{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:66004"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:66004","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Mechanical and biological augmentation of allograft and synthetic graft in impaction bone grafting","abstract":"Aims:<br/><br/>This thesis has three main aims:<br/><br/>• To investigate the potential role of human bone marrow stromal cells<br/>(HBMSC) in Impaction Bone Grafting (IBG).<br/><br/>• To investigate the potential role of a synthetic graft, Poly (DL-lactic acid),<br/>(PDLLA) as a tissue engineering scaffold and a graft extender in IBG.<br/><br/>• To investigate methods to improve graft compaction and reduce fracture risk<br/>in IBG.<br/><br/>Methods:<br/><br/>Part I: The biocompatibility and mechanical properties of HBMSC seeded onto<br/>allograft or PDLLA were compared to allograft or PDLLA alone in vitro.<br/><br/>Part II: Evidence of biocompatibility, neovascularisation and new bone formation in<br/>impacted allograft and PDLLA scaffolds seeded with HBMSC, in vivo was assessed<br/>and compared to allograft and PDLLA alone.<br/><br/>Part III: The laboratory work was translated into the clinical setting with implantation<br/>of impacted allograft seeded with HBMSC for the treatment of bone defects in two<br/>case studies.<br/><br/>Part IV: The role of vibration in IBG technique to reduce fracture risk and improve<br/>graft compaction and prosthetic stability was assessed in an in vitro femoral IBG<br/>model.<br/><br/>Results:<br/><br/>Part I: HBMSC seeded onto morsellised allograft or PDLLA, and cultured under<br/>osteogenic conditions in vitro were able to withstand the forces equivalent to a<br/>standard femoral impaction and were able to differentiate and proliferate along the<br/>osteogenic lineage. The living composite formed provided a biomechanical<br/>advantage, with increased interparticulate cohesion and shear strength when compared<br/>to allograft alone.<br/><br/>Part II: HBMSC seeded onto morsellised allograft or PDLLA, impacted and implanted<br/>subcutaneously in nude mice demonstrated cell viability and histological evidence of<br/>new bone formation and neovascularisation after 28 days.<br/><br/>Part III: In two case studies impacted allograft augmented with marrow-derived<br/>autogenous cells was used to treat bone voids in the proximal femur. Both patients<br/>made an uncomplicated clinical recovery. Imaging confirmed filling of the defects<br/>with very encouraging initial graft incorporation. Histochemical staining of graft<br/>samples demonstrated that a live composite graft with osteogenic activity had been<br/>introduced into the defects. Alkaline phosphatase and immunohistochemical staining<br/>techniques confirmed the bone phenotype of the autotransplanted cells.<br/><br/>Part IV: Vibration assisted compaction of morsellised allograft reduced the peak<br/>loads and hoop strains transmitted to the femoral cortex during graft compaction,<br/>improved graft compaction in the proximal and middle femoral regions, which in turn<br/>conferred improved mechanical stability of the prosthesis under cyclical loading,<br/>demonstrated by a reduction in stem subsidence.<br/><br/>Conclusions:<br/><br/>• HBMSC when combined with either allograft or synthetic graft (PDLLA) can<br/>survive the forces of a standard IBG and under osteogenic conditions, differentiate<br/>and proliferate along the osteogenic lineage. HBMSC and allograft / PDLLA<br/>composites confer an additional biomechanical advantage over allograft / PDLLA<br/>alone.<br/><br/>• Increased new bone formation and neovascularisation has been demonstrated in<br/>vivo in allograft and PDLLA / HBMSC composites compared to allograft or PDLLA<br/>alone.<br/><br/>• Tissue engineering principles combining morsellised allograft and HBMSC<br/>composites have been utilised to fill bony voids in two clinical cases, with good<br/>clinical outcome.<br/><br/>• By reducing peak loads, hoop strains and femoral fracture risk, and improving<br/>graft compaction and prosthetic stability the use of vibration and a perforated tamp<br/>is a potential new safer more flexible IBG technique.<br/><br/>• Utilising tissue engineering techniques and improved graft impaction methods<br/>provides avenues to augment the biological and mechanical properties of<br/>morsellised allograft, and potentially increase the longevity of revision hip<br/>arthroplasty performed using the IBG technique.","abstract_html":"Aims:&lt;br/&gt;&lt;br/&gt;This thesis has three main aims:&lt;br/&gt;&lt;br/&gt;• To investigate the potential role of human bone marrow stromal cells&lt;br/&gt;(HBMSC) in Impaction Bone Grafting (IBG).&lt;br/&gt;&lt;br/&gt;• To investigate the potential role of a synthetic graft, Poly (DL-lactic acid),&lt;br/&gt;(PDLLA) as a tissue engineering scaffold and a graft extender in IBG.&lt;br/&gt;&lt;br/&gt;• To investigate methods to improve graft compaction and reduce fracture risk&lt;br/&gt;in IBG.&lt;br/&gt;&lt;br/&gt;Methods:&lt;br/&gt;&lt;br/&gt;Part I: The biocompatibility and mechanical properties of HBMSC seeded onto&lt;br/&gt;allograft or PDLLA were compared to allograft or PDLLA alone in vitro.&lt;br/&gt;&lt;br/&gt;Part II: Evidence of biocompatibility, neovascularisation and new bone formation in&lt;br/&gt;impacted allograft and PDLLA scaffolds seeded with HBMSC, in vivo was assessed&lt;br/&gt;and compared to allograft and PDLLA alone.&lt;br/&gt;&lt;br/&gt;Part III: The laboratory work was translated into the clinical setting with implantation&lt;br/&gt;of impacted allograft seeded with HBMSC for the treatment of bone defects in two&lt;br/&gt;case studies.&lt;br/&gt;&lt;br/&gt;Part IV: The role of vibration in IBG technique to reduce fracture risk and improve&lt;br/&gt;graft compaction and prosthetic stability was assessed in an in vitro femoral IBG&lt;br/&gt;model.&lt;br/&gt;&lt;br/&gt;Results:&lt;br/&gt;&lt;br/&gt;Part I: HBMSC seeded onto morsellised allograft or PDLLA, and cultured under&lt;br/&gt;osteogenic conditions in vitro were able to withstand the forces equivalent to a&lt;br/&gt;standard femoral impaction and were able to differentiate and proliferate along the&lt;br/&gt;osteogenic lineage. The living composite formed provided a biomechanical&lt;br/&gt;advantage, with increased interparticulate cohesion and shear strength when compared&lt;br/&gt;to allograft alone.&lt;br/&gt;&lt;br/&gt;Part II: HBMSC seeded onto morsellised allograft or PDLLA, impacted and implanted&lt;br/&gt;subcutaneously in nude mice demonstrated cell viability and histological evidence of&lt;br/&gt;new bone formation and neovascularisation after 28 days.&lt;br/&gt;&lt;br/&gt;Part III: In two case studies impacted allograft augmented with marrow-derived&lt;br/&gt;autogenous cells was used to treat bone voids in the proximal femur. Both patients&lt;br/&gt;made an uncomplicated clinical recovery. Imaging confirmed filling of the defects&lt;br/&gt;with very encouraging initial graft incorporation. Histochemical staining of graft&lt;br/&gt;samples demonstrated that a live composite graft with osteogenic activity had been&lt;br/&gt;introduced into the defects. Alkaline phosphatase and immunohistochemical staining&lt;br/&gt;techniques confirmed the bone phenotype of the autotransplanted cells.&lt;br/&gt;&lt;br/&gt;Part IV: Vibration assisted compaction of morsellised allograft reduced the peak&lt;br/&gt;loads and hoop strains transmitted to the femoral cortex during graft compaction,&lt;br/&gt;improved graft compaction in the proximal and middle femoral regions, which in turn&lt;br/&gt;conferred improved mechanical stability of the prosthesis under cyclical loading,&lt;br/&gt;demonstrated by a reduction in stem subsidence.&lt;br/&gt;&lt;br/&gt;Conclusions:&lt;br/&gt;&lt;br/&gt;• HBMSC when combined with either allograft or synthetic graft (PDLLA) can&lt;br/&gt;survive the forces of a standard IBG and under osteogenic conditions, differentiate&lt;br/&gt;and proliferate along the osteogenic lineage. HBMSC and allograft / PDLLA&lt;br/&gt;composites confer an additional biomechanical advantage over allograft / PDLLA&lt;br/&gt;alone.&lt;br/&gt;&lt;br/&gt;• Increased new bone formation and neovascularisation has been demonstrated in&lt;br/&gt;vivo in allograft and PDLLA / HBMSC composites compared to allograft or PDLLA&lt;br/&gt;alone.&lt;br/&gt;&lt;br/&gt;• Tissue engineering principles combining morsellised allograft and HBMSC&lt;br/&gt;composites have been utilised to fill bony voids in two clinical cases, with good&lt;br/&gt;clinical outcome.&lt;br/&gt;&lt;br/&gt;• By reducing peak loads, hoop strains and femoral fracture risk, and improving&lt;br/&gt;graft compaction and prosthetic stability the use of vibration and a perforated tamp&lt;br/&gt;is a potential new safer more flexible IBG technique.&lt;br/&gt;&lt;br/&gt;• Utilising tissue engineering techniques and improved graft impaction methods&lt;br/&gt;provides avenues to augment the biological and mechanical properties of&lt;br/&gt;morsellised allograft, and potentially increase the longevity of revision hip&lt;br/&gt;arthroplasty performed using the IBG technique.","abstract_has_math":false,"creators":["Bolland, Benjamin J.R.F."],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Oreffo, R.","Dunlop, D."],"committee_chairs":[],"committee_members":[],"year":2008,"date_issued":"2008-02","date_published":"2008-02","updated_at":"2026-07-24T04:35:58Z","subjects":[],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":null,"outbound_label":null,"outbound_source":null},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Oreffo, R.","Dunlop, D."]},{"key":"dc:creator","label":"Author","values":["Bolland, Benjamin J.R.F."]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2008-02"]},{"key":"dc:date.issued","label":"Date","values":["2008-02"]},{"key":"dc:publisher.commercial","label":"Dc Publisher Commercial","values":["University of Southampton"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["Dev Origins of Health & Disease (pre 2011 reorg)","Developmental Origins of Health and Disease"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["University of Southampton"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://eprints.soton.ac.uk/66004/"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["doctoral"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Ph.D."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://eprints.soton.ac.uk/66004/1/Thesis_The_END_281-4-08_29_2.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Aims:<br/><br/>This thesis has three main aims:<br/><br/>• To investigate the potential role of human bone marrow stromal cells<br/>(HBMSC) in Impaction Bone Grafting (IBG).<br/><br/>• To investigate the potential role of a synthetic graft, Poly (DL-lactic acid),<br/>(PDLLA) as a tissue engineering scaffold and a graft extender in IBG.<br/><br/>• To investigate methods to improve graft compaction and reduce fracture risk<br/>in IBG.<br/><br/>Methods:<br/><br/>Part I: The biocompatibility and mechanical properties of HBMSC seeded onto<br/>allograft or PDLLA were compared to allograft or PDLLA alone in vitro.<br/><br/>Part II: Evidence of biocompatibility, neovascularisation and new bone formation in<br/>impacted allograft and PDLLA scaffolds seeded with HBMSC, in vivo was assessed<br/>and compared to allograft and PDLLA alone.<br/><br/>Part III: The laboratory work was translated into the clinical setting with implantation<br/>of impacted allograft seeded with HBMSC for the treatment of bone defects in two<br/>case studies.<br/><br/>Part IV: The role of vibration in IBG technique to reduce fracture risk and improve<br/>graft compaction and prosthetic stability was assessed in an in vitro femoral IBG<br/>model.<br/><br/>Results:<br/><br/>Part I: HBMSC seeded onto morsellised allograft or PDLLA, and cultured under<br/>osteogenic conditions in vitro were able to withstand the forces equivalent to a<br/>standard femoral impaction and were able to differentiate and proliferate along the<br/>osteogenic lineage. The living composite formed provided a biomechanical<br/>advantage, with increased interparticulate cohesion and shear strength when compared<br/>to allograft alone.<br/><br/>Part II: HBMSC seeded onto morsellised allograft or PDLLA, impacted and implanted<br/>subcutaneously in nude mice demonstrated cell viability and histological evidence of<br/>new bone formation and neovascularisation after 28 days.<br/><br/>Part III: In two case studies impacted allograft augmented with marrow-derived<br/>autogenous cells was used to treat bone voids in the proximal femur. Both patients<br/>made an uncomplicated clinical recovery. Imaging confirmed filling of the defects<br/>with very encouraging initial graft incorporation. Histochemical staining of graft<br/>samples demonstrated that a live composite graft with osteogenic activity had been<br/>introduced into the defects. Alkaline phosphatase and immunohistochemical staining<br/>techniques confirmed the bone phenotype of the autotransplanted cells.<br/><br/>Part IV: Vibration assisted compaction of morsellised allograft reduced the peak<br/>loads and hoop strains transmitted to the femoral cortex during graft compaction,<br/>improved graft compaction in the proximal and middle femoral regions, which in turn<br/>conferred improved mechanical stability of the prosthesis under cyclical loading,<br/>demonstrated by a reduction in stem subsidence.<br/><br/>Conclusions:<br/><br/>• HBMSC when combined with either allograft or synthetic graft (PDLLA) can<br/>survive the forces of a standard IBG and under osteogenic conditions, differentiate<br/>and proliferate along the osteogenic lineage. HBMSC and allograft / PDLLA<br/>composites confer an additional biomechanical advantage over allograft / PDLLA<br/>alone.<br/><br/>• Increased new bone formation and neovascularisation has been demonstrated in<br/>vivo in allograft and PDLLA / HBMSC composites compared to allograft or PDLLA<br/>alone.<br/><br/>• Tissue engineering principles combining morsellised allograft and HBMSC<br/>composites have been utilised to fill bony voids in two clinical cases, with good<br/>clinical outcome.<br/><br/>• By reducing peak loads, hoop strains and femoral fracture risk, and improving<br/>graft compaction and prosthetic stability the use of vibration and a perforated tamp<br/>is a potential new safer more flexible IBG technique.<br/><br/>• Utilising tissue engineering techniques and improved graft impaction methods<br/>provides avenues to augment the biological and mechanical properties of<br/>morsellised allograft, and potentially increase the longevity of revision hip<br/>arthroplasty performed using the IBG technique."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Mechanical and biological augmentation of allograft and synthetic graft in impaction bone grafting"]}]}],"canonical_facts":{"dc:contributor.advisor":["Oreffo, R.","Dunlop, D."],"dc:creator":["Bolland, Benjamin J.R.F."],"dc:date":["2008-02"],"dc:date.issued":["2008-02"],"dc:description.abstract":["Aims:<br/><br/>This thesis has three main aims:<br/><br/>• To investigate the potential role of human bone marrow stromal cells<br/>(HBMSC) in Impaction Bone Grafting (IBG).<br/><br/>• To investigate the potential role of a synthetic graft, Poly (DL-lactic acid),<br/>(PDLLA) as a tissue engineering scaffold and a graft extender in IBG.<br/><br/>• To investigate methods to improve graft compaction and reduce fracture risk<br/>in IBG.<br/><br/>Methods:<br/><br/>Part I: The biocompatibility and mechanical properties of HBMSC seeded onto<br/>allograft or PDLLA were compared to allograft or PDLLA alone in vitro.<br/><br/>Part II: Evidence of biocompatibility, neovascularisation and new bone formation in<br/>impacted allograft and PDLLA scaffolds seeded with HBMSC, in vivo was assessed<br/>and compared to allograft and PDLLA alone.<br/><br/>Part III: The laboratory work was translated into the clinical setting with implantation<br/>of impacted allograft seeded with HBMSC for the treatment of bone defects in two<br/>case studies.<br/><br/>Part IV: The role of vibration in IBG technique to reduce fracture risk and improve<br/>graft compaction and prosthetic stability was assessed in an in vitro femoral IBG<br/>model.<br/><br/>Results:<br/><br/>Part I: HBMSC seeded onto morsellised allograft or PDLLA, and cultured under<br/>osteogenic conditions in vitro were able to withstand the forces equivalent to a<br/>standard femoral impaction and were able to differentiate and proliferate along the<br/>osteogenic lineage. The living composite formed provided a biomechanical<br/>advantage, with increased interparticulate cohesion and shear strength when compared<br/>to allograft alone.<br/><br/>Part II: HBMSC seeded onto morsellised allograft or PDLLA, impacted and implanted<br/>subcutaneously in nude mice demonstrated cell viability and histological evidence of<br/>new bone formation and neovascularisation after 28 days.<br/><br/>Part III: In two case studies impacted allograft augmented with marrow-derived<br/>autogenous cells was used to treat bone voids in the proximal femur. Both patients<br/>made an uncomplicated clinical recovery. Imaging confirmed filling of the defects<br/>with very encouraging initial graft incorporation. Histochemical staining of graft<br/>samples demonstrated that a live composite graft with osteogenic activity had been<br/>introduced into the defects. Alkaline phosphatase and immunohistochemical staining<br/>techniques confirmed the bone phenotype of the autotransplanted cells.<br/><br/>Part IV: Vibration assisted compaction of morsellised allograft reduced the peak<br/>loads and hoop strains transmitted to the femoral cortex during graft compaction,<br/>improved graft compaction in the proximal and middle femoral regions, which in turn<br/>conferred improved mechanical stability of the prosthesis under cyclical loading,<br/>demonstrated by a reduction in stem subsidence.<br/><br/>Conclusions:<br/><br/>• HBMSC when combined with either allograft or synthetic graft (PDLLA) can<br/>survive the forces of a standard IBG and under osteogenic conditions, differentiate<br/>and proliferate along the osteogenic lineage. HBMSC and allograft / PDLLA<br/>composites confer an additional biomechanical advantage over allograft / PDLLA<br/>alone.<br/><br/>• Increased new bone formation and neovascularisation has been demonstrated in<br/>vivo in allograft and PDLLA / HBMSC composites compared to allograft or PDLLA<br/>alone.<br/><br/>• Tissue engineering principles combining morsellised allograft and HBMSC<br/>composites have been utilised to fill bony voids in two clinical cases, with good<br/>clinical outcome.<br/><br/>• By reducing peak loads, hoop strains and femoral fracture risk, and improving<br/>graft compaction and prosthetic stability the use of vibration and a perforated tamp<br/>is a potential new safer more flexible IBG technique.<br/><br/>• Utilising tissue engineering techniques and improved graft impaction methods<br/>provides avenues to augment the biological and mechanical properties of<br/>morsellised allograft, and potentially increase the longevity of revision hip<br/>arthroplasty performed using the IBG technique."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/66004/1/Thesis_The_END_281-4-08_29_2.pdf"],"dc:publisher.commercial":["University of Southampton"],"dc:publisher.department":["Dev Origins of Health & Disease (pre 2011 reorg)","Developmental Origins of Health and Disease"],"dc:publisher.institution":["University of Southampton"],"dc:relation.isreferencedby":["https://eprints.soton.ac.uk/66004/"],"dc:title":["Mechanical and biological augmentation of allograft and synthetic graft in impaction bone grafting"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:35:58Z"}