Red blood cells serve as intravascular carriers of myeloperoxidase

Matti Adam1, Silvie Gajdova2, Hana Kolarova2

  • 1Stanford University, Division of Cardiovascular Medicine, Stanford, CA, USA; Stanford Cardiovascular Institute, Stanford, CA, USA.

Insights

Myeloperoxidase (MPO) binds to red blood cells (RBCs), which then transport this enzyme throughout the body. This binding affects nitric oxide levels and vascular resistance, suggesting RBCs act as MPO carriers.

Area of Science:

  • Biochemistry
  • Hematology
  • Immunology

Background:

  • Myeloperoxidase (MPO) is a neutrophil enzyme generating reactive oxygen species (ROS) and consuming nitric oxide (NO).
  • MPO's cationic nature facilitates binding to cell membranes, including endothelial and leukocyte membranes.
  • The anionic surface of red blood cells (RBCs) prompted investigation into MPO-RBC interactions.

Purpose of the Study:

  • To investigate the binding of myeloperoxidase (MPO) to erythrocytes (red blood cells).
  • To determine if RBCs can transport MPO in vivo and affect vascular function.

Main Methods:

  • Flow cytometry and ELISA to quantify MPO binding to RBCs from patients and controls.
  • Ex vivo experiments assessing MPO-RBC binding kinetics and localization via immunofluorescence and confocal microscopy.
  • In vivo studies in mice infusing MPO-loaded RBCs, measuring tissue MPO levels, NO-dependent vasodilation, and systemic vascular resistance.

Main Results:

  • RBCs from patients with high MPO levels showed increased MPO binding compared to healthy controls.
  • MPO binding to RBCs was dose- and time-dependent, localized to the erythrocyte membrane, and retained enzymatic activity.
  • In vivo, MPO-loaded RBCs increased MPO tissue concentrations, altered aortic ring relaxation, and elevated systemic vascular resistance in mice.

Conclusions:

  • Myeloperoxidase avidly binds to red blood cell membranes both in vitro and in vivo.
  • Red blood cells serve as carriers for MPO, transporting it to various tissues and affecting endothelial function and vascular resistance.
  • RBCs may play a significant role in the systemic distribution and biological activity of MPO.

Related Concept Videos

Hemoglobin01:24

Hemoglobin

Hemoglobin is a globular protein made up of four subunits. Two of these subunits are alpha chains, and the other two are beta chains. Each subunit contains a molecule of heme, which has an iron atom and can bind to oxygen. When an oxygen molecule binds to one heme group, it changes the shape of hemoglobin, making it easier for the other heme groups to bind oxygen as well.
When all four heme groups are bound to oxygen, the resulting molecule is called oxyhemoglobin. As a result, arterial blood...
8.6K
Lifecycle of Erythrocytes01:22

Lifecycle of Erythrocytes

Erythrocytes, also known as red blood cells, constantly move through blood capillaries. As a result, they damage their plasma membrane due to the continuous friction. Typically, after 100 to 120 days, erythrocytes become rigid and fragile as they wear out. As they pass through small vessels in the spleen and liver, they can get trapped and break apart into fragments.
The resident phagocytic macrophages deal with these damaged cells by engulfing them and separating their globin and heme groups....
5.6K
Oxygen Transport in the Blood01:27

Oxygen Transport in the Blood

Hemoglobin (Hb) is a crucial molecule in the human body, consisting of four polypeptide chains, each bound to an iron-containing heme group. This unique structure enables hemoglobin to bind to oxygen, with each molecule capable of combining with four molecules of oxygen, leading to rapid and reversible oxygen loading. When fully loaded with oxygen, it is called oxyhemoglobin, while hemoglobin that has released oxygen is called reduced hemoglobin or deoxyhemoglobin. As hemoglobin binds oxygen,...
7.6K
Structure and Function of Erythrocytes01:29

Structure and Function of Erythrocytes

There are between 4.2 and 6 million erythrocytes, also known as red blood cells, in every microliter of blood. These cells are small, flattened biconcave discs with centers that are depressed.
The erythrocyte plasma membrane is associated with proteins such as spectrin, which forms a flexible cytoplasmic meshwork. This meshwork allows erythrocytes to twist, turn, become cup-shaped, and regain their biconcave shape as they pass through narrow capillaries. Additionally, erythrocytes can form...
9.2K
Carbon Dioxide Transport in the Blood01:19

Carbon Dioxide Transport in the Blood

Carbon dioxide (CO2) transport in the blood is critical to human physiology. On average, our body cells produce around 200 mL of CO2 per minute, precisely the quantity expelled by the lungs. This process involves the transportation of CO2 from the tissue cells to the lungs in three primary forms.
Forms of CO2 Transport
1. Dissolved in plasma: A small percentage (7-10%) of CO2 is transported and dissolved directly in the plasma.
2. Carbaminohemoglobin: Just over 20% of CO2 is chemically bound to...
6.8K
Veins as Blood Reservoirs01:10

Veins as Blood Reservoirs

Veins, while chiefly responsible for circulating blood back to the heart, also function as storage vessels for blood. They house approximately 64 percent of the body's total blood volume, a feat made possible by their high capacitance—the inherent ability to expand and accommodate large volumes of blood, even under low pressure. The large diameter and thin walls of veins augment their distensibility, significantly more so than arteries, due to their classification as capacitance...
7.8K