Search bioRxiv⌕ Search

Biology subjects

Happe, T.

Publications and source records attributed to Happe, T..

5 recordsLinked to original sources

A histidine-mediated, pendulum-like proton transport mechanism is required for the high catalytic activity of -hydrogenases

[FeFe]-hydrogenases are molecular hydrogen (H2) converting enzymes that employ a hexanuclear iron-complex, the H-cluster, as catalytic cofactor, and a proton transfer pathway (PTP) that allows efficient proton coupled electron transfer (PCET). Recent phylogenetic analyses revealed different groups of [FeFe]-hydrogenases. Although only very few members from other groups have been characterized, current knowledge suggests high catalytic activity is predominantly associated with group A members. Here, we show that metal ions inhibit group A [FeFe]-hydrogenases by binding to three specific residues at the entrance of the PTP. Exchanging residue H565 of Clostridium pasteurianum CpI results in a metal-insensitive protein variant with wildtype like activity. In contrast, exchanging S320 and H569 in CpI, and their counterparts in additional group A [FeFe]-hydrogenases results in enzymes with strongly decreased activities and large overpotential requirements. These features are consistent with important roles of both residues in catalytic proton transfer. CpI structures reveal that H569, locally anchored by E278, can be present in two conformations so that we propose a histidine-dependent pendulum mechanism for exchanging protons between bulk solvent and the PTP, which is well supported by theoretical calculations. By that, our study widens information on how the mobility of histidine, governed by residues in the vicinity, contributes to the fundamental concept of PCET.

biochemistry↗

Direct Binding of Cysteine-367 Thiolate to the Active Site of the -Hydrogenase from Clostridium beijerinckii in the O2-stable State

[FeFe]-hydrogenases are very active biocatalysts for H2 conversion. However, their active site is vulnerable to irreversible degradation initiated by O2 binding at the catalytic iron ion (Fed) of the active center. CbA5H, the [FeFe]-hydrogenases from Clostridium beijerinckii exhibits stability towards oxygen (O2) due to its ability to reversibly enter an inactive state termed Hinact upon contact with O2. We previously proposed that the close distance of approximately 3.1 [A] between the thiol of a nearby cysteine (C367) and the Fed, based on a 2.9 [A] crystal structure of CbA5H in the Hinact state, enables their binding to each other. This binding therefore was suggested to shield the Fed from O2 damage. However, there is currently a lack of evidence to support this hypothesis. Furthermore, density functional theory (DFT) calculations based on a homologous model favored hydroxide as the binding ligand of the Fed over the thiol of C367. In this study, we present the crystal structure of CbA5H in the Hinact state at an improved resolution of 2.15 [A]. The structure reveals a direct binding between the thiol of C367 and the Fed with a distance of approximated 2.77 [A] which is well supported by our DFT calculations based on the new crystallographic data. It is noteworthy that the 2.77 [A] bond distance is strikingly long when compared with other iron-sulfur bonds. This finding may provide a crucial foundation for understanding the rapid reversibility of the Hinact state.

biochemistry↗

How the Azadithiolate Ligand Impacts O2-Stability of Group B -Hydrogenase ToHydA

[FeFe]-hydrogenases are metalloenzymes that catalyze the reversible oxidation and production of H2, making them potential candidates for sustainable energy solutions. However, their practical application is restricted by their extreme O2 sensitivity, which leads to irreversible active site degradation. A newly characterized Group B hydrogenase, ToHydA from Thermosediminibacter oceani, has exhibited exceptional O2-stability even after longtime exposure to air. In ToHydA, the highly conserved proton-transporting cysteine (C212) safeguards the H-cluster from O2-induced degradation by formation of the Hinact state. In this study, we investigate the effects of replacing the azadithiolate (ADT) ligand of [2Fe]H with propanedithiolate (PDT), revealing that this substitution prevents the formation of the Hinact and Htrans states observed in ToHydA WT (bearing the ADT ligand). By combining ATR-FTIR spectroscopy and molecular dynamics (MD) simulations, we show that a hydrogen bond between the nitrogen bridgehead of the ADT ligand and the C212 sidechain is crucial for stabilizing these states. The absence of this interaction in ToHydAPDT (bearing the PDT ligand) prevents the C212 sidechain from approaching the Fed center of [2Fe]H, thereby reducing Hinact accumulation. Moreover, as-isolated ToHydAPDT predominantly exhibits the Hhyd state, which is unusual for [FeFe]-hydrogenases with bound PDT ligand. These findings demonstrate how ligand substitution at the [2Fe]H site of ToHydA affects the structural dynamics, offering detailed molecular insights into the ligand-dependent modulation of [FeFe]-hydrogenases.

biophysics↗

Tuning the H2 Production Activity of ToHydA by Molecular Simulation-Informed Protein Engineering

In the context of bio-hydrogen production, the O2-stable Group B [FeFe]-hydrogenase from Thermosediminibacter oceani has attracted significant interest due to its distinctive "TSCCCP" motif near the active site, which contains an additional (third) cysteine residue that is absent in the "TSCCP" motif of standard Group A hydrogenases. The precise role of the additional cysteine residue in H2 production has remained an open question. In this study, we sought to contribute to the understanding of this cysteines role in H2 production by combining molecular dynamics (MD) simulations, site-directed mutagenesis, biochemical assays, and Fourier-transform infrared (FTIR) spectroscopy. Remarkably, a cysteine-to-serine exchange variant (TSSCCP) demonstrated enhanced H2 production activity without compromising the O2-stability of ToHydA, offering new insights into its functional dynamics.

biophysics↗

Protein dynamics affect O2-stability of Group B -hydrogenase from Thermosediminibacter oceani

In the pursuit of sustainable green energy generation, [FeFe]-hydrogenases have attracted significant attention due to their ability to catalyze hydrogen production. However, the sensitivity of these enzymes to O2 is a major obstacle for their application as biocatalysts in energy conversion technologies. In the search for an O2-stable [FeFe]-hydrogenase, we identified the hydrogenase ToHydA from Thermosediminibacter oceani that belongs to the rarely characterized Group B (M2a) [FeFe]-hydrogenases. Our findings demonstrate that ToHydA exhibits remarkable O2-stability, even under prolonged O2 exposure. By characterizing site-directed mutagenesis variants, we found that the highly conserved proton-transporting cysteine protects H-cluster from O2-induced degradation by forming Hinact state. The additional cysteine residue in the TSCCCP motif of ToHydA, a feature unique to Group B (M2a) [FeFe]-hydrogenases, enhances the flexibility of that motif and facilitates the formation of the Hinact state. Moreover, ToHydA possesses unique features, including the formation of an unusual Hinact resting state that distinguishes the enzyme from other [FeFe]-hydrogenases. Our atomistic molecular dynamics simulations reveal a previously unrecognized cluster of hydrophobic residues centered around the proton-transporting cysteine-bearing loop. This structural feature appears to be a common molecular characteristic in hydrogenases that form the O2-protected Hinact state. By exploiting these molecular features of ToHydA, future research can aim to rationally design hydrogenases that combine high catalytic activity with enhanced O2 stability, to develop more efficient and durable catalysts. Table of Contents Figure O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=153 SRC="FIGDIR/small/643706v1_ufig1.gif" ALT="Figure 1"> View larger version (61K): org.highwire.dtl.DTLVardef@96b4aorg.highwire.dtl.DTLVardef@62f367org.highwire.dtl.DTLVardef@59f170org.highwire.dtl.DTLVardef@fa2fd7_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗