Structural insights into 3Fe-4S ferredoxins diversity inM.tuberculosishighlighted by a first redox complex with P450

Author:

Gilep AndreiORCID,Varaksa TatsianaORCID,Bukhdruker SergeyORCID,Kavaleuski AntonORCID,Ryzhykau YuryORCID,Smolskaya SviatlanaORCID,Sushko TatsianaORCID,Tsumoto KouheiORCID,Grabovec IrinaORCID,Kapranov IvanORCID,Okhrimenko IvanORCID,Marin EgorORCID,Shevtsov MikhailORCID,Mishin AlexeyORCID,Kovalev KirillORCID,Kuklin AlexanderORCID,Gordeliy ValentinORCID,Kaluzhskiy LeonidORCID,Gnedenko OksanaORCID,Yablokov EvgeniyORCID,Ivanov AlexisORCID,Borshchevskiy ValentinORCID,Strushkevich NatalliaORCID

Abstract

AbstractFerredoxins are small iron-sulfur proteins and key players in essential metabolic pathways. Among all types, 3Fe-4S ferredoxins are less studied mostly due to anaerobic requirements. Their complexes withcytochromeP450 redox partners have not been structurally characterized. In the present work, we solved the structures of both 3Fe-4S ferredoxins fromM. tuberculosis- Fdx alone and the fusion FdxE–CYP143. Our SPR analysis demonstrated a high affinity binding of FdxE to CYP143. According to SAXS data, the same complex is present in solution. The structure reveals extended multipoint interactions and the shape/charge complementarity of redox partners. Furthermore, FdxE binding induced conformational changes in CYP143 as evident from the solved CYP143 structure alone. The comparison of FdxE–CYP143 and modeled Fdx–CYP51 complexes further revealed the specificity of ferredoxins. Our results illuminate the diversity of electron transfer complexes for the production of different secondary metabolites.

Publisher

Cold Spring Harbor Laboratory

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