The Arctic fish Anarhichas minor, a benthic sedentary species, displays high emoglobin multiplicity. The three major hemoglobins (Hb 1, Hb 2, and Hb 3) show important functional differences in pH and organophosphate regulation, subunit cooperativity, and response of oxygen binding to temperature. Hb 1 and Hb 2 display a low, effector-enhanced Bohr effect and no Root effect. In contrast, Hb 3 displays pronounced Bohr and Root effects, accompanied by strong organophosphate regulation. Hb 1 has the beta (beta(1)) chain in common with Hb 2; Hb 3 and Hb 2 share the alpha (alpha(2)) chain. The amino acid sequences have been established. Several substitutions in crucial positions were observed, such as Cys in place of C-terminal His in the beta(1) chain of Hb 1 and Hb 2. In Hb 3, Val E11 of the beta(2) chain is replaced by Ile. Homology modeling revealed an unusual structure of the Hb 3 binding site of inositol hexakisphoshate. Phylogenetic analysis indicated that only Hb 2 displays higher overall similarity with the major Antarctic hemoglobins. The oxygen transport system of A. minor differs remarkably from those of Antarctic Notothenioidei, indicating distinct evolutionary pathways in the regulatory mechanisms of the fish respiratory system in the two polar environments.

The functionally distinct hemoglobins of the Arctic spotted wolffish Anarhichas minor

Verde C;Carratore V;Tamburrini M;di Prisco G
2002

Abstract

The Arctic fish Anarhichas minor, a benthic sedentary species, displays high emoglobin multiplicity. The three major hemoglobins (Hb 1, Hb 2, and Hb 3) show important functional differences in pH and organophosphate regulation, subunit cooperativity, and response of oxygen binding to temperature. Hb 1 and Hb 2 display a low, effector-enhanced Bohr effect and no Root effect. In contrast, Hb 3 displays pronounced Bohr and Root effects, accompanied by strong organophosphate regulation. Hb 1 has the beta (beta(1)) chain in common with Hb 2; Hb 3 and Hb 2 share the alpha (alpha(2)) chain. The amino acid sequences have been established. Several substitutions in crucial positions were observed, such as Cys in place of C-terminal His in the beta(1) chain of Hb 1 and Hb 2. In Hb 3, Val E11 of the beta(2) chain is replaced by Ile. Homology modeling revealed an unusual structure of the Hb 3 binding site of inositol hexakisphoshate. Phylogenetic analysis indicated that only Hb 2 displays higher overall similarity with the major Antarctic hemoglobins. The oxygen transport system of A. minor differs remarkably from those of Antarctic Notothenioidei, indicating distinct evolutionary pathways in the regulatory mechanisms of the fish respiratory system in the two polar environments.
2002
Istituto di Biochimica delle Proteine - IBP - Sede Napoli
277
36312
36320
Evoluzione
Emoglobina
Artico
Antartide
Effetto Bohr/Root
Questa pubblicazione come tante altre sulla struttura e funzione delle emoglobine isolate da organismi Artici ha sicuramente prodotto come risultato importante ed immediato l’approvazione del Progetto “Erythrocyte functions, ion transport and Hb-cell interaction in Arctic marine organisms” nell’ambito del Progetto Strategico Artico del CNR. Il progetto prevede collaborazioni a carattere internazionale con nazioni che hanno competenze di lunga data nella biologia artica (Norvegia in primis; USA, UK e Germania in prospettiva), in ecologia, stile di vita, genetica e fisiologia con scambio di studenti e ricercatori italiani e stranieri tra le varie Istituzioni impegnate nel progetto Strategico Artico. Impact Factor 7.258
6
info:eu-repo/semantics/article
262
Verde, C; Carratore, V; Riccio, A; Tamburrini, M; Parisi, E; di Prisco, G
01 Contributo su Rivista::01.01 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/122401
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