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Jess Niblo

@jessniblo.bsky.social
37 followers 46 following 9 posts

Postdoc in the Sukenik lab @ Syracuse University| PhD with Kateri DuBay

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Jess Niblo @jessniblo.bsky.social · 22/09/2026
Excited to share our manuscript “A geothermal amoeba sets a new upper temperature limit for eukaryotes” is out in Cell! This work, led by @oliverio.bsky.social & @hbrappap.bsky.social, introduces I. cascadensis, which divides at 63C, beating the prior eukaryotic limit of 60C. doi.org/10.1016/j.ce...
cell.com
A geothermal amoeba sets a new upper temperature limit for eukaryotes
The amoeba Incendiamoeba cascadensis demonstrates that eukaryotic life can withstand temperatures beyond what was thought possible and sheds light on molecular strategies for survival in extreme heat.
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Jess Niblo @jessniblo.bsky.social · 18/03/2026
Ever wonder how IDRs and folded domains work together to control function? Using ubiquilins, multidomain proteins involved in protein degradation, we show in our new preprint that IDRs aren’t just linkers, but regulate ensemble and function. Read it here: doi.org/10.64898/202...
biorxiv.org
Intramolecular interactions between folded and disordered regions shape ubiquilin structure and function
Multidomain proteins consist of folded domains connected by intrinsically disordered regions. The flexibility afforded by the disordered regions coupled to the structure and surface chemistry of folded regions allows for unique structural and functional features in these proteins. Yet how intramolecular interactions between disordered regions and folded domains affect multidomain protein structure and function remain poorly understood. Here we use a range of biophysical and computational approaches to measure the intramolecular interactions between the folded domains and disordered regions of ubiquilins (UBQLNs) - essential components of protein quality control that shuttle poly-ubiquitinated client proteins to proteasomal degradation or autophagy. Starting with the yeast UBQLN homolog Dsk2, we find that interactions between two folded domains located at the opposite ends of UBQLN bring about a closed conformation. The prevalence of this closed conformation, however, is modulated by intramolecular interactions involving the disordered regions and folded STI1 domain at the center of the protein. Simulations and analysis of UBQLN homologs across multiple eukaryotic lineages reveals that these disordered:folded domain interactions exist in some UBQLN homologs but are absent in others, indicating possible fundamental differences in function among proteins with the same multidomain architecture. ### Competing Interest Statement The authors have declared no competing interest.
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Reposted by Jess Niblo
The EMBO Journal @embojournal.org · 11/02/2026
Yeast ubiquilin Dsk2 scaffolds proteasome-containing condensates under stress via multivalent interactions – @castanedalab.bsky.social et al show how dynamic interactions among its STI1 domain & transient helices in its disordered region promote its phase-separation link.springer.com/article/10.1...
link.springer.com
STI1 domain engages transient helices to mediate Dsk2 phase separation and proteasome condensation - The EMBO Journal
Ubiquitin-binding shuttle proteins are important components of stress-induced biomolecular condensates in cells. Yeast Dsk2 scaffolds proteasome-containing condensates via multivalent interactions wit...
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Reposted by Jess Niblo
H. B. Beryl Rappaport @hbrappap.bsky.social · 25/11/2025
So happy to announce our new preprint, “A geothermal amoeba sets a new upper temperature limit for eukaryotes.” We cultured a novel amoeba from Lassen Volcanic NP (CA, USA) that divides at 63°C (145°F) 🔥 - a new record for euk growth! #protistsonsky 🧵
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Reposted by Jess Niblo
Castañeda Lab at SU @castanedalab.bsky.social · 23/05/2025
The power of collaborations! With @shaharsu.bsky.social, his PD @jessniblo.bsky.social and CALVADOS3 (thanks to @lindorfflarsen.bsky.social ) we show how STI1 (red) may engage with sequences that match transient helices within IDRs of Ub-binding shuttle protein Dsk2 www.biorxiv.org/content/10.1...
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