PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 16, 2026National Science Review0 citationsOpen Access

A novel biomacromolecule-predominated hybrid unit: from design, characterization to application

View Full Paper
KHKe HuZZZiying ZhouZGZhaobin Guo

Key Points

  • The aim is to integrate biomacromolecules to create hybrid units that meet complex biomedical needs.
  • Developed novel organic-inorganic hybrid units using natural biomacromolecules.
  • Employed synchrotron SAXS, IR-AFM, and high-resolution TEM for comprehensive characterization.
  • Utilized the polymer blob model to analyze hybridization effects on physical properties.
  • Hybrid units exhibit physicochemical properties more akin to polymers than nanomaterials.
  • Enhanced synthesis of PD-L1 protein by mammalian cells improved nearly tenfold.
  • Demonstrated applications in hydrogel-derived optical fibers and 3D bio-printing.

Abstract

Abstract Current biomaterial designs struggle with complex clinical and life science demands as single-function approaches are increasingly inadequate, necessitating the systematic integration of four core elements: biosafety, physiological compatibility, biomechanical matching, and biocatalytic function across hierarchical levels. This study addresses this challenge by introducing a novel strategy using natural biomacromolecules to construct microscopic organic-inorganic hybrid units. A comprehensive characterization paradigm employing synchrotron SAXS, IR-AFM and high-resolution TEM was established to reveal emergent hybrid properties. Systematic characterization results demonstrate that the physicochemical properties of these hybrid units more closely resemble polymers than traditional nanomaterials. We introduced the classical polymer blob model to reveal the effects of the hybridization process on the rigidity/flexibility of the polymer chains. Combined characterization results confirmed that the hybrid units possess stable interfaces, bioinspired crosslinking, synergistic high enzyme-like activity with low toxicity, and broad pH tolerance. Multifunctional nanohybrid hydrogel fabricated with these hybrid units significantly enhances mammalian cell synthesis of high-quality PD-L1 protein with efficiency improved by nearly an order of magnitude and effectively protects skin organoids from damage caused by exogenous ROS. Integrated multi-omics analysis demonstrates the hydrogel modulates cell–cell/matrix interactions via mechano-bioinspiration, boosts endoplasmic reticulum protein processing, and ameliorates hypoxia to enhance mitochondrial respiration (without active oxygen supply), achieving systematic integration of biocompatibility, biomechanics, biocatalysis and physiological environment compatibility. The study also demonstrates the potential of hybrid units in applications such as hydrogel-derived optical fiber fabrication, 3D bio-printing and in vitro advanced cell culture models.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Hu et al. (2026) studied this question.

synapsesocial.com/papers/69926503eb1f82dc367a0e41https://doi.org/10.1093/nsr/nwag099
Ask AI
Helpful
Bookmark
Share
View Full Paper