Combination of 3D and 2D Small and Wide Angle X‐Ray Scattering Imaging Reveals Diminished Bone Quality in the Superior Human Femoral Neck Cortex

T Torne Tänzer T Tatiana Kochetkova (ARTORG Center for Biomedical Engineering Research University of Bern Bern Switzerland) A Arthur Baroni (Center for Photon Science Paul Scherrer Institute (PSI) Villigen Switzerland) M Mathieu Simon (3University of Bern, ARTORG Centre for biomedical engineering research, Bern, Switzerland) M Mads Carlsen (Center for Photon Science Paul Scherrer Institute (PSI) Villigen Switzerland) S Santiago Fernandez Bordin (MAX IV Laboratory Lund University Lund Sweden) M Manuel Guizar‐Sicairos (Center for Photon Science Paul Scherrer Institute (PSI) Villigen Switzerland) P Philippe Zysset (3University of Bern, ARTORG Centre for biomedical engineering research, Bern, Switzerland) M Marianne Liebi

Abstract

ABSTRACT The human femoral neck is particularly vulnerable to fracture, with failure most often initiating in the superior region. While age‐related microstructural changes such as cortical thinning and increased porosity are well established, the contribution of material properties at the lamellar and mineralised collagen fibril (MCF) levels remains poorly understood. Here, regional differences in nanostructural properties of cortical bone from 78 femoral necks obtained from 44 donors aged 54–96 are investigated using a combined 2D and 3D X‐ray scattering imaging approach. We identified misalignment between the scattering signals arising from the MCF bundles – specifically those associated with mineral inclusions in the collagen fibril gap regions, the mineral nanostructure, and the mineral crystal lattice – suggesting the presence of distinct mineral phases within and around the collagen fibers. Despite substantial intra‐sample variability, the superior region displays on average more oblique MCF orientations, larger and thicker mineral platelets arranged in a less‐ordered structure, greater misalignment between mineral and collagen at the MCF level, and possibly stiffer collagen fibers, with no significant trends observed with donor age or sex. The cumulative effect of these material property differences may contribute to the increased susceptibility of the superior cortex to compressive failure.

Article Details

Volume / Issue Vol. 38, Issue 45
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

T

Torne Tänzer

T

Tatiana Kochetkova

ARTORG Center for Biomedical Engineering Research University of Bern Bern Switzerland

A

Arthur Baroni

Center for Photon Science Paul Scherrer Institute (PSI) Villigen Switzerland

M

Mathieu Simon

3University of Bern, ARTORG Centre for biomedical engineering research, Bern, Switzerland

M

Mads Carlsen

Center for Photon Science Paul Scherrer Institute (PSI) Villigen Switzerland

S

Santiago Fernandez Bordin

MAX IV Laboratory Lund University Lund Sweden

M

Manuel Guizar‐Sicairos

Center for Photon Science Paul Scherrer Institute (PSI) Villigen Switzerland

P

Philippe Zysset

3University of Bern, ARTORG Centre for biomedical engineering research, Bern, Switzerland

M

Marianne Liebi