ZERO WORLD RESEARCHLiterature database on amino acids & organic acids

Tranexamic Acid-Associated Hyaluronic Acid Exhibits Enhanced Oxidative Stability: A Comparative Rheological Study.

Biomolecules2026Conrozier T, Darsy G, Mercier J, et al.
Study designOther primary literature
SubjectUnknown

Record checks

Study design
Other primary literature
Subject
Unknown
Publication year
2026
Source
doi.org
Abstract display
Shown here
Publication status
Active
Status checked
17 Aug 2026
Collected
4 Aug 2026
Freshness
Current
Review stage
Automated
Record status
Published

Abstract

Background: The clinical performance of intra-articular hyaluronic acid (HA) is strongly dependent on its resistance to oxidative degradation within the inflamed osteoarthritic joint. Reactive oxygen species induce HA chain scission, leading to a loss of molecular entanglement and a shift from elastic-dominant to viscous-dominant behavior. Tranexamic acid (TXA), a lysine analogue with documented anti-inflammatory and anti-proteolytic properties, has been combined with HA with the hypothesis that it may limit oxidative-induced rheological degradation. Objective: This study aims to determine whether an HA-TXA formulation preserves viscoelastic integrity under oxidative stress and how its behavior compares with linear, hybrid, and cross-linked HA viscosupplements. Methods: Four HA-based formulations were evaluated using stress-controlled rotational rheometry compliant with ISO 3219 standards. Complex modulus (G*), complex viscosity (η*), and phase angle (tan δ) were measured within the linear viscoelastic domain. Oxidative challenge was induced with hydrogen peroxide (5.4% v/v), and time-dependent rheological changes were recorded over 30 min. Resistance to degradation was defined by relative variations in rheological parameters from baseline. Results: Baseline measurements revealed distinct viscoelastic profiles among the HA formulations. After oxidative exposure, the HA-TXA formulation showed a modest decrease in η* (-17.0%) and limited increase in tan δ (+4.0%), indicating preserved viscoelastic organization. Its stability exceeded that of hybrid (-40%; +12.6%) and linear HA (-53%; +25.6%) and approached that of cross-linked HA (-25.4%; +5.6%). The magnitude of microstructural alteration remained minimal despite chemical stress. Conclusions: The association of TXA with HA confers a marked protection against oxidative-induced viscoelastic degradation, preserving macromolecular network integrity and elastic behavior. These findings suggest that TXA modulates oxidative stress-related rheological failure of HA through mechanisms distinct from chemical cross-linking.

MeSH

Hyaluronic AcidHydrogen PeroxideOxidation-ReductionOxidative StressRheologyTranexamic AcidViscosity

DOI 10.3390/biom16030361

PMID 41897297

View source →