Diabetes Therapy

Diabetes therapy comprises medical and lifestyle interventions that control blood glucose and reduce complications in people with diabetes. Treatment works by matching glucose regulation to the underlying biology: insulin replacement or drugs that increase insulin availability, improve insulin sensitivity, slow intestinal glucose absorption, or promote urinary glucose excretion can lower circulating glucose, while nutrition and physical activity alter glucose uptake and energy use. In biology and clinical research, these approaches support the study of pancreatic beta-cell function, metabolism, and disease progression, with outcomes assessed through glycated hemoglobin, glucose variability, and organ health.

Diabetes Therapy - Related Videos

Research

JoVE Journal - Biology

Regulatory T cells: Therapeutic Potential for Treating Transplant Rejection and Type I Diabetes

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Cited by 2 •

2007

Transplantation of Pancreatic Islets Into the Kidney Capsule of Diabetic Mice

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Cited by 98 •

2007

Our protocol was developed to cleanly and easily deliver islets or cells under the kidney capsule of mice. Cells are concentrated into pellets in the final tubing used for transplanting the cells under the kidney capsule. The ease of this technique reduces stress to the cells and the mouse.

Adenoviral Gene Therapy for Diabetic Keratopathy: Effects on Wound Healing and Stem Cell Marker Expression in Human Organ-cultured Corneas and Limbal Epithelial Cells

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Cited by 27 •

2016

An example of adenoviral gene therapy in the human diabetic organ-cultured corneas is presented towards the normalization of delayed wound healing and markedly reduced epithelial stem cell marker expression in these corneas. It also describes the optimization of this process in stem cell-enriched limbal epithelial cultures.

Research

JoVE Journal - Medicine
Free Sample

Neo-Islet Formation in Liver of Diabetic Mice by Helper-dependent Adenoviral Vector-Mediated Gene Transfer

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Cited by 5 •

2012

We describe hepatic neo-islet formation in STZ (streptozotocin)-induced diabetic mice by gene transfer of Neurogenin3 (Ngn3) and Betacellulin (Btc) using helper-dependent adenoviral vector (HDAd) and the reversal of hyperglycemia. Our method takes advantages of helper-dependent adenoviral vectors with their highly efficient in vivo transduction and the long lasting gene expression.

A Zebrafish Model of Diabetes Mellitus and Metabolic Memory

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Cited by 69 •

2013

Metabolic memory is the phenomenon by which diabetic complications persist and progress unimpeded even after euglycemia is achieved pharmaceutically. Here we describe a diabetes mellitus zebrafish model which is unique in that it allows for the examination of the mitotically transmissible epigenetic components of metabolic memory in vivo.

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