite for payment (lnkd.in/eTxqjnQy)

New paper: More than 2700 human 3′UTRs are highly conserved. These 3′UTRs are essential components in mRNA templates, as their deletion decreases protein activity without changing protein abundance. Highly conserved 3′UTRs help the folding of proteins with long IDRs. www.biorxiv.org/content/10.1...

mRNA 3′UTRs chaperone intrinsically disordered regions to control protein activity

More than 2,700 human mRNA 3′UTRs have hundreds of highly conserved (HC) nucleotides, but their biological roles are unclear. Here, we show that mRNAs with HC 3′UTRs mostly encode proteins with long intrinsically disordered regions (IDRs), including MYC, UTX, and JMJD3. These proteins are only fully active when translated from mRNA templates that include their 3′UTRs, raising the possibility of functional interactions between 3′UTRs and IDRs. Rather than affecting protein abundance or localization, we find that HC 3′UTRs control transcriptional or histone demethylase activity through co-translationally determined protein oligomerization states that are kinetically stable. 3′UTR-dependent changes in protein folding require mRNA-IDR interactions, suggesting that mRNAs act as IDR chaperones. These mRNAs are multivalent, a biophysical RNA feature that enables their translation in network-like condensates, which provide favorable folding environments for proteins with long IDRs. These data indicate that the coding sequence is insufficient for the biogenesis of biologically active conformations of IDR-containing proteins and that RNA can catalyze protein folding. ### Competing Interest Statement The authors have declared no competing interest. Pershing Square Foundation, https://ror.org/04tce9s05 G. Harold & Leila Y. Mathers Foundation National Institutes of Health, DP1GM123454, R35GM144046 Memorial Sloan Kettering Cancer Center, https://ror.org/02yrq0923, P30 CA008748

biorxiv.org

Excited to share this one! We developed an in vivo model for specific manipulation of transfer RNA acetylation and found it serves as a sentinel modification whose loss causes ribosome stalling and stress signaling. Implications for a genetic disorder and cancer. www.science.org/doi/10.1126/...

Transfer RNA acetylation regulates in vivo mammalian stress signaling

An ancient tRNA modification is used by mammalian cells to coordinate protein translation and adaptive signaling.

science.org

🎉Super excited to share our story on how the substrate receptor FBXO31 functions as a quality control factor by recognizing amides. This has been an amazing collaboration between Bode lab and @jcornlab.bsky.social. Special shutout goes to @matthiasmuhar.bsky.social www.nature.com/articles/s41...

C-terminal amides mark proteins for degradation via SCF–FBXO31 - Nature

SCF–FBXO31 scans proteins for C-terminal amidation and marks them for subsequent proteasomal degradation.

nature.com