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Proteomic Profiling of RHD-Related Mitral Annulus Calcification Enabled by Magnetic Carbon Nanomaterial-Supported Quasi-Immobilized Enzyme Digestion.

Proteomic Profiling of RHD-Related Mitral Annulus Calcification Enabled by Magnetic Carbon Nanomaterial-Supported Quasi-Immobilized Enzyme Digestion.

期刊: Analytical chemistry 日期: 2026-07-21 PMID: 42411643 DOI: 10.1021/acs.analchem.6c02362 浏览: 19
作者: Yan Z, Zhai J, Ge Q, Wang Z, Song B, Wang R, Zhang L, Zhang W
Z, Y., J, Z., Q, G., Z, W., B, S., R, W., L, Z., & W, Z. (2026). Proteomic Profiling of RHD-Related Mitral Annulus Calcification Enabled by Magnetic Carbon Nanomaterial-Supported Quasi-Immobilized Enzyme Digestion.. Analytical chemistry. https://doi.org/10.1021/acs.analchem.6c02362
Z Y, J Z, Q G, Z W, B S, R W, et al. Proteomic Profiling of RHD-Related Mitral Annulus Calcification Enabled by Magnetic Carbon Nanomaterial-Supported Quasi-Immobilized Enzyme Digestion.. Analytical chemistry. 2026; doi: 10.1021/acs.analchem.6c02362
Z Y, J Z, Q G, et al. Proteomic Profiling of RHD-Related Mitral Annulus Calcification Enabled by Magnetic Carbon Nanomaterial-Supported Quasi-Immobilized Enzyme Digestion.[J]. Analytical chemistry. 2026. DOI: 10.1021/acs.analchem.6c02362.
@article{z2026,
  author = {Yan Z and Zhai J and Ge Q and Wang Z and Song B and Wang R and Zhang L and Zhang W},
  title = {Proteomic Profiling of RHD-Related Mitral Annulus Calcification Enabled by Magnetic Carbon Nanomaterial-Supported Quasi-Immobilized Enzyme Digestion.},
  journal = {Analytical chemistry},
  year = {2026},
  doi = {10.1021/acs.analchem.6c02362},
  note = {PMID: 42411643},
}
TY  - JOUR
AU  - Yan Z
AU  - Zhai J
AU  - Ge Q
AU  - Wang Z
AU  - Song B
AU  - Wang R
AU  - Zhang L
AU  - Zhang W
TI  - Proteomic Profiling of RHD-Related Mitral Annulus Calcification Enabled by Magnetic Carbon Nanomaterial-Supported Quasi-Immobilized Enzyme Digestion.
T2  - Analytical chemistry
PY  - 2026
DO  - 10.1021/acs.analchem.6c02362
AN  - PMID:42411643
ER  - 

摘要

Elucidating the mechanisms underlying rheumatic heart disease (RHD) accompanied by mitral annulus calcification (MAC) facilitates the identification of sensitive diagnostic biomarkers and the development of targeted therapeutic strategies. Proteomic analysis offers an approach to characterizing protein expression changes, thereby contributing to the clarification of pathogenesis in both RHD and cardiac valve calcification. Time-saving and high-efficiency enzymatic digestion methods are thus highly desirable for reliable and high-performance proteomic analysis. This study developed a quasi-immobilized enzyme digestion (QIED) technology based on honeycomb-like magnetic carbon material (Fe3C@C-650) with a pore size of 100-150 nm, which enables rapid enzymatic digestion in 5 min (200-fold faster than traditional methods) by ultrahigh enzyme adsorption capability. The developed method was applied to proteomic analysis of mitral valve tissues from 7 patients, and 3128 proteins were identified, which clarified the three-phase pathological progression (calcified, thickened, and normal tissues) of RHD-related calcification and revealed core hub genes (e.g., CXCL12, SRC, VCAM1) and the synergistic pathway of "inflammation regulation-protein translation-cell remodeling". This study provides methodological support and molecular targets for the precise diagnosis and targeted therapy of RHD complicated with MAC.

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