PubMed Health⌕ Search

PubMed · 15327480

Tissue regeneration based on tissue engineering technology.

Abstract

Recent development of biomedical engineering as well as basic biology and medicine has enabled us to induce cell-based regeneration of body tissue to self-repair defective tissue or substitute biological functions of damaged organs. For successful tissue regeneration, it is indispensable to give cells an environment suitable for regeneration induction. Tissue engineering is a newly emerging biomedical technology for creating an environment for tissue regeneration with various biomaterials. The paper presented here overviews recent research data on tissue regeneration based on tissue engineering, and briefly explains the key technology of tissue engineering.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Yasuhiko Tabata. 2004. Tissue regeneration based on tissue engineering technology.. https://doi.org/10.1111/j.1741-4520.2004.00024.x

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Rapidly decellularized adipose tissue induces soft tissue vascularization in potential anatomical spaces.

Decellularized tissues provide biological cues owing to the wealth of structural and regulatory factors that promote angiogenesis, adipogenesis, and myogenesis and facilitate neurite outgrowth. Here, we demonstrated the advantages of decellularized adipose tissue (adipoECM) over defined collagen-based biomaterials for host tissue integration. Three batches of human adipose tissue were decellularized using a rapid decellularization protocol and analyzed using mass spectrometry. To assess the biological activity of the decellularized materials, adipoECM and a reference standard of care biomaterial (Integra®DRT, also containing collagen I and glycosaminoglycans) were implanted subcutaneously, but far from the wound bed (in anatomical potential spaces) of immunocompetent BALB/c mice. The mice were euthanized in the acute (1 day) and chronic (day 60) inflammatory reaction phases, followed by biomaterial excision and Masson’s trichrome immunohistofluorescence imaging of the paraffin-embedded specimens. Each batch of processed tissue passed a quality control check, showing a low level of donor genomic DNA, lack of nuclei, lipids, endotoxins, and bacterial contamination. Mass spectrometry revealed that all batches of decellularized tissue mainly contained collagen I and, to a lesser degree, collagen III, collagen IV, collagen V, laminin, fibrillin, fibronectin, tenascin, and elastin. No acute inflammatory reaction was observed in either material one day post-transplantation. At 60 days post-implantation, different cell types were detected in adipoECM specimens, whereas Integra®DRT remained acellular. Additional immunohistochemical staining of adipoECM revealed CD31-positive cells in the blood vessels. Mesenchymal (CD90 positive) and myeloid (CD14 positive) cells were also detected. Primary cell types involved in soft tissue healing and remodeling were found in the adipoECM-treated group. The ingrowth of blood vessels and mesenchymal cells confirmed the effective integration of adipoECM with host tissues. Our results demonstrate that decellularized adipose tissue implanted away from the wound bed possesses contextual biological activities that promote efficient integration with host tissues.

Adipose Tissue↗

Quantitative analysis of aromatase mRNA expression derived from various promoters (I.4, I.3, PII and I.7) and its association with expression of TNF-alpha, IL-6 and COX-2 mRNAs in human breast cancer.

The purpose of the present study was to study the aromatase mRNA expression as well as promoter usage (I.4, I.3, PII and I.7) in axillary adipose tissue (AA), mammary adipose tissue (MA), breast tumor tissue (BT) and adjacent normal breast tissue (NB), and to study the relationship between aromatase mRNA expression and tumor necrosis factor (TNF)-alpha, interleukin (IL)-6 and cyclooxygenase (COX)-2 mRNA expression. BT (n=108), NB (n=54), AA (n=41) and MA (n=34) from patients with breast cancer were subjected to real-time PCR assays for the mRNA levels of aromatase, TNF-alpha, IL-6 and COX-2. We also studied the usage of promoters I.4, I.3, PII and the recently reported endothelial promoter I.7. Total aromatase mRNA levels were significantly up-regulated in BT as compared with NB, AA and MA. Proportion of promoter l.4-specific transcripts against the total transcripts was significantly decreased and that of promoter l.3- and l.7-specific transcripts was significantly increased in BT than NB, AA and MA. However, the amount of transcripts from all the 4 promoters was significantly up-regulated in BT than NB, AA and MA. Estrogen receptor-alpha (ER-alpha) positive tumors showed a higher percentage of promoter I.7 usage than ER-alpha negative tumors with a marginal significance (p=0.05), and tumor with high microvessel counts tended (p=0.06) to show a higher percentage of promoter I.7 usage than those with low microvessel counts. There was a significant association between aromatase mRNA levels and TNF-alpha, IL-6 or COX-2 mRNA levels in BT, AA and MA but not in NB. These results suggest that enhanced transcription of promoters l.4, I.3, PII and I.7 explains the up-regulation of aromatase mRNA levels in BT. It has also been suggested that angiogenesis might stimulate the growth of ER-alpha positive tumors through the enhanced transcription of aromatase from promoter I.7 in endothelial cells in BT, and that TNF-alpha, IL-6 and COX-2 might be implicated in the up-regulation of aromatase mRNA in BT, AA and MA but not in NB.

Adipose Tissue↗