Area of research
Molecular Biology · Cell Biology
Research interest
Research interests include Lipid Membrane Structure and Behavior, Cellular transport and secretion, Parkinson's Disease Mechanisms and Treatments, and Advanced Fluorescence Microscopy Techniques.
α-Synuclein condensation in synaptic vesicle function and synucleinopathies
Structural remodeling of target-SNARE protein complexes by NSF enables synaptic transmission
METTL16 promotes liver cancer stem cell self-renewal via controlling ribosome biogenesis and mRNA translation
VAMP2 chaperones α-synuclein in synaptic vesicle co-condensates
Cell-Free Nonequilibrium Assembly for Hierarchical Protein/Peptide Nanopillars
Neutral lysophosphatidylcholine mediates α-synuclein-induced synaptic vesicle clustering
FRET-based dynamic structural biology: Challenges, perspectives and an appeal for open-science practices
Prefused lysosomes cluster on autophagosomes regulated by VAMP8
A dual-labeling probe to track functional mitochondria–lysosome interactions in live cells
Quantitative analysis of interactive behavior of mitochondria and lysosomes using structured illumination microscopy
Multiple‐Color Platinum Complex with Super‐Large Stokes Shift for Super‐Resolution Imaging of Autolysosome Escape
Super-resolution observation of lysosomal dynamics with fluorescent gold nanoparticles
Super‐Resolution Tracking of Mitochondrial Dynamics with An Iridium(III) Luminophore
5-Hydroxymethylcytosine signatures in cell-free DNA provide information about tumor types and stages
Targeted inhibition of STAT/TET1 axis as a therapeutic strategy for acute myeloid leukemia
C-terminal domain of mammalian complexin-1 localizes to highly curved membranes
Intrinsic and membrane-facilitated α-synuclein oligomerization revealed by label-free detection through solid-state nanopores
Real-time tracking mitochondrial dynamic remodeling with two-photon phosphorescent iridium (III) complexes
N-terminal domain of complexin independently activates calcium-triggered fusion
Simultaneous single-molecule epigenetic imaging of DNA methylation and hydroxymethylation
Phosphorylation of residues inside the <scp>SNARE</scp> complex suppresses secretory vesicle fusion
Architecture of the synaptotagmin–SNARE machinery for neuronal exocytosis
Towards reconstitution of membrane fusion mediated by SNAREs and other synaptic proteins
Munc18a Does Not Alter Fusion Rates Mediated by Neuronal SNAREs, Synaptotagmin, and Complexin
Complexin inhibits spontaneous release and synchronizes Ca2+-triggered synaptic vesicle fusion by distinct mechanisms
Native α-synuclein induces clustering of synaptic-vesicle mimics via binding to phospholipids and synaptobrevin-2/VAMP2
Properties of native brain α-synuclein
Fusion pore formation and expansion induced by Ca <sup>2+</sup> and synaptotagmin 1
Complexin-1 Enhances the On-Rate of Vesicle Docking via Simultaneous SNARE and Membrane Interactions
Studying protein‐reconstituted proteoliposome fusion with content indicators in vitro