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Diabetes Mellitus: Type 2 and Gestational01:22

Diabetes Mellitus: Type 2 and Gestational

Type 2 diabetes, characterized by insulin resistance, arises when the insulin receptors on cells lose responsiveness to insulin, diminishing the cell's capacity to take up glucose, resulting in elevated blood glucose levels. To receive a diagnosis of Type 2 diabetes, a series of blood glucose tests are necessary to assess whether the blood glucose falls within normal parameters. If the result is out of the normal range, a patient may be diagnosed as prediabetic or diabetic, depending on the...
Pathophysiology of Diabetes01:20

Pathophysiology of Diabetes

Diabetes mellitus is a chronic metabolic disorder characterized by hyperglycemia. The four categories of diabetes are type 1 diabetes, type 2 diabetes, other specific types of diabetes, and gestational diabetes.
Type 1 diabetes is characterized by autoimmune-mediated destruction of pancreatic β cells, with environmental factors potentially triggering this process in genetically susceptible individuals. Despite many not having a family history, certain genes increase susceptibility, suggesting a...
Type I Diabetes II: Pathophysiology01:26

Type I Diabetes II: Pathophysiology

Type 1 diabetes mellitus arises from an immune-mediated destruction of pancreatic β-cells, resulting in an absolute deficiency of insulin. This process develops in genetically susceptible individuals when autoimmunity, environmental exposures, and immunologic dysregulation converge to trigger a targeted attack on the insulin-producing cells of the pancreas. The β-cells are located within the islets of Langerhans and are essential for regulating blood glucose by facilitating cellular uptake of...
Diabetes Mellitus: Overview and Type I Subtype01:22

Diabetes Mellitus: Overview and Type I Subtype

Diabetes mellitus is a chronic metabolic disorder characterized by high blood glucose levels due to inadequate insulin production, insulin resistance, or both. The condition affects millions worldwide and can significantly impact their health and quality of life.
Type 1 diabetes is an autoimmune disease in which the immune system mistakenly attacks and destroys the insulin-producing beta cells in the pancreas. As a result, the body is unable to produce sufficient insulin, and individuals with...
Type I Diabetes III: Clinical Manifestations01:19

Type I Diabetes III: Clinical Manifestations

Type 1 diabetes mellitus typically presents with rapid-onset symptoms due to the body’s inability to utilize glucose in the absence of insulin. Since insulin is required for glucose uptake into cells, its deficiency leads to hyperglycemia and cellular energy deprivation, resulting in characteristic clinical features.Polyuria and PolydipsiaOne of the earliest, most prominent symptoms is polyuria (excessive urination). When blood glucose concentrations rise above the renal threshold, the kidneys...
Type I Diabetes I: Introduction01:12

Type I Diabetes I: Introduction

Type 1 diabetes mellitus is a chronic metabolic disorder characterized by an absolute deficiency of insulin resulting from the autoimmune destruction of pancreatic β-cells. Although it can occur at any age, it is most commonly diagnosed in childhood, adolescence, or early adulthood. The loss of insulin production impairs cellular glucose uptake, resulting in persistent hyperglycemia and necessitating lifelong insulin therapy.Autoimmune Destruction of β-CellsThe hallmark of type 1 diabetes is an...

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Related Experiment Video

Updated: Jul 15, 2026

Fetal Echocardiography and Pulsed-wave Doppler Ultrasound in a Rabbit Model of Intrauterine Growth Restriction
14:19

Fetal Echocardiography and Pulsed-wave Doppler Ultrasound in a Rabbit Model of Intrauterine Growth Restriction

Published on: June 29, 2013

Experimental IUGR and later diabetes.

M S Martin-Gronert1, S E Ozanne

  • 1Department of Clinical Biochemistry, Addenbrooke's Hospital, University of Cambridge, Cambridge, UK.

Journal of Internal Medicine
|April 21, 2007
PubMed
Summary

Maternal nutrition impacts fetal growth, potentially leading to intrauterine growth restriction (IUGR). IUGR is linked to later type 2 diabetes development, with specific molecular changes in key organs.

Area of Science:

  • Reproductive biology and metabolic disease research.
  • Investigating developmental origins of chronic diseases.

Background:

  • A strong association exists between the intrauterine environment and type 2 diabetes risk.
  • Maternal nutrient and oxygen supply disruptions can cause fetal intrauterine growth restriction (IUGR).

Purpose of the Study:

  • To review rodent models of IUGR.
  • To explore the molecular mechanisms linking IUGR to type 2 diabetes.
  • To identify molecular derangements in metabolically sensitive tissues.

Main Methods:

  • Review of studies involving experimentally manipulated maternal metabolism in rodent models.
  • Analysis of molecular changes associated with IUGR.
  • Focus on metabolically sensitive organs and tissues.

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Monitoring Blood Glucose in Mouse Offspring After Intracytoplasmic Sperm Injection

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Last Updated: Jul 15, 2026

Fetal Echocardiography and Pulsed-wave Doppler Ultrasound in a Rabbit Model of Intrauterine Growth Restriction
14:19

Fetal Echocardiography and Pulsed-wave Doppler Ultrasound in a Rabbit Model of Intrauterine Growth Restriction

Published on: June 29, 2013

A Rat Model of Mild Intrauterine Hypoperfusion with Microcoil Stenosis
06:19

A Rat Model of Mild Intrauterine Hypoperfusion with Microcoil Stenosis

Published on: January 7, 2018

Monitoring Blood Glucose in Mouse Offspring After Intracytoplasmic Sperm Injection
06:11

Monitoring Blood Glucose in Mouse Offspring After Intracytoplasmic Sperm Injection

Published on: May 17, 2024

Main Results:

  • Rodent models demonstrate a link between IUGR and type 2 diabetes.
  • Specific molecular derangements in key organs are identified.
  • Maternal metabolic manipulation provides insights into disease etiology.

Conclusions:

  • IUGR is a significant risk factor for developing type 2 diabetes later in life.
  • Understanding molecular pathways in IUGR is crucial for diabetes prevention.
  • Rodent models are valuable for studying the developmental origins of type 2 diabetes.