Key result
Linear analogues of salmon calcitonin lacking the N-terminal disulfide bridge retain full hypocalcemic activity and ability to activate adenylate cyclase in rats.
The disulfide bridge in salmon calcitonin is not required for biological activity, and in vitro adenylate cyclase activation by human calcitonin analogues does not always correlate with in vivo hypocalcemic potency.
Informs preclinical calcitonin analogue design; leaves open human translation and in vivo-in vitro correlations.
The disulfide bridge formed between the cysteine residues at positions 1 and 7 of salmon calcitonin (sCT) is not required for biological activity. The analogues [Ala1,7]sCT,[AcmCys1,7]sCT and [AmcCys1,Ala7]sCT (AcmC = S-acetamido-methylcysteine) are linear sequences which retain full hypocalcemic activity in the intact rat and ability to activate adenylate cyclase of rat renal membranes. The secondary structure of these peptides in aqueous solution in the presence or absence of lipid is not greatly perturbed by the opening of the disulfide ring. In contrast with salmon calcitonin, substitution of Cys by AcmCys in human calcitonin results in greatly reduced hypocalcemic activity but no loss in the ability of the peptide to activate renal adenylate cyclase. Thus in vitro activation of adenylate cyclase by human calcitonin analogues is not always correlated with in vivo hypocalcemic potency.
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Orlowski et al. (1987) studied this question. Linear analogues of salmon calcitonin ([Ala1,7]sCT, [AcmCys1,7]sCT, [AmcCys1,Ala7]sCT) vs. Intact salmon calcitonin (sCT) was evaluated on Hypocalcemic activity and adenylate cyclase activation. Linear analogues of salmon calcitonin lacking the N-terminal disulfide bridge retain full hypocalcemic activity and ability to activate adenylate cyclase in rats.
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