Hemoglobin synthesis in beta-thalassemia: the properties of the free alpha-chains

The decrease in hemoglobin A (HbA, alpha(2)beta(2)) synthesis in the erythroid cells of patients with beta-thalassemia is due to a selective defect in beta-chain synthesis. Since alpha-chains continue to be formed at a normal rate in these cells, this results in a marked relative excess of alpha-chain synthesis over beta- and gamma-chain synthesis. The alpha-chains uncombined with beta- or beta-like-chains (delta, gamma) will be referred to as free alpha-chains. The experiments presented in this paper show that these free alpha-chains are capable of combining with beta-chains to form HbA and are, therefore, structurally normal. Alternatively, in the absence of added beta-chains, alpha-chains aggregates of various sizes are formed. Peripheral blood from patients with beta-thalassemia was incubated with radioactive amino acids and hemolysates were prepared. Column chromatography demonstrates that a majority of the free alpha-chains are not present in HbA. They are strongly bound to carboxymethylcellulose resin at pHs from 7.0 to 10.0, and do not elute with HbA. However, when chemically prepared hemoglobin H (Hbbeta(4)) is added to the fresh hemolysates, the free alpha-chains are readily recovered in the HbA peak. This indicates that the free alpha-chains are able to combine normally with beta-chains to form HbA. Freshly labeled hemolysates were also subjected to Sephadex G-100 chromatography. The free alpha-chains eluted as a broad peak migrating between myoglobin and hemoglobin, consistent with their forming alpha-chain aggregates of various mol wt between 16,000 and 64,000. It is suggested that the chromatographic behavior of the free alpha-chains reported herein simply reflects the chemical properties of normal alpha-chains in the absence of adequate numbers of beta- or gamma-chains. The tendency of these free alpha-chains to aggregate may lead to their intracellular precipitation and the subsequent destruction of the cells containing them.

Related Concept Videos

Multiple Allele Traits01:49

Multiple Allele Traits

The Concept of Multiple Allelism
Protein and Protein Structure02:15

Protein and Protein Structure

Proteins are one of the most abundant organic molecules in living systems and have the most diverse range of functions of all macromolecules. Proteins may be structural, regulatory, contractile, or protective. They may serve in transport, storage, or membranes; or they may be toxins or enzymes. Their structures, like their functions, vary greatly. They are all, however, amino acid polymers arranged in a linear sequence.
A protein's shape is critical to its function. For example, an enzyme can...
Gene Families01:57

Gene Families

Gene families consist of groups of genes proposed to have originated from a common ancestor. Typically these arise through events in which a gene or genes are mistakenly duplicated during cell division. Unlike their parent genes (which are subject to selection pressure to maintain function), these gene copies do not need to preserve their sequences and may evolve at a relatively faster rate.
Occasionally these regions can be adapted to take on new roles within the organism, becoming novel genes...
Protein Families02:47

Protein Families

Protein families are groups of homologous proteins; that is, they have similarities in amino acid sequences and three-dimensional structures. Protein families usually occur because of gene duplication, where an additional copy of a gene is inserted into the genome of an organism.   Mutations that change the amino acids but still allow the protein to be properly synthesized, will lead to new protein family members.   If these new proteins contain similar amino acids in key locations, protein...
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...
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,...