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Bioengineering education, 1986-Part II.

This paper presents an overview of the biomedical engineering programs located in the states of Arkansas, Kansas, Missouri, Oklahoma, and Texas. Two-year, four-year, and graduate programs are described, including contact information, course requirements, and prerequisites. As Part II of the Journal's continuing series on education, the intent of the paper is not to evaluate each program, but to illustrate the breadth of biomedical and related engineering education programs available today and to serve as a useful reference to such programs.

Biomedical Engineering↗

Tissue cardiomyoplasty using bioengineered contractile cardiomyocyte sheets to repair damaged myocardium: their integration with recipient myocardium.

BACKGROUND: We hypothesized that tissue-engineered contractile cardiomyocyte sheets without a scaffold would show histological and electrical integration with impaired myocardium, leading to the regeneration of infarcted myocardium. METHODS: Neonatal rat cardiomyocytes were cultured on Poly(N-isopropylacrylamide)-grafted polystyrene dishes and detached as a square cell sheet at 20 degrees C. Two sheets were stacked to make thicker contractile cardiac sheets. In cross-section, the stacked sheets looked like homogeneous heart-like tissue. Two weeks after rats were subjected to left anterior descending (LAD) ligation, two treatments were conducted: 1) cardiomyocyte sheet implantation (T group, n=10), and 2) fibroblast sheet implantation (F group, n=10). The control group underwent no additional treatment (C group, n=10). RESULTS: Echocardiography demonstrated that cardiac performance was significantly ameliorated in the T group 2, 4, and 8 weeks after implantation. The cardiomyocyte sheets became attached to the infarcted myocardium, showed angiogenesis, expressed connexin-43, and appeared as homogeneous tissue in the myocardium Electrophysiological experiments showed a QRS complex with one peak in the treated scar area in the T group, but two peaks, indicative of branch block, in that of the other groups. Furthermore, the threshold for pacing of the recipient heart was lower in the T group than in the other groups. CONCLUSIONS: Cardiomyocyte sheets integrated with the impaired myocardium and improved cardiac performance in a model of ischemic myocardium. Techniques using such tissue-engineered cell sheets are introducing the promising concept of tissue cardiomyoplasty to the field of regenerative medicine.

Animals↗

A novel strategy for corneal endothelial reconstruction with a bioengineered cell sheet.

Cellular organization of foreign grafts constructed from cultivated cells is critical to successful graft-host integration and tissue repair. This study described a novel human corneal endothelial cell (HCEC) therapeutic method, where cultivated adult HCEC sheet with uniform orientation was prepared and transplanted to a rabbit cornea. Having a correct morphology and intact barriers, the HCEC sheet was made by the temperature-modulated detachment of monolayered HCECs from thermoresponsive poly(N-isopropylacrylamide) (PNIPAAm)-grafted surfaces and was delivered with proper polarity to the corneal posterior surface by a bioadhesive gelatin disc. Results of the in vivo studies, including the follow-up clinical observations and histological examinations, showed the laminated HCEC sheet was successfully integrated into rabbit cornea denuded with endothelial layer after the biodegradation of gelatin carrier. These data indicate the feasibility of the proposed procedure in cell therapy for corneal endothelial cell loss.

Acrylamides↗

Sodium lauryl sulphate for irritant patch testing--a dose-response study using bioengineering methods for determination of skin irritation.

The dose-response relationship in patch testing with sodium lauryl sulphate (SLS) was studied. The irritant skin response was quantified by visual scoring as well as by the following noninvasive methods: measurement of transepidermal water loss (TEWL) by an evaporimeter, measurement of skin color by a colorimeter, measurement of superficial blood flow by laser Doppler flowmetry, and measurement of edema in the skin by ultrasound A-scan. Twelve volunteers were patch tested with 0.12, 0.25, 0.50, and 1.00% SLS, and the skin response was evaluated after 24 and 48 h, respectively. We found a statistically significant linear dose-response relationship between dose of SLS and skin response evaluated by measurement of TEWL, skin color, superficial blood flow, and edema. Statistical evaluation by regression analysis proved measurement of TEWL to be the method best suited overall for quantification in relation to patch testing with SLS, whereas colorimetry was found to be the least sensitive of the applied methods. Ultrasound A-scan was found to be a promising method for quantification of the inflammatory response, being consistently more sensitive than measurement of skin color.

Adult↗

The quality of human skin xenografts on SCID mice: a noninvasive bioengineering approach.

BACKGROUND: Animal models are important tools for studies in skin physiology and pathophysiology. Due to substantial differences in skin characteristics such as thickness and number of adnexa, the results of animal studies cannot always be directly transferred to the human situation. Therefore, transplantation of human skin on to SCID (severe combined immunodeficiency) mice might offer a promising tool to perform studies in viable human skin without the direct need for human volunteers. OBJECTIVES: To characterize the physiological and anatomical changes of a human skin transplant on a SCID animal host. METHODS: In this study human skin was transplanted on to 32 SCID mice and followed for 6 months. Barrier function was assessed by transepidermal water loss (TEWL; tewametry) and moisture content of the stratum corneum was studied by measurement of electrical capacitance (corneometry). RESULTS: The results showed considerable deviations of TEWL values and skin hydration between the grafts and human skin in vivo. The human skin showed epidermal hyperkeratosis and moderate sclerosis of the corium 4 and 6 months after transplantation on to SCID mice. CONCLUSIONS: Our results indicate that human skin does not completely preserve its physiological and morphological properties after transplantation on to SCID mice. Therefore, results from experiments using this model system need to be discussed cautiously.

Animals↗

Individual and instrumental variations in irritant patch-test reactions--clinical evaluation and quantification by bioengineering methods.

A major purpose of irritant patch testing is to differentiate between normal, delicate and less sensitive skin. To assess the usefulness of irritant patch testing, knowledge of variation in responses to identical patch tests is essential. In the present study inter- and intra-individual variation in irritant patch test reactions due to sodium lauryl sulphate and nonanoic acid is given when evaluated by traditional visual scoring as well as different non-invasive methods, i.e. measurement of transepidermal water loss, the hydration state of stratum corneum by electrical conductance, cutaneous blood flow by laser Doppler flowmetry, and measurement of skin thickness by 20-MHz ultrasound A-scan. The intra-individual 'site-to-site' variation was considerably less than the inter-individual variation, which is essential to differentiate between persons with delicate and less sensitive skin. Methods used were relevant for this purpose except for the measurement of electrical conductance.

Adult↗

Bioengineered nerve regeneration and muscle reinnervation.

The peripheral nervous system has the intrinsic capacity to regenerate but the reinnervation of muscles is often suboptimal and results in limited recovery of function. Injuries to nerves that innervate complex organs such as the larynx are particularly difficult to treat. The many functions of the larynx have evolved through the intricate neural regulation of highly specialized laryngeal muscles. In this review, we examine the responses of nerves and muscles to injury, focusing on changes in the expression of neurotrophic factors, and highlight differences between the skeletal limb and laryngeal muscle systems. We also describe how artificial nerve conduits have become a useful tool for delivery of neurotrophic factors as therapeutic agents to promote peripheral nerve repair and might eventually be useful in the treatment of laryngeal nerve injury.

Axons↗