The cortical microenvironment drives early immune organization and controls early osteoclastogenesis in bone healing

Abstract Bone regeneration is a complex, tightly-regulated process involving coordinated interactions of immune and stromal cells. Early phases of healing rely on the timely clearance of debris, a task primarily carried out by macrophages and osteoclasts. However, the sequence of events leading to the presence of osteoclasts at the fracture site and how this is shaped by local tissue microenvironments remains poorly understood, particularly at single-cell and spatial resolution. Using single-cell RNA sequencing and multi-epitope ligand cartography, we mapped the spatial organization of distinct cell compartments engaged in early fracture healing in both young and aged mice at the start of healing. Surprisingly, we found that young mice exhibited an increased presence of activated osteoclasts at day 7, concentrated within the cortical niche. This compartment was also characterized by a spatially restricted immune response with a selective accumulation of distinct macrophage types jointly interacting with neutrophils and stromal cells. This raised the possibility that local cell organization influences osteoclast precursor differentiation. We identified a distinct Spp1 hi macrophage subset restricted to the cortex, which acted as a transitional precursor population giving rise to osteoclasts. Neutrophils preceded this Spp1 hi macrophage accumulation and may promote their recruitment through chemotactic signaling. This coordination was less pronounced in aged mice despite preserved transcriptional states. In parallel, stromal cells in young animals displayed higher expression of essential niche factors further supporting local osteoclastogenesis at the cortex. Together, our findings identify distinct macrophage precursors and reveal early, cortex-specific niche activity supporting osteoclastogenesis. This provides a new framework for understanding the initiation of spatial immune–stromal interactions for the early stages of regeneration.

Authors

Institutions

Publication Details

Journal
Nature Communications
Published
2026-08-27
DOI
https://doi.org/10.1038/s41467-026-77196-7
Citations
1
Primary Topic
Bone Metabolism and Diseases
Type
article
Field-Weighted Citation Impact
3.03

Funders

Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

The cortical microenvironment drives early immune organization and controls early osteoclastogenesis in bone healing

Birgit Sawitzki, Antigoni Triantafyllopoulou, Katharina Schmidt‐Bleek, Ralf Uecker et al.
1 citations
Nature Communications
Bone Metabolism and Diseases
3.03
article

The cortical microenvironment drives early immune organization and controls early osteoclastogenesis in bone healing

Birgit Sawitzki, Antigoni Triantafyllopoulou, Katharina Schmidt‐Bleek, Ralf Uecker, Simon Haas, Agnes Ellinghaus, Duncan M. Morgan, Ana Kasapi, Anne Noom, Georg N. Duda, Hülya Zeynep Oktay, Anja E. Hauser, Alexander Hildebrandt, Sandy Kroh, Robert Günther, Merle Kochan, Christian H. Bucher, M. Paula Bianchi, Olufemi Bolaji
article en
1 citations

Abstract

Abstract Bone regeneration is a complex, tightly-regulated process involving coordinated interactions of immune and stromal cells. Early phases of healing rely on the timely clearance of debris, a task primarily carried out by macrophages and osteoclasts. However, the sequence of events leading to the presence of osteoclasts at the fracture site and how this is shaped by local tissue microenvironments remains poorly understood, particularly at single-cell and spatial resolution. Using single-cell RNA sequencing and multi-epitope ligand cartography, we mapped the spatial organization of distinct cell compartments engaged in early fracture healing in both young and aged mice at the start of healing. Surprisingly, we found that young mice exhibited an increased presence of activated osteoclasts at day 7, concentrated within the cortical niche. This compartment was also characterized by a spatially restricted immune response with a selective accumulation of distinct macrophage types jointly interacting with neutrophils and stromal cells. This raised the possibility that local cell organization influences osteoclast precursor differentiation. We identified a distinct Spp1 hi macrophage subset restricted to the cortex, which acted as a transitional precursor population giving rise to osteoclasts. Neutrophils preceded this Spp1 hi macrophage accumulation and may promote their recruitment through chemotactic signaling. This coordination was less pronounced in aged mice despite preserved transcriptional states. In parallel, stromal cells in young animals displayed higher expression of essential niche factors further supporting local osteoclastogenesis at the cortex. Together, our findings identify distinct macrophage precursors and reveal early, cortex-specific niche activity supporting osteoclastogenesis. This provides a new framework for understanding the initiation of spatial immune–stromal interactions for the early stages of regeneration.

Nature CommunicationsVol. 17(1)
Queen Mary University of London (GB), Max Delbrück Center (DE), Humboldt-Universität zu Berlin (DE), German Rheumatism Research Centre (DE), Berlin Institute of Health at Charité - Universitätsmedizin Berlin (DE), Inspire Institute (US), Franklin University (US), Charité - Universitätsmedizin Berlin (DE)
Deutsche Forschungsgemeinschaft
Openalex Percentile: Top 16%
Bone Metabolism and Diseases
3.03
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.