PEER-REVIEWED PUBLICATION

2026

A nitric oxide-releasing zwitterionic glycocalyx-mimetic hydrogel armored bioprosthetic valve with integrated antithrombotic, endothelialization-promoting, and immunomodulatory capacities

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Zheng C, Wei B, Huang X, et al.

Acta Biomaterialia

Sichuan University

RESEARCH SUMMARY
This study developed a nitric oxide-releasing, zwitterionic glycocalyx-mimetic hydrogel coating for glutaraldehyde-crosslinked porcine pericardium used in bioprosthetic heart valves. The authors first decellularized porcine pericardium and crosslinked it with glutaraldehyde to produce G-P, then photopolymerized a hyaluronic acid- and sulfobetaine methacrylate-based hydrogel coating onto the tissue to create HS-P. L-arginine was subsequently incorporated into the coating through dynamic Schiff-base chemistry to create AHS-P and provide a nitric oxide-generating function. The hydrogel coating substantially increased surface hydrophilicity and reduced nonspecific protein, platelet, erythrocyte, and whole-blood adhesion while preserving the underlying tissue’s tensile mechanical properties. L-arginine-functionalized AHS-P promoted HUVEC adhesion and proliferation, increased nitric oxide, VEGF, and VWF production, and activated pathways associated with endothelial adhesion and growth, including RhoA-ROCK and PI3K/AKT/mTOR signaling. AHS-P also reduced inflammatory signaling, lowering TNF-ฮฑ and promoting IL-10 expression and M2 macrophage polarization in vitro and after rat subcutaneous implantation. Calcification was markedly reduced in hydrogel-coated samples: after 90 days of implantation, calcium content was 226 ยฑ 6 mg/g in unmodified G-P compared with 15 ยฑ 2 mg/g in HS-P and 14 ยฑ 2 mg/g in AHS-P. Mechanical testing showed no significant differences among G-P, HS-P, and AHS-P in ultimate tensile strength, tangent modulus, or extensibility, indicating that the surface modification preserved the structural mechanical performance of the pericardial tissue. Overall, the study demonstrates a multifunctional surface-engineering strategy that combines antithrombotic, endothelialization-promoting, immunomodulatory, and anticalcification functions without compromising the tensile properties required for bioprosthetic heart valve materials.
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CELLSCALE INSTRUMENT USED

UniVert

A CellScale UniVert was used for uniaxial tensile characterization of unmodified and hydrogel-modified porcine pericardial tissue intended for bioprosthetic heart valves. Glutaraldehyde-crosslinked porcine pericardium (G-P), zwitterionic glycocalyx-mimetic hydrogel-coated pericardium (HS-P), and L-arginine-functionalized hydrogel-coated pericardium (AHS-P) were cut into 50 mm ร— 7 mm rectangular strips, with six specimens tested per group. Thickness was measured at three locations on each specimen and averaged for stress calculations. Samples were mounted between the UniVert fixtures, the initial fixture separation was recorded, and specimens were stretched at 20 mm/min until fracture while tensile force and displacement were continuously recorded. Cauchy stress and Green strain were calculated from the experimental data, and stress-strain curves were used to determine ultimate tensile strength, tangent modulus, and extensibility. The UniVert measurements showed no significant differences in these three mechanical properties among G-P, HS-P, and AHS-P. These results demonstrated that addition of the zwitterionic glycocalyx-mimetic hydrogel and L-arginine functionality did not significantly compromise the tensile mechanical performance of the glutaraldehyde-crosslinked porcine pericardium, supporting its potential use as a mechanically functional bioprosthetic heart valve material.
AUTHORS

Cheng Zheng, Bangquan Wei, Xueyu Huang, Lepeng Chen, Yunbing Wang.

PUBLICATION DETAILS
JOURNAL

Acta Biomaterialia

YEAR

2026

INSTITUTIONS

Sichuan University

COUNTRIES

China

INSTRUMENT USED

UniVert

TESTING METHODS

Tensile Testing

RESEARCH APPLICATIONS

ECM & Decellularized Matrix MechanicsHeart Valve Tissue Engineering & MechanicsHydrogel Mechanical Testing

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