Micro-computed tomography derived anisotropy detects tumor provoked deviations in bone in an orthotopic osteosarcoma murine model.

Radiographic imaging plays a crucial role in the diagnosis of osteosarcoma. Currently, computed-tomography (CT) is used to measure tumor-induced osteolysis as a marker for tumor growth by monitoring the bone fractional volume. As most tumors primarily induce osteolysis, lower bone fractional volume...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autores principales: Heather A Cole, Tetsuro Ohba, Jiro Ichikawa, Jeffry S Nyman, Justin M M Cates, Hirotaka Haro, Herbert S Schwartz, Jonathan G Schoenecker
Formato: article
Lenguaje:EN
Publicado: Public Library of Science (PLoS) 2014
Materias:
R
Q
Acceso en línea:https://doaj.org/article/23063e82f5ba412d88092f1ffdceef08
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
id oai:doaj.org-article:23063e82f5ba412d88092f1ffdceef08
record_format dspace
spelling oai:doaj.org-article:23063e82f5ba412d88092f1ffdceef082021-11-18T08:17:20ZMicro-computed tomography derived anisotropy detects tumor provoked deviations in bone in an orthotopic osteosarcoma murine model.1932-620310.1371/journal.pone.0097381https://doaj.org/article/23063e82f5ba412d88092f1ffdceef082014-01-01T00:00:00Zhttps://www.ncbi.nlm.nih.gov/pmc/articles/pmid/24892952/pdf/?tool=EBIhttps://doaj.org/toc/1932-6203Radiographic imaging plays a crucial role in the diagnosis of osteosarcoma. Currently, computed-tomography (CT) is used to measure tumor-induced osteolysis as a marker for tumor growth by monitoring the bone fractional volume. As most tumors primarily induce osteolysis, lower bone fractional volume has been found to correlate with tumor aggressiveness. However, osteosarcoma is an exception as it induces osteolysis and produces mineralized osteoid simultaneously. Given that competent bone is highly anisotropic (systematic variance in its architectural order renders its physical properties dependent on direction of load) and that tumor induced osteolysis and osteogenesis are structurally disorganized relative to competent bone, we hypothesized that μCT-derived measures of anisotropy could be used to qualitatively and quantitatively detect osteosarcoma provoked deviations in bone, both osteolysis and osteogenesis, in vivo. We tested this hypothesis in a murine model of osteosarcoma cells orthotopically injected into the tibia. We demonstrate that, in addition to bone fractional volume, μCT-derived measure of anisotropy is a complete and accurate method to monitor osteosarcoma-induced osteolysis. Additionally, we found that unlike bone fractional volume, anisotropy could also detect tumor-induced osteogenesis. These findings suggest that monitoring tumor-induced changes in the structural property isotropy of the invaded bone may represent a novel means of diagnosing primary and metastatic bone tumors.Heather A ColeTetsuro OhbaJiro IchikawaJeffry S NymanJustin M M CatesHirotaka HaroHerbert S SchwartzJonathan G SchoeneckerPublic Library of Science (PLoS)articleMedicineRScienceQENPLoS ONE, Vol 9, Iss 6, p e97381 (2014)
institution DOAJ
collection DOAJ
language EN
topic Medicine
R
Science
Q
spellingShingle Medicine
R
Science
Q
Heather A Cole
Tetsuro Ohba
Jiro Ichikawa
Jeffry S Nyman
Justin M M Cates
Hirotaka Haro
Herbert S Schwartz
Jonathan G Schoenecker
Micro-computed tomography derived anisotropy detects tumor provoked deviations in bone in an orthotopic osteosarcoma murine model.
description Radiographic imaging plays a crucial role in the diagnosis of osteosarcoma. Currently, computed-tomography (CT) is used to measure tumor-induced osteolysis as a marker for tumor growth by monitoring the bone fractional volume. As most tumors primarily induce osteolysis, lower bone fractional volume has been found to correlate with tumor aggressiveness. However, osteosarcoma is an exception as it induces osteolysis and produces mineralized osteoid simultaneously. Given that competent bone is highly anisotropic (systematic variance in its architectural order renders its physical properties dependent on direction of load) and that tumor induced osteolysis and osteogenesis are structurally disorganized relative to competent bone, we hypothesized that μCT-derived measures of anisotropy could be used to qualitatively and quantitatively detect osteosarcoma provoked deviations in bone, both osteolysis and osteogenesis, in vivo. We tested this hypothesis in a murine model of osteosarcoma cells orthotopically injected into the tibia. We demonstrate that, in addition to bone fractional volume, μCT-derived measure of anisotropy is a complete and accurate method to monitor osteosarcoma-induced osteolysis. Additionally, we found that unlike bone fractional volume, anisotropy could also detect tumor-induced osteogenesis. These findings suggest that monitoring tumor-induced changes in the structural property isotropy of the invaded bone may represent a novel means of diagnosing primary and metastatic bone tumors.
format article
author Heather A Cole
Tetsuro Ohba
Jiro Ichikawa
Jeffry S Nyman
Justin M M Cates
Hirotaka Haro
Herbert S Schwartz
Jonathan G Schoenecker
author_facet Heather A Cole
Tetsuro Ohba
Jiro Ichikawa
Jeffry S Nyman
Justin M M Cates
Hirotaka Haro
Herbert S Schwartz
Jonathan G Schoenecker
author_sort Heather A Cole
title Micro-computed tomography derived anisotropy detects tumor provoked deviations in bone in an orthotopic osteosarcoma murine model.
title_short Micro-computed tomography derived anisotropy detects tumor provoked deviations in bone in an orthotopic osteosarcoma murine model.
title_full Micro-computed tomography derived anisotropy detects tumor provoked deviations in bone in an orthotopic osteosarcoma murine model.
title_fullStr Micro-computed tomography derived anisotropy detects tumor provoked deviations in bone in an orthotopic osteosarcoma murine model.
title_full_unstemmed Micro-computed tomography derived anisotropy detects tumor provoked deviations in bone in an orthotopic osteosarcoma murine model.
title_sort micro-computed tomography derived anisotropy detects tumor provoked deviations in bone in an orthotopic osteosarcoma murine model.
publisher Public Library of Science (PLoS)
publishDate 2014
url https://doaj.org/article/23063e82f5ba412d88092f1ffdceef08
work_keys_str_mv AT heatheracole microcomputedtomographyderivedanisotropydetectstumorprovokeddeviationsinboneinanorthotopicosteosarcomamurinemodel
AT tetsuroohba microcomputedtomographyderivedanisotropydetectstumorprovokeddeviationsinboneinanorthotopicosteosarcomamurinemodel
AT jiroichikawa microcomputedtomographyderivedanisotropydetectstumorprovokeddeviationsinboneinanorthotopicosteosarcomamurinemodel
AT jeffrysnyman microcomputedtomographyderivedanisotropydetectstumorprovokeddeviationsinboneinanorthotopicosteosarcomamurinemodel
AT justinmmcates microcomputedtomographyderivedanisotropydetectstumorprovokeddeviationsinboneinanorthotopicosteosarcomamurinemodel
AT hirotakaharo microcomputedtomographyderivedanisotropydetectstumorprovokeddeviationsinboneinanorthotopicosteosarcomamurinemodel
AT herbertsschwartz microcomputedtomographyderivedanisotropydetectstumorprovokeddeviationsinboneinanorthotopicosteosarcomamurinemodel
AT jonathangschoenecker microcomputedtomographyderivedanisotropydetectstumorprovokeddeviationsinboneinanorthotopicosteosarcomamurinemodel
_version_ 1718421911063494656