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Biology subjects

Ta, D.

Publications and source records attributed to Ta, D..

2 recordsLinked to original sources

A structure-derived contact-network responsiveness atlas of human proteins

Protein structures encode non-local contact organization, but static coordinates do not directly quantify how a contact network responds when effective stabilizing interactions are strengthened or weakened. Here we introduce Contact-Network Responsiveness (CNR), a structure-derived framework that converts residue-level protein coordinates into density-controlled and topology-corrected response descriptors. The method is structure-source agnostic and can be applied to experimentally determined PDB structures, AlphaFold models, or other predicted structures; here, human AlphaFold models serve as the high-coverage structural substrate. Across 22,167 valid human protein structures, hydrophobic non-local contact density defined a nearly exact Bethe mean-field baseline for the conformational susceptibility threshold. A graph-aware residue-level extension then revealed systematic topology-dependent deviations from this density-only prediction. We define a topology correction ratio, [Formula], which separates topology-facilitated, density-dominated and topology-suppressed contact-network response regimes. CNR descriptors were associated with curated DisProt disorder annotations and broad-coverage UniProt/MobiDB-lite disorder fractions, supporting the interpretation that CNR captures a structural organization axis related to non-local contact availability and responsiveness.

biophysics↗

High-throughput 3D super-resolution ultrasound imaging

Capturing fast hemodynamics in deep organs is essential for understanding microvascular regulation of organ responses to physiological demands and pathological stress. However, non-invasive three-dimensional (3D) imaging of these microscale processes remains challenging due to trade-offs between spatial resolution, imaging speed, and penetration depth. Here, we present fluctuation-based high-order super-resolution acoustic microscope (FLAME), a tracking-free 3D ultrasound imaging technology capable of fast microvascular angiography and flow measurement. Using as few as 30 volumes, FLAME improves 3D ultrasound resolution by 8-fold ([~]50 m) and shortens data acquisition time by over two orders of magnitude, from tens of seconds to tens of milliseconds, compared with conventional tracking-based super-resolution approaches1-6. This high-throughput capability supports high-fidelity imaging of tissue functions under flexible experimental settings. FLAME achieves an unprecedented 3D super-resolution frame rate of [~]40 Hz, capturing transient hemodynamic responses to various physiological and pathological stimuli in different mouse organs, from the microvascular level to the whole-body scale. With open-sourced implementation, FLAME provides an accessible platform for real-time, in-depth hemodynamic monitoring across diverse biomedical applications and clinical translation.

bioengineering↗