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1 oxidation of hemoglobin to methemoglobin and hemichrome.
2 igh ratio of an anionic form of bishistidine hemichrome.
3 oglobin, p72syk protein tyrosine kinase, and hemichromes.
5 proposes that denatured/oxidized hemoglobin (hemichromes) arising late during an RBC's life span indu
7 molecule are the axial heme ligands, to the hemichrome (bishistidine) form, in which the proximal hi
8 ted AHSPs drive the formation of a met-alpha hemichrome conformation following binding to either met-
9 s an apoglobin (apo-rHb), a non-cross-linked hemichrome (ferric iron and histidine axial ligands, rHb
11 rdinate hemin (Fe(III)-protoporphyrin IX) or hemichrome form (hemiHtsA) with an apparent rate constan
15 s procedure resulted in a protein with fewer hemichrome impurities than was obtained by an overexpres
16 e detrimental formation of methemoglobin and hemichrome in vivo, insofar as this is accelerated by tr
17 this intermediate oxidizes to form a stable hemichrome in which the proximal (F8) and distal (E7) hi
18 at after autoxidation, dimeric and monomeric hemichrome intermediates occur along the disassembly pat
19 stages are characterized by hexacoordinated hemichrome intermediates, which are important for preven
24 o be a simple two-state process, even though hemichrome spectra are often observed and apoMb denatura
25 ded intermediate with hemin bound (IH) has a hemichrome spectrum indicative of a bis-histidyl axial c
26 orm causes the formation of a characteristic hemichrome spectrum with a maximum at 565 nm and a shoul
28 isassembled hemoglobins often get trapped as hemichromes that accumulate into insoluble Heinz bodies
30 rosylmyoglobin produces low-spin ferric heme hemichromes which have been characterized by electron sp