Course of islet autoantibody titers during Ig-immunoadsorption in a patient with newly diagnosed type 1 diabetes

D K Seidel1, H C Geiss, M G Donner

  • 1Diabetes Research Institute, Krankenhaus München-Schwabing, Germany.

The purpose of this study was to determine whether and to what extent diabetes-specific autoantibodies can be removed from the plasma by Ig-immunoadsorption therapy. We followed the course of islet cell antibodies (ICA), insulin antibodies (I[A]A), glutamic acid decarboxylase antibodies (GADA) and antibodies to the protein tyrosine phosphatase IA-2 (IA2A) in a patient with newly diagnosed insulin-dependent diabetes mellitus (IDDM) under multiple immunoadsorption treatments over 6 months. Autoantibodies were not removed from the plasma as efficiently as expected when compared to the removal of total immunoglobulin (IgG). Whereas IgG levels were lowered by 70-90% through each immunoadsorption treatment, antibodies to insulin were reduced by an average of 83%, IA2A by 36% and GADA by only 9% directly after treatment. ICA were > 320 JDF U at diabetes onset and remained above this level. During the 6 months of multiple immunoadsorption therapies, I[A]A levels showed a 24-fold increase due to stimulation of insulin antibody production by exogenous insulin substitution, IA2A levels remained unchanged (average 6% increase), and GADA levels were reduced by an average of 39% compared to antibody titers at onset. All four antibodies were highly positive in the eluate from the immunoadsorption columns. We showed that antibodies to pancreatic islet cells can be reduced by immunoadsorption, but as for plasmapheresis the effect is incomplete and transient for most of the antibodies. If there is clinical benefit through immunoadsorption therapy--as has been shown for newly diagnosed IDDM patients treated with plasmapheresis--our data suggest that this may be due to factors other than the sufficient removal of antibodies.

Related Concept Videos

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...
Insulin: Dosing Regimen and Adverse Effects01:16

Insulin: Dosing Regimen and Adverse Effects

Insulin-replacement therapy usually includes both long-acting insulin (basal) and short-acting insulin (to cater to postprandial needs). In a diverse group of type 1 diabetes patients, the average daily insulin dose is typically 0.5-0.7 units/kg body weight. However, obese patients and pubertal adolescents may need more due to insulin resistance.
The basal dose constitutes about 40%-50% of the total daily dose, with the rest as premeal insulin. The mealtime insulin dose should mirror...
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...
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...
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 II Diabetes I: Introduction01:26

Type II Diabetes I: Introduction

Type 2 diabetes mellitus (T2DM) is a chronic metabolic disorder characterized by insulin resistance, in which target tissues such as the liver, muscle, and adipose tissue respond poorly to insulin. It is also associated with inadequate compensatory insulin secretion, where pancreatic β-cells fail to produce sufficient insulin. Together, these abnormalities lead to persistent hyperglycemia.EtiologyT2DM develops through a complex interaction of genetic predisposition and environmental or...