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Wei Yin

Publications and source records attributed to Wei Yin.

2 recordsLinked to original sources

A STORM-based protocol for nanoscale imaging and quantitative analysis of protein-associated and phospholipid-associated structures in natural rubber.

Stochastic Optical Reconstruction Microscopy (STORM) enables nanoscale mapping of molecular components beyond the diffraction limit; however, its reproducible implementation in hydrophobic polymer matrices remains challenging because fluorescence-labeling specificity, fluorophore photoswitching, three-dimensional localization, chromatic registration, and quantitative image analysis must be carefully controlled. This protocol presents a standardized experimental workflow for dual-color labeling, astigmatism-based three-dimensional STORM acquisition, and quantitative analysis of protein-associated and phospholipid-associated structures in natural rubber (NR). The workflow covers sample pretreatment, Cy5 NHS ester labeling of protein-associated primary amines, DiI labeling of phospholipid-rich domains, STORM imaging-buffer preparation, three-dimensional single-molecule localization, dual-channel registration, generation of standardized xy projections, aggregate-size analysis, and projected lateral spatial correlation assessment. Reproducibility is supported by defined acquisition and localization criteria, three independent sample preparations with at least five fields of view analyzed per condition, and unlabeled, single-color, dye-only matrix, and processing-associated Cy5 controls. Mean lateral localization precisions of 11.8 ± 2.3 nm for Cy5 and 13.5 ± 2.9 nm for DiI were obtained, while two-dimensional Fourier ring correlation analysis of the xy projections yielded effective lateral image resolutions of approximately 25 and 28 nm, respectively. Image-based particle segmentation and localization-coordinate-based density-based spatial clustering of applications with noise (DBSCAN) were applied to standardized xy projections as complementary quantitative approaches. Application of the protocol to untreated, centrifuged, and protease-treated NR samples demonstrated treatment-associated changes in the detected abundance and projected size distributions of protein- and phospholipid-associated aggregates, together with a non-monotonic change in their projected lateral spatial correlation. These observations describe alterations in nanoscale organization but do not, by themselves, establish stable protein-phospholipid complex formation. Unlike previous studies that primarily demonstrated the feasibility of STORM imaging in rubber materials, the principal contribution of this work is an end-to-end, step-by-step protocol incorporating defined controls, three-dimensional localization, image-quality metrics, chromatic-registration procedures, and complementary quantitative-analysis pipelines for non-expert users. The workflow may be adaptable to other hydrophobic polymers and soft-material systems after appropriate optimization and validation.

Rubber

Deficiency of AP1M2 Causes a New Autoinflammatory Disease With Colitis.

OBJECTIVE: This study was the first to identify the biallelic loss-of-function variant in AP1M2 as the cause of autoinflammatory disease with colitis and aimed to elucidate the pathogenesis of AP1M2 deficiency in mice and humans. METHODS: We collected a blood sample and serum sample from a patient for genetic diagnosis and determination of inflammatory cytokines, respectively. Ap1m2-deficient mice on the C57BL/6 background and DLD-1 cells were used to dissect the functional role of Ap1m2 in serum and intestines. Stereo-seq was performed on Ap1m2-/- and Ap1m2-/-::Tnfr1-/- mouse samples to investigate the regulatory role of Tnfr1 signaling in the pathogenesis of Ap1m2 deficiency-caused intestinal inflammation. Superrevolution imaging and clathrin-coated vesicle enrichment were used to explore the molecular mechanism by which AP1M2 suppresses NF-κB activation and chemokine production. RESULTS: Ap1m2-/- mice exhibited elevated chemokine production in serum and spontaneously developed intestinal inflammation, which phenocopies the patient with the AP1M2 variant. Mechanistically, the deficiency of intestinal epithelial specific AP1M2 expression resulted in accumulation of TNFR1-signaling downstream proteins, including RIPK1, TBK1, IKKα/β, and NEMO, leading to enhanced NF-κB activation and subsequent chemokine overproduction. Tnfr1 knockout rescued gastrointestinal inflammation induced by Ap1m2 deficiency through suppressing NF-κB activation and chemokine production. CONCLUSION: This study identifies the deficiency of AP1M2 as the cause of a new autoinflammatory disease with colitis and highlights the critical function of AP-1 in suppressing NF-κB activation and chemokine production.

Animals