Cargando…

Migration and Differentiation of GFP-transplanted Bone Marrow-derived Cells into Experimentally Induced Periodontal Polyp in Mice

Perforation of floor of the dental pulp is often encountered during root canal treatment in routine clinical practice of dental caries. If perforation were large, granulation tissue would grow to form periodontal polyp. Granulation tissue consists of proliferating cells however their origin is not c...

Descripción completa

Detalles Bibliográficos
Autores principales: Matsuda, Saeka, Shoumura, Masahito, Osuga, Naoto, Tsujigiwa, Hidetsugu, Nakano, Keisuke, Okafuji, Norimasa, Ochiai, Takanaga, Hasegawa, Hiromasa, Kawakami, Toshiyuki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4946120/
https://www.ncbi.nlm.nih.gov/pubmed/27429586
http://dx.doi.org/10.7150/ijms.15671
_version_ 1782442972270297088
author Matsuda, Saeka
Shoumura, Masahito
Osuga, Naoto
Tsujigiwa, Hidetsugu
Nakano, Keisuke
Okafuji, Norimasa
Ochiai, Takanaga
Hasegawa, Hiromasa
Kawakami, Toshiyuki
author_facet Matsuda, Saeka
Shoumura, Masahito
Osuga, Naoto
Tsujigiwa, Hidetsugu
Nakano, Keisuke
Okafuji, Norimasa
Ochiai, Takanaga
Hasegawa, Hiromasa
Kawakami, Toshiyuki
author_sort Matsuda, Saeka
collection PubMed
description Perforation of floor of the dental pulp is often encountered during root canal treatment in routine clinical practice of dental caries. If perforation were large, granulation tissue would grow to form periodontal polyp. Granulation tissue consists of proliferating cells however their origin is not clear. It was shown that the cells in granulation tissue are mainly from migration of undifferentiated mesenchymal cells of the bone marrow. Hence, this study utilized GFP bone marrow transplantation mouse model. The floor of the pulp chamber in maxillary first molar was perforated using ½ dental round bur. Morphological assessment was carried out by micro CT and microscopy and GFP cell mechanism was further assessed by immunohistochemistry using double fluorescent staining with GFP-S100A4; GFP-Runx2 and GFP-CD31. Results of micro CT revealed alveolar bone resorption and widening of periodontal ligament. Histopathological examination showed proliferation of fibroblasts with some round cells and blood vessels in the granulation tissue. At 2 weeks, the outermost layer of the granulation tissue was lined by squamous cells with distinct intercellular bridges. At 4 weeks, the granulation tissue became larger than the perforation and the outermost layer was lined by relatively typical stratified squamous epithelium. Double immunofluorescent staining of GFP and Runx2 revealed that both proteins were expressed in spindle-shaped cells. Double immunofluorescent staining of GFP and CD31 revealed that both proteins were expressed in vascular endothelial cells in morphologically distinct vessels. The results suggest that fibroblasts, periodontal ligament fibroblasts and blood vessels in granulation tissue were derived from transplanted-bone marrow cells. Thus, essential growth of granulation tissue in periodontal polyp was caused by the migration of undifferentiated mesenchymal cells derived from bone marrow, which differentiated into fibroblasts and later on differentiated into other cells in response to injury.
format Online
Article
Text
id pubmed-4946120
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Ivyspring International Publisher
record_format MEDLINE/PubMed
spelling pubmed-49461202016-07-15 Migration and Differentiation of GFP-transplanted Bone Marrow-derived Cells into Experimentally Induced Periodontal Polyp in Mice Matsuda, Saeka Shoumura, Masahito Osuga, Naoto Tsujigiwa, Hidetsugu Nakano, Keisuke Okafuji, Norimasa Ochiai, Takanaga Hasegawa, Hiromasa Kawakami, Toshiyuki Int J Med Sci Research Paper Perforation of floor of the dental pulp is often encountered during root canal treatment in routine clinical practice of dental caries. If perforation were large, granulation tissue would grow to form periodontal polyp. Granulation tissue consists of proliferating cells however their origin is not clear. It was shown that the cells in granulation tissue are mainly from migration of undifferentiated mesenchymal cells of the bone marrow. Hence, this study utilized GFP bone marrow transplantation mouse model. The floor of the pulp chamber in maxillary first molar was perforated using ½ dental round bur. Morphological assessment was carried out by micro CT and microscopy and GFP cell mechanism was further assessed by immunohistochemistry using double fluorescent staining with GFP-S100A4; GFP-Runx2 and GFP-CD31. Results of micro CT revealed alveolar bone resorption and widening of periodontal ligament. Histopathological examination showed proliferation of fibroblasts with some round cells and blood vessels in the granulation tissue. At 2 weeks, the outermost layer of the granulation tissue was lined by squamous cells with distinct intercellular bridges. At 4 weeks, the granulation tissue became larger than the perforation and the outermost layer was lined by relatively typical stratified squamous epithelium. Double immunofluorescent staining of GFP and Runx2 revealed that both proteins were expressed in spindle-shaped cells. Double immunofluorescent staining of GFP and CD31 revealed that both proteins were expressed in vascular endothelial cells in morphologically distinct vessels. The results suggest that fibroblasts, periodontal ligament fibroblasts and blood vessels in granulation tissue were derived from transplanted-bone marrow cells. Thus, essential growth of granulation tissue in periodontal polyp was caused by the migration of undifferentiated mesenchymal cells derived from bone marrow, which differentiated into fibroblasts and later on differentiated into other cells in response to injury. Ivyspring International Publisher 2016-06-29 /pmc/articles/PMC4946120/ /pubmed/27429586 http://dx.doi.org/10.7150/ijms.15671 Text en © Ivyspring International Publisher. Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited. See http://ivyspring.com/terms for terms and conditions.
spellingShingle Research Paper
Matsuda, Saeka
Shoumura, Masahito
Osuga, Naoto
Tsujigiwa, Hidetsugu
Nakano, Keisuke
Okafuji, Norimasa
Ochiai, Takanaga
Hasegawa, Hiromasa
Kawakami, Toshiyuki
Migration and Differentiation of GFP-transplanted Bone Marrow-derived Cells into Experimentally Induced Periodontal Polyp in Mice
title Migration and Differentiation of GFP-transplanted Bone Marrow-derived Cells into Experimentally Induced Periodontal Polyp in Mice
title_full Migration and Differentiation of GFP-transplanted Bone Marrow-derived Cells into Experimentally Induced Periodontal Polyp in Mice
title_fullStr Migration and Differentiation of GFP-transplanted Bone Marrow-derived Cells into Experimentally Induced Periodontal Polyp in Mice
title_full_unstemmed Migration and Differentiation of GFP-transplanted Bone Marrow-derived Cells into Experimentally Induced Periodontal Polyp in Mice
title_short Migration and Differentiation of GFP-transplanted Bone Marrow-derived Cells into Experimentally Induced Periodontal Polyp in Mice
title_sort migration and differentiation of gfp-transplanted bone marrow-derived cells into experimentally induced periodontal polyp in mice
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4946120/
https://www.ncbi.nlm.nih.gov/pubmed/27429586
http://dx.doi.org/10.7150/ijms.15671
work_keys_str_mv AT matsudasaeka migrationanddifferentiationofgfptransplantedbonemarrowderivedcellsintoexperimentallyinducedperiodontalpolypinmice
AT shoumuramasahito migrationanddifferentiationofgfptransplantedbonemarrowderivedcellsintoexperimentallyinducedperiodontalpolypinmice
AT osuganaoto migrationanddifferentiationofgfptransplantedbonemarrowderivedcellsintoexperimentallyinducedperiodontalpolypinmice
AT tsujigiwahidetsugu migrationanddifferentiationofgfptransplantedbonemarrowderivedcellsintoexperimentallyinducedperiodontalpolypinmice
AT nakanokeisuke migrationanddifferentiationofgfptransplantedbonemarrowderivedcellsintoexperimentallyinducedperiodontalpolypinmice
AT okafujinorimasa migrationanddifferentiationofgfptransplantedbonemarrowderivedcellsintoexperimentallyinducedperiodontalpolypinmice
AT ochiaitakanaga migrationanddifferentiationofgfptransplantedbonemarrowderivedcellsintoexperimentallyinducedperiodontalpolypinmice
AT hasegawahiromasa migrationanddifferentiationofgfptransplantedbonemarrowderivedcellsintoexperimentallyinducedperiodontalpolypinmice
AT kawakamitoshiyuki migrationanddifferentiationofgfptransplantedbonemarrowderivedcellsintoexperimentallyinducedperiodontalpolypinmice