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1.
Dis Esophagus ; 16(2): 60-5, 2003.
Article in English | MEDLINE | ID: mdl-12823198

ABSTRACT

Definitive chemoradiation (without esophagectomy) and neoadjuvant chemoradiation followed by planned esophagectomy are commonly used treatments for locally advanced esophageal cancer. These two treatment strategies have similar survival outcomes, so the value of planned esophagectomy is debated. However, persistence or recurrence of local disease is not uncommon after definitive chemoradiation. Salvage esophagectomy for isolated local failures of definitive chemoradiation is an option for selected patients. In this article we review the debate over definitive chemoradiation versus neoadjuvant chemoradiation and surgery, and then restate the argument in terms of salvage versus planned esophagectomy. Although both forms of esophagectomy are done in the setting of previous chemoradiation, they are different in several ways. Salvage esophagectomy appears to be a more morbid operation than planned esophagectomy. Surgeons supportive of the salvage esophagectomy strategy face the challenge of reducing its postoperative mortality.


Subject(s)
Esophageal Neoplasms , Combined Modality Therapy , Esophageal Neoplasms/drug therapy , Esophageal Neoplasms/mortality , Esophageal Neoplasms/radiotherapy , Esophageal Neoplasms/surgery , Esophagectomy , Humans , Neoplasm Recurrence, Local , Randomized Controlled Trials as Topic , Salvage Therapy
2.
Tissue Eng ; 7(6): 805-15, 2001 Dec.
Article in English | MEDLINE | ID: mdl-11749736

ABSTRACT

The purpose of this study was to determine if chondrocytes cultured through several subcultures at very low plating density would produce new cartilage matrix after being reimplanted in vivo with or without a hydrogel polymer scaffold. Chondrocytes were initially plated in low-density monolayer culture, grown to confluence, and passaged four times. After each passage cells were suspended in purified porcine fibrinogen and injected into the subcutaneous space of nude mice while simultaneously polymerizing with thrombin to reach a final concentration of 40 million cells/cc. Controls were made by injecting fresh, uncultured cells with fibrin polymer and by injecting the cultured cells in saline (without polymer). All samples were harvested at 6 weeks. When injected in polymer, both fresh cells and cells that had undergone only one passage in culture produced cartilaginous nodules. Cultured cells did not produce cartilage, regardless of length of time spent in culture, when injected without polymer. Cartilage was also not recovered from samples with cells kept in culture for longer than one passage, even when provided with a polymer matrix. All samples harvested were subjected to histological analysis and assayed for total DNA, glycosaminoglycan (GAG), and type II collagen. There was histological evidence of cartilage in the groups that used fresh cells and cultured cells suspended in fibrin polymer that only underwent one passage. No other group contained areas that would be consistent with cartilage histologically. All experimental samples had a higher percent of DNA than native swine cartilage, and there was no statistical difference between the DNA content of the groups containing cultured or fresh cells in fibrin polymer. Whereas the GAG content of native cartilage was 8.39% of dry weight and fresh cells in fibrin polymer was 12.85%, cultured cells in fibrin polymer never exceded the 2.48% noted from first passage cells. In conclusion, this study demonstrates that porcine chondrocytes that have been cultured in monolayer for one passage will produce cartilage in vivo when suspended in fibrin polymer.


Subject(s)
Biocompatible Materials , Cartilage/cytology , Chondrocytes/cytology , Hydrogel, Polyethylene Glycol Dimethacrylate , Tissue Engineering , Animals , Cell Culture Techniques/methods , Chondrocytes/transplantation , Mice , Prosthesis Design , Swine , Tissue Transplantation
3.
Plast Reconstr Surg ; 108(2): 392-402, 2001 Aug.
Article in English | MEDLINE | ID: mdl-11496181

ABSTRACT

This study determined the effects of chondrocyte source, cell concentration, and growth period on cartilage production when isolated porcine cells are injected subcutaneously in a nude mouse model. Chondrocytes were isolated from both ear and articular cartilage and were suspended in Ham's F-12 medium at concentrations of 10, 20, 40, and 80 million cells per cubic centimeter. Using the nude mouse model, each concentration group was injected subcutaneously in 100-microl aliquots and was allowed to incubate for 6 weeks in vivo. In addition, cells suspended at a fixed concentration of 40 million cells per cubic centimeter were injected in 100-microl aliquots and were incubated for 1, 2, 3, 4, 5, 6, 9, and 12 weeks. Each concentration or time period studied contained a total of eight mice, with four samples harvested per mouse for a final sample size of 32 constructs. All neocartilage samples were analyzed by histologic characteristics, mass, glycosaminoglycan level, and DNA content. Control groups consisted of native porcine ear and articular cartilage. Specimen mass increased with increasing concentration and incubation time. Ear neocartilage was larger than articular neocartilage at each concentration and time period. At 40 million cells per cubic centimeter, both ear and articular chondrocytes produced optimal neocartilage, without limitations in growth. Specimen mass increased with incubation time up to 6 weeks in both ear and articular samples. No significant variations in glycosaminoglycan content were found in either articular or ear neocartilage, with respect to variable chondrocyte concentration or growth period. Although articular samples demonstrated no significant trends in DNA content over time, ear specimens showed decreasing values through 6 weeks, inversely proportional to increase in specimen mass. Although both articular and ear sources of chondrocytes have been used in past tissue-engineering studies with success, this study indicates that a suspension of ear chondrocytes injected into a subcutaneous location will produce biochemical and histologic data with greater similarity to those of native cartilage. The authors believe that this phenomenon is attributable to the local environment in which isolated chondrocytes from different sources are introduced. The subcutaneous environment of native ear cartilage accommodates subcutaneously injected ear chondrocyte transplants better than articular transplants. Native structural and biochemical cues within the local environment are believed to guide the proliferation of the differentiated chondrocytes.


Subject(s)
Cartilage, Articular/cytology , Chondrocytes/cytology , Chondrocytes/transplantation , Ear Cartilage/cytology , Animals , Biomedical Engineering , Cartilage, Articular/metabolism , Cartilage, Articular/transplantation , Cell Count , Cell Division , Chondrocytes/metabolism , DNA/metabolism , Ear Cartilage/metabolism , Ear Cartilage/transplantation , Glycosaminoglycans/metabolism , Injections, Subcutaneous , Male , Mice , Mice, Nude , Swine , Time Factors
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