Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Replacing murine insulin 1 with human insulin protects NOD mice from diabetes

View through CrossRef
Abstract Type 1, or autoimmune, diabetes is caused by the T-cell mediated destruction of the insulin-producing pancreatic beta cells. Non-obese diabetic (NOD) mice spontaneously develop autoimmune diabetes akin to human type 1 diabetes. For this reason, the NOD mouse has been the preeminent murine model for human type 1 diabetes research for several decades. However, humanized mouse models are highly sought after because they offer both the experimental tractability of a mouse model and the clinical relevance of human-based research. Autoimmune T-cell responses against insulin, and its precursor proinsulin, play central roles in the autoimmune responses against pancreatic beta cells in both humans and NOD mice. As a first step towards developing a murine model of the human autoimmune response against pancreatic beta cells we set out to replace the murine insulin 1 gene ( Ins1 ) with the human insulin gene ( INS ) using CRISPR/Cas9. Here we describe a NOD mouse strain that expresses human insulin in place of murine insulin 1, referred to as HuPI. HuPI mice express human insulin, and C-peptide, in their serum and pancreata and have normal glucose tolerance. Compared with wild type NOD mice, the incidence of diabetes is much lower in HuPI mice. Only 15-20% of HuPI mice developed diabetes after 300 days, compared to more than 60% of unmodified NOD mice. Immune-cell infiltration into the pancreatic islets of HuPI mice was not detectable at 100 days but was clearly evident by 300 days. This work highlights the feasibility of using CRISPR/Cas9 to create mouse models of human diseases that express proteins pivotal to the human disease. Furthermore, it reveals that even subtle changes in proinsulin protect NOD mice from diabetes.
Title: Replacing murine insulin 1 with human insulin protects NOD mice from diabetes
Description:
Abstract Type 1, or autoimmune, diabetes is caused by the T-cell mediated destruction of the insulin-producing pancreatic beta cells.
Non-obese diabetic (NOD) mice spontaneously develop autoimmune diabetes akin to human type 1 diabetes.
For this reason, the NOD mouse has been the preeminent murine model for human type 1 diabetes research for several decades.
However, humanized mouse models are highly sought after because they offer both the experimental tractability of a mouse model and the clinical relevance of human-based research.
Autoimmune T-cell responses against insulin, and its precursor proinsulin, play central roles in the autoimmune responses against pancreatic beta cells in both humans and NOD mice.
As a first step towards developing a murine model of the human autoimmune response against pancreatic beta cells we set out to replace the murine insulin 1 gene ( Ins1 ) with the human insulin gene ( INS ) using CRISPR/Cas9.
Here we describe a NOD mouse strain that expresses human insulin in place of murine insulin 1, referred to as HuPI.
HuPI mice express human insulin, and C-peptide, in their serum and pancreata and have normal glucose tolerance.
Compared with wild type NOD mice, the incidence of diabetes is much lower in HuPI mice.
Only 15-20% of HuPI mice developed diabetes after 300 days, compared to more than 60% of unmodified NOD mice.
Immune-cell infiltration into the pancreatic islets of HuPI mice was not detectable at 100 days but was clearly evident by 300 days.
This work highlights the feasibility of using CRISPR/Cas9 to create mouse models of human diseases that express proteins pivotal to the human disease.
Furthermore, it reveals that even subtle changes in proinsulin protect NOD mice from diabetes.

Related Results

WDFY4 deficiency in NOD mice abrogates autoimmune diabetes and insulitis
WDFY4 deficiency in NOD mice abrogates autoimmune diabetes and insulitis
Abstract The events that initiate autoimmune diabetes in NOD mice remain poorly understood. CD4 and CD8 T cells are both required but whether eit...
Diabetes Mellitus: Life Style, Obesity and Insulin Resistance
Diabetes Mellitus: Life Style, Obesity and Insulin Resistance
In millennia, 40 million people were died with non-communicable diseases and diabetes is one of them. In diabetes, insulin secretions are not produced properly or resist to body an...
Insulin Lispro: Its Role in the Treatment of Diabetes Mellitus
Insulin Lispro: Its Role in the Treatment of Diabetes Mellitus
OBJECTIVE: To introduce a rapid-acting human insulin analog, insulin lispro; to review its pharmacology, therapeutics, pharmacokinetics, dosing guidelines, adve...
(Invited) A Protein-Based Artificial Receptor for Insulin Sensing
(Invited) A Protein-Based Artificial Receptor for Insulin Sensing
Insulin is one of the most important hormones that controls the glucose level in blood. Therefore, the investigation of insulin is very important for the diabetic research. There h...
Altered Thymic and Peripheral T-Lymphocyte Repertoire Preceding Onset of Diabetes in NOD Mice
Altered Thymic and Peripheral T-Lymphocyte Repertoire Preceding Onset of Diabetes in NOD Mice
Insulitis occurs by 5 wk of age in all NOD mice. However, diabetes is detectable only after 3–5 mo of age and only in ∼50% of females and 10% of males in our colony. Therefore, it ...
Supplementary Data from Targeted BiTE Expression by an Oncolytic Vector Augments Therapeutic Efficacy Against Solid Tumors
Supplementary Data from Targeted BiTE Expression by an Oncolytic Vector Augments Therapeutic Efficacy Against Solid Tumors
<p>Supplementary Methods, Supplementary Figures S1-S15 Fig. S1. Purification and binding specificity of MV-encoded BiTEs. (A) Purification of MV-expressed BiTEs. Vero cells w...
Multiple Germline κ Light Chains Generate Anti-Insulin B Cells in Nonobese Diabetic Mice
Multiple Germline κ Light Chains Generate Anti-Insulin B Cells in Nonobese Diabetic Mice
Abstract The highly selective nature of organ-specific autoimmune disease is consistent with a critical role for adaptive immune responses against specific autoan...

Back to Top