A Self‐Reinforcing Hydrogel Disrupting Osteoclast Sealing Zone for Bone Erosion Alleviation

ABSTRACT Abnormal remodeling of subchondral bone (SB), driven by osteoclast sealing zone formation and insufficient adaptation to joint mechanical stress, accelerates the progression of osteoarthritis (OA) and remains a major therapeutic challenge. Here, we developed a mechanically self‐reinforcing injectable hydrogel in which amino‐hydroxyapatite (amHap)‐encapsulating spindle‐shaped tellurium (Te) nanoparticles (Te@amHap, Team) were embedded within an oxidized alginate‐gelatin matrix (Te@amHap/OG Gel, Team Gel). Team Gel contains dynamic Schiff base bonds, enabling controlled release of Team under joint mechanical forces. Within the acidic microenvironment of the osteoclast sealing zone, Team degrades and releases Te to be oxidized into TeO 3 2− by osteoclast‐derived H 2 O 2 . These ions can react with the thiol‐containing residues of F‐actin to form Te─S bonds, leading to F‐actin degradation to disrupt the sealing zone and suppress bone resorption. Notably, Ca 2+ from amHap interacts with alginate to form an egg‐box secondary crosslinking structure, enhancing the crosslinking density beyond the original Schiff base network, thereby enhancing the mechanical strength of Team Gel and extending its retention time. Acting together, PO 4 3 − ‐mediated inhibition of osteoclast differentiation and Te‐driven disruption of the mature osteoclast sealing zone suppress osteoclastogenesis and bone resorption. This sealing zone disruption strategy preserves bone quality and joint integrity, suggesting a promising osteoclast‐targeted therapy for OA.

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Publication Details

Journal
Advanced Healthcare Materials
Published
2026-10-06
DOI
https://doi.org/10.1002/adhm.71808
Primary Topic
Osteoarthritis Treatment and Mechanisms
Type
article
Field-Weighted Citation Impact
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article

A Self‐Reinforcing Hydrogel Disrupting Osteoclast Sealing Zone for Bone Erosion Alleviation

Valentin A. Milichko, Zheyi Li, Yilin Wei, Nan Li et al.
Advanced Healthcare Materials
Osteoarthritis Treatment and Mechanisms
article

A Self‐Reinforcing Hydrogel Disrupting Osteoclast Sealing Zone for Bone Erosion Alleviation

Valentin A. Milichko, Zheyi Li, Yilin Wei, Nan Li, Weili Liu, Wang Xinxing, Yutong Song, Bei Kang, Xinyi Liu, Haobo Wang, Baohong Liu, Wen Li, Mengyao Zhang
article en

Abstract

ABSTRACT Abnormal remodeling of subchondral bone (SB), driven by osteoclast sealing zone formation and insufficient adaptation to joint mechanical stress, accelerates the progression of osteoarthritis (OA) and remains a major therapeutic challenge. Here, we developed a mechanically self‐reinforcing injectable hydrogel in which amino‐hydroxyapatite (amHap)‐encapsulating spindle‐shaped tellurium (Te) nanoparticles (Te@amHap, Team) were embedded within an oxidized alginate‐gelatin matrix (Te@amHap/OG Gel, Team Gel). Team Gel contains dynamic Schiff base bonds, enabling controlled release of Team under joint mechanical forces. Within the acidic microenvironment of the osteoclast sealing zone, Team degrades and releases Te to be oxidized into TeO 3 2− by osteoclast‐derived H 2 O 2 . These ions can react with the thiol‐containing residues of F‐actin to form Te─S bonds, leading to F‐actin degradation to disrupt the sealing zone and suppress bone resorption. Notably, Ca 2+ from amHap interacts with alginate to form an egg‐box secondary crosslinking structure, enhancing the crosslinking density beyond the original Schiff base network, thereby enhancing the mechanical strength of Team Gel and extending its retention time. Acting together, PO 4 3 − ‐mediated inhibition of osteoclast differentiation and Te‐driven disruption of the mature osteoclast sealing zone suppress osteoclastogenesis and bone resorption. This sealing zone disruption strategy preserves bone quality and joint integrity, suggesting a promising osteoclast‐targeted therapy for OA.

Advanced Healthcare Materials
ITMO University (RU), Academy of Military Medical Sciences (CN), Tianjin Institute of Pharmaceutical Research (China) (CN)
Openalex Percentile: Top 11%
Osteoarthritis Treatment and Mechanisms
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