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Kuska, M. I.

Publications and source records attributed to Kuska, M. I..

2 recordsLinked to original sources

Secondary nucleation drives polymorph diversity in hIAPP amyloids

Amyloid fibrils are implicated in a myriad of human diseases. A striking observation is that fibrils extracted from diseased tissues are characterized by a restricted set of folds unique to the specific pathology. In contrast, fibrils grown \textit{in vitro} exhibit extensive structural diversity, suggesting that specific environmental and biochemical mechanisms \textit{in vivo} enforce structural selectivity. Here, we combine two-dimensional infrared (2D IR) spectroscopy and cryo-electron microscopy (cryo-EM) to investigate the mechanisms governing polymorph formation in the human Islet Amyloid Polypeptide (hIAPP). We demonstrate that 2D IR can resolve populations of distinct polymorphs identified by cryo-EM, enabling rapid label-free screening of conditions prior to labor-intensive microscopy screening. We find that conditions favoring secondary nucleation, such as high protein concentration, increase polymorphic diversity. Crucially, cryo-EM reveals that formed by secondary nucleation do not structurally replicate the parent template. Finally, by selectively inhibiting secondary nucleation using the C-terminal domain of the DNAJB6 chaperone, we steer aggregation toward a monomorphic state. These findings highlight the critical role of molecular chaperones in fibril polymorph selection.

biophysics↗

Human FASTK preferentially binds single-stranded and G-rich RNA

Fas-activated serine/threonine kinase (FASTK) is the founding member of the FASTKD protein family, which was shown to regulate the fate of mRNA molecules on multiple levels. The mitochondrial variant of FASTK co-localizes with mitochondrial RNA granules and regulates degradation of mitochondrial mRNAs, whereas the cytoplasmic and nuclear forms of FAST are involved in regulation of alternative splicing, cytoplasmic RNA granule formation and mRNA translation. Despite these multiple roles of FASTK in mRNA biology, the exact rules of RNA recognition by this protein remained undetermined. Here, we demonstrate direct RNA binding by purified human FASTK and show its preference for single-stranded G-rich sites and RNA G-quadruplexes. Addition of FASTK alone was sufficient to achieve protection of mitochondrial mRNAs from degradation by the degradosome. Structural characterization by SAXS showed that FASTK in solution is a monomer with an extended conformation. Point mutagenesis studies supported the structural predictions of an exposed RNA-binding interface in the central helical region, preceded by a smaller, flexibly attached, helical N-terminal domain. We provide the first such extensive in vitro characterization of the RNA binding properties for a representative of the FASTKD protein family, and suggest how these intrinsic properties may underly FASTK function in mRNA metabolism.

molecular biology↗