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Biology subjects

Bourne, L. E.

Publications and source records attributed to Bourne, L. E..

4 recordsLinked to original sources

Articular calcified cartilage microarchitecture has a predictive role in abnormal osteochondral strain distributions in murine age-related osteoarthritis

Even though osteoarthritis is considered a disease of the whole joint, integrated analysis of articular calcified cartilage (ACC) behaviour with adjacent tissues remains a persistent limitation. Herein, we performed synchrotron X-ray computed tomography in intact loaded joints and coupled anatomical analysis with digital volume correlation to examine whether microarchitectural ACC features serve as predictive mechano-biomarkers of osteoarthritis. We reveal that male osteoarthritis-prone STR/Ort mice have thicker yet more porous ACC that contains larger but less spherical chondrocyte lacunae than their healthy parental-control CBA mice. This was linked to asymmetrical distribution of tensile and compressive strains generated under physiological loads in the ACC and underlying subchondral bone in tibial epiphyses of STR/Ort mice. Together these data suggest that murine ACC microarchitecture has a mechano-predictive role in age-related osteoarthritis.

physiology↗

TNAP and PHOSPHO1 function synergistically to afford critical control over the mineralisation of the postnatal murine skeleton

Biomineralisation is essential for skeletal integrity, yet the synergistic roles of tissue non-specific alkaline phosphatase (TNAP) and PHOSPHO1 in postnatal bone mineralisation remain poorly defined. To decipher this, we generated a novel murine model in which Alpl was deleted in Prx1- expressing cells (AlplPrx1/Prx1) in mice with a global Phospho1-/- deficiency to overcome the perinatal lethality that arises upon dual global deletion. Using a multi-modal approach to spatially phenotype the limbs of these animals, we reveal mice lacking both TNAP and PHOSPHO1 exhibit a distinct lack of mineralisation and altered anatomical structure at postnatal day 1 (PN1) and 3-weeks of age. Although viable, these mice did not thrive due to their reduced size, thus further investigations were conducted on mice with a heterozygous deletion of TNAP (Alplwt/Prx1;Phospho1-/-). Although smaller than wild-types at PN1 and 3 weeks old, these mice did not display the gross limb deformations observed in the homozygous animals and the single, functioning Alpl allele rescued the loss of biomineralisation observed following dual phosphatase deletion. At 6-weeks of age, compromised epiphyses and metaphyses were only seen in AlplPrx1/Prx1 animals. Further, we found that tibial geometry and porosity was significantly altered by Phospho1 deletion (Phospho1-/-), which was compounded in the Alplwt/Prx1;Phospho1-/- mice and linked to alterations in collagen configuration, matrix mineralisation and growth plate deformities. Together, our findings establish the mechanistic framework for TNAP and PHOSPHO1 in permissive biomineralisation, providing critical insights into this fundamental process. Significance StatementBiomineralisation is essential for skeletal development and is critically dependent on phosphatases that release inorganic phosphate for hydroxyapatite formation. Our study investigates the dual role of PHOSPHO1 and TNAP in this process, using a novel murine knockout model. Deletion of both enzymes results in complete loss of bone mineralisation, demonstrating their critical synergistic function. Further, we show that PHOSPHO1 and TNAP exhibit distinct, spatially-restricted functions in the tibia and thus enhances our understanding of the fundamentals processes underpinning biomineralisation. These findings also have clinical relevance as they have the potential to inform on treatment strategies for hypo- and hyper-mineralised pathologies.

developmental biology↗

In situ profiling of nanoscale displacements uncovers mechano-architectural predictors of osteoarthritis emergence

Mechanical and anatomical interplay between the distinct tissues of the knee joint is essential for maintaining functional integrity during healthy ageing and contributes to the mechanisms that drive osteoarthritis (OA). In this study, we investigate how age- and disease-associated alterations in joint anatomy influence load transmission and tissue-level strain distribution. Using full-field synchrotron X-ray computed tomography coupled with digital volume correlation, we hierarchically characterised in situ nanoscale strains generated in response to mechanical loading across the tibial epiphysis. Our findings show that greater compressive strains accumulate in the articular condyle of male OA-prone (STR/Ort) epiphyses. Finite element modelling further demonstrated that these strain concentrations are associated with reduced load-bearing capacity, which arise from architectural differences localised to the subchondral bone plate. By coupling high-resolution imaging with computational modelling, our work provides new insights into how structural-function changes to joint anatomy contribute to the initiation and progression of mechanically driven OA. Our approach offers a means to identify early imaging biomarkers prior to OA diagnosis and has potential for monitoring interventions aimed at preserving joint mechanics while promoting healthy joint ageing.

bioengineering↗

Sexually dimorphic effects of prenatal alcohol exposure on the murine skeleton

BackgroundPrenatal alcohol exposure (PAE) can result in lifelong disabilities known as foetal alcohol spectrum disorder (FASD) and is associated with childhood growth deficiencies and increased bone fracture risk. However, the effects of PAE on the adult skeleton remain unclear and any potential sexual dimorphism is undetermined. Therefore, we utilised a murine model to examine sex differences with PAE on in vitro bone formation, and in the juvenile and adult skeleton. MethodsPregnant C57BL/6J female mice received 5% ethanol in their drinking water during gestation. Primary calvarial osteoblasts were isolated from neonatal offspring and mineralised bone nodule formation and gene expression assessed. Skeletal phenotyping of 4- and 12-week-old male and female offspring was conducted by micro-computed tomography ({micro}CT), 3-point bending, growth plate analyses, and histology. ResultsOsteoblasts from male and female PAE mice displayed reduced bone formation, compared to control ([≤]30%). Bglap and Ahsg were upregulated with PAE in both sexes compared to control, whereas Vegfa, Bmp6, Tgfbr1 and Flt1 were downregulated in PAE male osteoblasts only. In 12-week-old mice, {micro}CT analysis revealed a sex and exposure interaction across several trabecular bone parameters. PAE was detrimental to the trabecular compartment in male mice compared to control, yet PAE females were unaffected. Both male and female mice had significant reductions in cortical parameters with PAE. Whilst male mice were negatively affected along the tibia length, females were only distally affected. Posterior cortical porosity was increased in PAE females only. Mechanical testing revealed PAE males had significantly reduced bone stiffness compared to controls; maximum load and yield was reduced in both sexes. PAE had no effect on total body weight or tibial bone length in either sex. However, total growth plate width in male PAE mice compared to control was reduced, whilst female PAE mice were unaffected. 4-week-old mice did not display the altered skeletal phenotype with PAE observed in 12-week-old animals. ConclusionsEvidence herein suggests for the first time that PAE exerts divergent sex effects on the skeleton, possibly influenced by underlying sex specific transcriptional mechanisms of osteoblasts. Establishing these sex differences will support future policies and clinical management of FASD. Plain English summaryPrenatal alcohol exposure (PAE) can lead to a set of lifelong cognitive, behavioural, and physical disabilities known as foetal alcohol spectrum disorder (FASD). FASD is a significant burden on healthcare, justice and education systems, which is set to worsen with rising alcohol consumption rates. FASD children have an increased risk of long bone fracture and adolescents are smaller in stature. However, sex differences and the long-term effects of PAE on the skeleton have not been investigated and was the aim of this study. Using a mouse model of PAE, we examined the function and gene expression of bone-forming cells (osteoblasts). We then analysed the skeletons of male and female mice at 12-weeks-old (adult) and 4-weeks-old (juvenile). PAE reduced osteoblast bone formation in both sexes, compared to control. Differential gene expression was predominantly observed in PAE males and largely involved genes related to blood vessel formation. High resolution x-ray imaging (micro-CT) revealed PAE had a detrimental effect on the inner trabecular bone component in 12-week-old male mice only. Analysis of the outer cortical bone revealed that whilst both male and female PAE mice were negatively affected, anatomical variations were observed. Mechanical testing also revealed differences in bone strength in PAE mice, compared to control. Interestingly, 4-week-old mice did not possess these sex differences observed in our PAE model at 12 weeks of age. Our data suggest PAE has detrimental and yet sex-dependent effects on the skeleton. Establishing these sex differences will support future policies and clinical management of FASD. HighlightsO_LIPrimary calvarial osteoblasts isolated from male and female PAE mice displayed reduced mineralised bone nodule formation and differential gene expression compared to control. C_LIO_LIPAE had a detrimental effect on trabecular bone parameters in 12-week-old male mice only. C_LIO_LIPAE leads to spatial variation in cortical bone parameters and geometry, with male mice negatively affected along the tibia length and female mice only affected at the distal end. C_LIO_LIMechanical testing revealed PAE male mice had significantly reduced bone stiffness compared to controls; PAE in both sexes reduced maximum load and yield. C_LIO_LI4-week-old mice did not display the altered skeletal phenotype with PAE observed in 12-week-old animals. C_LI

cell biology↗