Heme and CO metabolism by the canonical human heme oxygenases

Angela S Fleischhacker1, Juan Blume-La-Torre1, Kierra Pendill1

  • 1Department of Biological Chemistry, University of Michigan Medical School, Ann Arbor, MI 48109-0606, USA.

PubMed

Heme is an essential biomolecule and cofactor that participates in many different biological processes by binding to a diverse group of proteins to affect structure, function, and regulation. Yet, heme becomes toxic to human cells when its levels are elevated. As will be the focus of this review, the major route of heme detoxification in humans is through the heme degradation pathway involving heme oxygenase (HO). Humans, as well as other amniotes, express two isoforms of HO, HO1 and HO2, and understanding the role each isoform plays in regulating heme homeostasis is of great interest. Recently, a role for HO2 in sequestering, rather than degrading, heme has been uncovered. Here, we highlight this role of HO2 and place it in context of how, when, and why heme degradation proceeds, including the regulation of HO activity by the other necessary components of the reaction: oxygen and electrons from NAPDH via cytochrome P450 reductase. In addition, we review the significant roles the products of heme degradation (biliverdin, iron, and carbon monoxide) play in human health. Therefore, HO has many spheres of influence centered around substrates and products of the reaction, signifying the wide-reaching effects of heme degradation and sequestration.

Related Concept Videos

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,...
6.0K
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...
7.4K
Drug Metabolism: Phase I Reactions01:17

Drug Metabolism: Phase I Reactions

A phase I reaction is a biochemical process that introduces a functionally reactive polar group to a substance. This transformation predominantly occurs in the liver, facilitated by the cytochrome P450 system of hemoproteins situated in the lipophilic endoplasmic reticulum of cells. The metabolite generated through this process can have varying polarities. If it is sufficiently polar, it can be easily excreted in the urine due to its water compatibility. However, if the metabolite is nonpolar,...
4.6K
Cofactors and Coenzymes01:24

Cofactors and Coenzymes

Enzymes are proteins made of amino acids. The functional group of each constituent amino acid catalyzes a wide variety of chemical reactions via ionic interactions or acid-base reactions. However, amino acids cannot catalyze oxidation-reduction and group transfer reactions and need to be aided by non-protein components called cofactors. Cofactors are also referred to as the chemical teeth of an enzyme.
Cofactors can be metallic ions or organic molecules called coenzymes. These types of helper...
12.6K
Cofactors and Coenzymes01:27

Cofactors and Coenzymes

Enzymes require additional components for proper function. There are two such classes of molecules: cofactors and coenzymes. Cofactors are metallic ions and coenzymes are non-protein organic molecules. Both of these types of helper molecule can be tightly bound to the enzyme or bound only when the substrate binds.
86.9K
Peroxisomes01:24

Peroxisomes

Peroxisomes are specialized organelles present in fungi, plant, and animal cells. It can vary in number, size, morphology, and activity depending on the type of tissue and the nutritional state of the cell. For example, cells with active lipid metabolism, such as adipocytes, neurons, and hepatocytes, have more peroxisomes than other cells in the body. Besides their primary role in breaking down complex organic molecules, peroxisomes can also synthesize specific macromolecules and participate in...
19.9K