bioRxiv Science⌕ Search

Biology subjects

Vallejo, M.

Publications and source records attributed to Vallejo, M..

2 recordsLinked to original sources

A potential anti-amyloidogenic therapy for type 2 diabetes based on the QBP1 peptide

The self-assembly and aggregation of human islet amyloid polypeptide (hIAPP, or amylin) into {beta}-sheet-rich structures, such as oligomers and fibrils, are implicated in pancreatic {beta}-cell dysfunction and failure, contributing to the pathogenesis of Type 2 Diabetes (T2D). Consequently, extensive research has focused on identifying inhibitors, particularly short peptides, capable of targeting hIAPP and disrupting its amyloidogenic process, offering potential therapeutic strategies to prevent or slow T2D progression. In this study, we demonstrate the effectiveness of the anti-amyloidogenic peptide QBP1 in blocking the critical conformational transition to {beta}-structure experienced by the hIAPP monomer, thereby in preventing amyloidogenesis and in reducing the cytotoxicity associated with its amyloid forms. First, we evaluated the anti-amyloidogenic effects of QBP1 through an in vitro aggregation methods, including a Thioflavin-T binding assay, dot blotting using the oligomer-specific A11 and fibril-specific OC antibodies, and negative staining electron microscopy. To assess its cytoprotective potential of QBP1 on hIAPP-induced toxicity, we examined its effects when fused to a protein transduction domain (penetratin) in INS-1E pancreatic {beta}-cells, using viability assays and transcriptome analysis. Our results demonstrate that QBP1 effectively halts the formation of early toxic hIAPP intermediates, preventing amyloid progression and preserving {beta}-cell viability and function. Additionally, molecular dynamics simulations revealed that QBP1 stabilizes amylin through strong van der Waals interactions and {pi}-H bonds at hydrophobic and aromatic residues (i.e., W, F), forming a stable binding network that prevents aggregation. Binding free energy analysis confirmed its high affinity, driven by favourable non-polar solvation energy and optimized structural complementarity. Collectively, these findings position QBP1 as a promising therapeutic candidate for preventing islet amyloid formation and mitigating {beta}-cell dysfunction in T2D. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=116 SRC="FIGDIR/small/652241v1_ufig1.gif" ALT="Figure 1"> View larger version (44K): org.highwire.dtl.DTLVardef@1e7ed7borg.highwire.dtl.DTLVardef@1985667org.highwire.dtl.DTLVardef@509779org.highwire.dtl.DTLVardef@108a3c4_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗

Human neural dynamics of real-world and imagined navigation

The ability to form episodic memories and later imagine them is integral to the human experience, influencing our recollection of the past and our ability to envision the future. While research on spatial navigation in rodents suggests the involvement of the medial temporal lobe (MTL), especially the hippocampus, in these cognitive functions, it is uncertain if these insights apply to the human MTL, especially regarding imagination and the reliving of events. Importantly, by involving human participants, imaginations can be explicitly instructed and their mental experiences verbally reported. In this study, we investigated the role of hippocampal theta oscillations in both real-world and imagined navigation, leveraging motion capture and intracranial electroencephalographic recordings from individuals with chronically implanted MTL electrodes who could move freely. Our results revealed intermittent theta dynamics, particularly within the hippocampus, which encoded spatial geometry and partitioned navigational routes into linear segments during real-world navigation. During imagined navigation, theta dynamics exhibited similar, repetitive patterns despite the absence of external environmental cues. Furthermore, a computational model, generalizing from real-world to imagined navigation, successfully reconstructed participants imagined positions using neural data. These findings offer unique insights into the neural mechanisms underlying human navigation and imagination, with implications for understanding episodic memory formation and retrieval in real-world settings.

neuroscience↗