Aug 2026· Small· Vol 22, pp.
e75043
· 0 citations· 45 references
Medicine
Abstract
Granular hydrogels are biomaterials composed of densely packed microparticles forming microporous structures. Their architecture can be controlled by tuning microparticle size, shape, and packing density. However, the mechanical properties of granular hydrogels mainly depend on interparticle interactions, whereby increasing the separation distance between microparticles to improve void volume weakens overall mechanical properties and induces unjamming, severely limiting their design and applicability. This study develops Thermo-Responsive Granular Hydrogels (TRGHs) with adjustable interparticle spacing and preserved mechanical integrity through incorporating a temporary thermo-responsive and cell-invadable interstitial matrix. It is shown that the interstitial space can be increased by more than 150% and the storage modulus can be increased by 4 orders of magnitude from 5 to 8900 Pa and maintained at this level by first processing at 5°C and then increasing the temperature to 37°C. Crucially, TRGHs show improved extrudability and structural integrity after 3D printing, support enhanced in vitro cell migration from embedded spheroids, and permit uninhibited in vivo cell and vessel invasion after subcutaneous injection. By addressing the trade-off between interparticle space and mechanical properties, these advanced biomaterials broaden the design possibilities for granular hydrogels in biofabrication, in vitro disease modeling, and tissue repair.
Decellularized extracellular matrix (dECM) scaffolds are widely used in tissue engineering, primarily due to their inherent bioactivity and cell-instructive properties. ECM scaffolds are conventionally prepared as monolithic and rigid sheet-like constructs, and while these form factors are generally sutured at the defe...
M. Khurram, Keira Vesy, Tuba Marjan et al.· Acta Biomaterialia· 0 citations
Granular hydrogels, made of jammed soft microparticles, are of great interest for 3D (bio)printing, as they combine ideal rheological properties and extensive modularity, yielding favorable microstructures for tissue engineering. Typically, the yield-stress properties of these materials, which facilitate printability,...
Micaela Fernandes, Julien S. Es Sayed, Armin Amirsadeghi et al.· bioRxiv· 0 citations
Hydrogels are ubiquitous in a range of applications, including drug delivery, tissue engineering, and personal care products. The prevalence is a direct result of fundamental advances in the physics and chemistry of swollen networks that enable tailorable properties to enhance and promote favorable interactions with li...
Elisabeth C. Lloyd, Sujata Dhakal, Sathika B. Arachchige et al.· ACS Applied Polymer Material...· 0 citations
HYPOTHESIS
Poly(N-isopropylacrylamide) (PNIPAM) microgels are highly porous polymer networks whose mechanical properties are governed not only by environmental factors but also by their internal architecture. We hypothesize that the internal structure of microgels, together with interparticle interactions, synergistica...
Li Zhang, Wei Liu, To Ngai· Journal of Colloid and Inter...· 0 citations
Granular hydrogels composed of jammed microgels have emerged as promising biomaterials for 3D bioprinting due to their tunable viscoelastic properties and ability to incorporate bioactive molecules and encapsulate cells within the interstitial spaces between the particles. Here, we present a new strategy to achieve spa...
Noy Hen, Galia Hendel, Anna Tsukerman et al.· ACS Biomaterials Science & E...· 0 citations