TY - JOUR
T1 - Bone-derived bioactive substrates promote axonal sprouting but elicit astrocyte reactivity
T2 - Implications for CNS-repair scaffold design
AU - Weiss, Orly E.
AU - Kirby, Michael
AU - Baranes, Danny
N1 - Publisher Copyright:
© The Author(s) 2026. This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 License (https://creativecommons.org/licenses/by-nc/4.0/) which permits non-commercial use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access pages (https://us.sagepub.com/en-us/nam/open-access-at-sage).
PY - 2026/1/1
Y1 - 2026/1/1
N2 - Mineralized bone is increasingly considered as a functional substrate for regenerative applications, yet its impact on neuron–glia remodeling remains insufficiently defined. We cultured ex vivo injured rat hippocampal tissue on glass coverslips either uncoated or coated with micron-scale mouse skull bone particles and quantified neurite architecture and astrocyte morphology. Bone-particle substrates supported robust adhesion and selectively modulated process development. Axons on bone displayed a 2.8-fold increase in varicosity-like expansion size and 2.2-fold higher neurofilament-M expression relative to glass, indicating potentiated axonal sprouting. In contrast, dendrites exhibited 20% shorter mean length and 73% lower branching. Astrocytes on bone showed 21% shorter processes with 34% fewer processes per cell; total cell area and GFAP levels were unchanged. However, astrocytes displayed increased circularity, decreased roundness, and elevated solidity—morphologies consistent with a reactive, potentially chronic, state. Together, these data identify mineralized bone as a bioactive osseous substrate that enhances axonogenesis while biasing astrocytes toward reactivity. This divergence suggests design trade-offs for osseous or mineral-hybrid scaffolds aimed at central nervous system repair. Our findings provide quantitative guidance for engineering bone-derived or mineral-composite scaffolds that differentially control neuronal and glial outcomes in neural repair strategies.
AB - Mineralized bone is increasingly considered as a functional substrate for regenerative applications, yet its impact on neuron–glia remodeling remains insufficiently defined. We cultured ex vivo injured rat hippocampal tissue on glass coverslips either uncoated or coated with micron-scale mouse skull bone particles and quantified neurite architecture and astrocyte morphology. Bone-particle substrates supported robust adhesion and selectively modulated process development. Axons on bone displayed a 2.8-fold increase in varicosity-like expansion size and 2.2-fold higher neurofilament-M expression relative to glass, indicating potentiated axonal sprouting. In contrast, dendrites exhibited 20% shorter mean length and 73% lower branching. Astrocytes on bone showed 21% shorter processes with 34% fewer processes per cell; total cell area and GFAP levels were unchanged. However, astrocytes displayed increased circularity, decreased roundness, and elevated solidity—morphologies consistent with a reactive, potentially chronic, state. Together, these data identify mineralized bone as a bioactive osseous substrate that enhances axonogenesis while biasing astrocytes toward reactivity. This divergence suggests design trade-offs for osseous or mineral-hybrid scaffolds aimed at central nervous system repair. Our findings provide quantitative guidance for engineering bone-derived or mineral-composite scaffolds that differentially control neuronal and glial outcomes in neural repair strategies.
KW - astroglial cell morphology
KW - bone scaffold
KW - bone tissue
KW - hippocampal tissue culture
KW - neuronal cell morphology
UR - https://www.scopus.com/pages/publications/105038401564
U2 - 10.1177/22808000261425396
DO - 10.1177/22808000261425396
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C2 - 42108705
AN - SCOPUS:105038401564
SN - 2280-8000
VL - 24
JO - Journal of Applied Biomaterials and Functional Materials
JF - Journal of Applied Biomaterials and Functional Materials
ER -