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Updated: Jan 9, 2026

T-wave Ion Mobility-mass Spectrometry: Basic Experimental Procedures for Protein Complex Analysis
Published on: July 31, 2010
Association of Hemoglobin and Myoglobin into Supramolecular Complexes: Significance for Life and Practice
Olga V Kosmachevskaya1, Natalia N Novikova2, Alexey F Topunov1
1Bach Institute of Biochemistry, Research Center of Biotechnology of the Russian Academy of Sciences, 119071 Moscow, Russia.
None:
The formation of hemoglobin (Hb) and myoglobin (Mb) supramolecular complexes is examined. These key proteins for oxygen transport and storage undergo conformational transitions, some of which are induced by stress factors, particularly redox-active and toxic substances, e.g., reactive oxygen species (ROS) and reactive carbonyl compounds (RCC). These modifications can lead to partial denaturation, exposure of hydrophobic regions, and loss of stability, promoting self-assembly into high-molecular structures. Reversible associations serve regulatory roles: protein stabilization, transient functional inactivation, and generation of biological signals. Irreversible associations result in the formation of stable aggregates constituting pathological hallmarks of amyloidosis and other proteopathies. Although Hb and Mb fibrillization is not part of their physiological function, under oxidative stress, altered pH, high temperatures, or the presence of post-translational modifications, they can adopt amyloid-like structures characterized by cross-β conformation. Such aggregates exhibit high resistance to proteolysis and accumulate in tissues. Understanding molecular mechanisms behind Hb and Mb aggregation is critical for the diagnosis and timely therapy of amyloid-related diseases. The stability, regular structure, and biocompatibility of Hb and Mb fibrils make them promising for biomedical applications. Functional nanomaterials based on these fibrils are being developed for high-sensitivity biosensors, bioelectronic devices, and nanocarriers for targeted drug delivery.
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