Xiuxiu
Wang
ab,
Zong-Chang
Han
c,
Wei
Wei
*abf,
Hanshi
Hu
c,
Pengfei
Li
d,
Peiqing
Sun
a,
Xiangzhi
Liu
b,
Zhijia
Lv
g,
Feng
Wang
g,
Yi
Cao
d,
Zijian
Guo
*ae,
Jun
Li
*ch and
Jing
Zhao
*abef
aState Key Laboratory of Coordination Chemistry, Chemistry and Biomedicine Innovation Center (ChemBIC), School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China. E-mail: jingzhao@nju.edu.cn
bSchool of Life Sciences, Nanjing University, Nanjing 210023, China
cDepartment of Chemistry and Key Laboratory of Organic Optoelectronics & Molecular Engineering of Ministry of Education, Tsinghua University, Beijing 100084, China
dNational Laboratory of Solid State Microstructure, Department of Physics, Nanjing University, Nanjing 210023, China
eNanchuang (Jiangsu) Institute of Chemistry and Health, Nanjing 210023, China
fShenzhen Research Institute, Nanjing University, Shenzhen 518000, China
gElias James Corey Institute of Biomedical Research, Wuxi Biortus Biosciences Co., Ltd, Jiangyin 214437, China
hDepartment of Chemistry, Southern University of Science and Technology, Shenzhen 518055, China
First published on 30th May 2022
Metal clusters, such as iron–sulfur clusters, play key roles in sustaining life and are intimately involved in the functions of metalloproteins. Herein we report the formation and crystal structure of a planar square tetranuclear silver cluster when silver ions were mixed with human copper chaperone Atox1. Quantum chemical studies reveal that two Ag 5s1 electrons in the tetranuclear silver cluster fully occupy the one bonding molecular orbital, with the assumption that this Ag4 cluster is Ag42+, leading to extensive electron delocalization over the planar square and significant stabilization. This bonding pattern of the tetranuclear silver cluster represents an aromatic all-metal structure that follows a 4n + 2 electron counting rule (n = 0). This is the first time an all-metal aromatic silver cluster was observed in a protein.
In human cells, copper regulation and trafficking is strictly controlled by complex systems including many cytosolic copper chaperones.17 As an Atx1-like copper chaperone, Atox1 is mainly in charge of delivering intracellular Cu(I) in eukaryotic cells from copper transporter Ctr1 at the plasma membrane and the metal-binding domain (MBD) of copper-transporting ATPase with a conserved CysXXCys metal-binding motif.18 An inspiring report by He et al. showed that small molecules significantly attenuate cancer cell proliferation by inhibiting the human copper trafficking of proteins Atox1 and CCS.19 Notably, an XAS investigation of Ag coordination in Atox1 demonstrated that Ag binds in digonal coordination to the Cu(I) binding loop in 1:1 stoichiometry.20 Inspired by these pioneering studies, we set out to explore the structural basis of the interaction between silver ions and Atox1.
As most of the reported metal–Atox1 structures are dimers (Fig. S3†), we developed a novel single-molecule assay by engineering a loop bypass in between two Atox1 domains to reliably measure the mechanical stability of the Ag complex.29,30 The experimental design is depicted in Fig. 1A, which combines a loop bypass to recognize the breakage of a metal complex with clear mechanical fingerprinting domains to identify single molecule events, and specific molecular anchoring sites for efficiently picking up protein molecules. The engineered chimeric polyprotein included two Atox1 domains with a long unstructured loop in the center. Rupturing the metal cluster would release the length of the loop as well as the unfolded Atox1 sequences in between two metal binding sites in the force-extension curves. Besides the two Atox1 domains, four GB1 domains were flanked on both ends to serve as a mechanical fingerprint to identify single molecule events. The C-terminal SNAP domain was used to covalently link the polyprotein to the glass surface and the N-terminal Cohesin domain was used to form strong reversible binding with the XMod-Dockerin motif linked to the cantilever tip to reliably pickup single molecules. Then, the AFM experiment in buffer was conducted. In Tris buffer without adding Ag ions, the force-extension curves showed mainly the mechanical features of unfolding of GB1 domains (Fig. 1B) with contour length increments (ΔLc) of ∼18 nm (Fig. 1C) and unfolding forces of ∼150 pN (Fig. 1D) at a pulling speed of 400 nm s−1. The rupture of Cohesin with XMod-Dockerin could occur in either a single step or two steps (Fig. S4†). The unfolding of apo-Atox1 occurred at forces below the detection limit of our AFM (∼5 pN). However, when 1 μg mL−1 of Ag ions was added to the system, in ∼70% of the events showing a clear mechanical fingerprint, we observed an additional peak preceding the unfolding events of GB1 and the ΔLc value of this peak was ∼63 nm, consistent with the expected length change for the breakage of the Ag complex (Fig. 1C). In a few rare cases, we observed that the rupture of the Ag complex proceeded in two steps (Fig. S3†). Prior to the rupture of the metal complex, partial unfolding of the sequence outside the metal complex in an Atox1 domain could also be observed. The rupture forces of the Ag complex in these events were similar to that without partial unfolding of Atox1. Nonetheless, observation of the rupturing signature of the Ag complex suggests that it can remain stable in solution before force is applied. The low frequency of occurrence of this event (∼70%) can be attributed to its low stability in solution. The low stability is also evidenced by the low average rupture forces for the Ag complex of ∼64 pN (Fig. 1D), which is much weaker than the mechanical stability of GB1 and other metal chelation bonds reported in the literature.23–28,31 By comparing with other reported systems containing metal–thiol bonds in proteins, the very low mechanical stability of the Ag–Atox1 complex indicated that there might not be a simple Ag–S bond formed when Ag interacted with Atox1 protein under solution conditions (Table S1†).2,12,32–35
At first, a lower resolution structure of the dimeric silver Ag4–(Atox1)2 was determined with 2.70 Å resolution (Fig. S5†) (PDB accession code 5F0W), In this structure, the two cysteine residue pairs are coordinated to the Ag ion with average Ag–Cys(S) distances of 2.34 Å. And to solve its phase problems, the method of molecular replacement was performed. In this case, we considered the occupancy of all the non-hydrogen atoms to be 1, including the Ag atoms. Instead, we introduced the B factor as a signal to describe the variance of each atom. For the four Ag atoms, the B factors are 35.62, 34.41, 30.60, and 32.94, respectively. The average B factor of these Ag atoms is 33.39. That means the four Ag atoms have relative stationary and fixed locations, suggesting the existence and validity of the tetranuclear silver clusters. It is worth noting that the two Atox1 proteins in the asymmetric unit are linked by two other Ag ions with an average distance of 2.95 Å from the cysteine coordinating Ag ions, indicating an unexpected Ag–Ag bond in the Ag4–(Atox1)2 structure (Fig. S6†).36,37 However, the 2.70 Å resolution structure of 5F0W is not sufficient to fully determine the possible existence of the Ag–Ag bond. So, we continued to optimize the crystallization conditions to get better quality crystals. After several rounds of screening, a better structure of Ag4–(Atox1)2 was determined with 1.75 Å resolution (Fig. S7A†) (PDB accession code 7DC1), and the superimposed 2Fo − Fc electron density map is shown in Fig. S7B.†
Interestingly, the only reported structure of Ag bound to MNK4 containing an MTCXXC metal binding domain is a monomer with one equivalent of Ag.15 And in all the reported structures of metal bridged Atox1 dimer, only one metal (Cu/C/Hg/cisPt) holds the two Atox1 monomers together with the extended hydrogen bonding network near the metal binding site (Fig. S3†). Our symmetrical Ag4–(Atox1)2 structure is more similar to the reported structural geometry of a tetranuclear copper cluster in the Bacillus subtilis Atx1-like copper chaperone protein CopZ, but the coordination of the [Cu4(S-Cys)4(N-His)2] cluster is different.39
On the other hand, Wang et al. reported a designed synthesis of tetranuclear silver clusters – by utilizing organic acetylide ligands. In their structures, the silver atoms form a square planar tetrasilver cluster through an Ag–Ag linkage (average length of 2.96 Å), which is held together by both σ- and π-bonding of the tert-butylacetylide anion in the μ4-η1,η1,η1,η2 mode.40 In our Ag4–(Atox1)2 structure (7DC1), there are only two oxygen atoms W1 and W2 from water around the four silver ions. W1 is near Ag2 with the distance of 2.59 Å, and the other oxygen atom W2 is onto the four silver ions with the average distance of 3.06 Å. These two oxygen atoms probably act as ligands to support and stabilize the tetranuclear silver clusters. Interestingly, although the mass spectrometry and AFM data implied that an uncertain polynucleated Ag cluster might form in Atox1 in the solution state, the crystal structure of Ag-bound Atox1 protein demonstrated the formation of a more stable tetranuclear silver cluster in the solid state. Some previous studies indicated that the growth of protein crystals promotes the packing of silver ions and direct silver cluster formation through specific interactions with Atox1.41
The partially reduced Ag42+ cluster is not completely surprising given the usage of TCEP (tris(2-carboxyethyl)phosphine), which is a relatively strong reductive reagent with a redox potential of −0.33 V at pH 7. As a common redox reagent also known as Cleland's reagent, TCEP can help to reduce Ag+ ions to form Ag42+ in the preparation of Ag–Atox1, especially because of the extra stability of the aromatic Ag42+ cluster (see below):
4Ag+ + 2R–SH → R–S–S–R + Ag42+ + 2H+ |
The Ag42+ cluster is particularly stable because according to the Hückel molecular orbital (HMO) analysis of the three types of [Ag4]q+ cluster with D2h, D4h and Td symmetries, respectively (Tables S4–S6†), the four 5s AOs form one bonding MO (ag), one non-bonding MO (bu), and two antibonding ones (bu + ag) in D2h; one bonding MO (a1g), two non-bonding MOs (eu), and one antibonding MO (b1g) in D4h; and one bonding MO (a1) and three antibonding MOs (t2) in Td. All the three types of HMO analyses show that there is only one strong bonding MO and thus leads to a 2-electron counting rule, which shows that the two s-electron system of Ag42+ is the most stable one for the [Ag4]q+ cluster. The calculated frontier MOs based on the experimentally measured cavity and optimized D2h, D4h and Td geometries of Ag42+ are shown in Table S7,† which confirms the above conclusion. The MO contours of these four clusters show that the Ag42+ with C2 symmetry is qualitatively closer to a pseudo D2h structure. The slightly reduced C2 symmetry is a result of the ligand effects and intermolecular interactions in the complicated protein environment.
The correlation diagram for the orbital interaction along with the frontier canonical Kohn–Sham valence MOs of Ag42+ are shown in Fig. 3.42 The delocalization bonding contributed by the HOMO in the Ag42+ cation results in considerable aromatic stabilization, where it follows the 2-electron counting rule, also described by the Hückel 4n + 2 rule (n = 0). The normalized multicenter bond index of 0.46 between the four Ag atoms is comparable to 0.46 in square C4H42+. The ELF color-filled map (Fig. S8†) also shows non-negligible electron-pair density in the center of the cluster, supporting a type of delocalized, albeit weak, 4-center bonding interaction. The calculated nucleus-independent chemical shift (NICS) indices at the molecule-center, two triangle face-center, and 1 Å above the molecule-center display considerable negative values, which are comparable to those in benzene, also confirming the all-metal sigma-aromaticity of the Ag42+ cluster (Table S8†).43–46
Our results might have implication on the involvement of Atox1 in the silver transportation and detoxification. The Ag4 clusters were largely buried in two Atox1 domains and became less solvent accessible, which may also potentially minimize their impact on the redox equilibrium of the cell. As atox1 is a key protein involved in Cu(I) homeostasis in eukaryotic cells, these results suggest that silver ion toxicity relies on its direct binding to human copper chaperon and leads to the formation of an unusual complex. By studying the interaction between cisplatin and Atox1, Rosenzweig et al. suggested that there was a direct relationship between cisplatin resistance and copper homeostasis in vivo.30,47–49 Recently, Lombi et al. reported that the biotransformation of AgNPs was dominated by sulfidation in cells, which can be viewed as one of the cellular detoxification pathways for Ag.69 In view of the relatively weak stability of the Ag–Atox1 complex, the interaction between the Ag cluster and Atox1 is quite dynamic. Further work is desirable on the detailed crystal structure analysis of silver clusters and metalloproteins. Atox1 may be required to competitively bind toxic silver ions without affecting the function of copper transporters. This mechanically weak Ag–S binding enabled Atox1 to robustly maintain its biological function, suggesting a potential principle of metal ion transport in vivo. Our work might contribute to the understanding of the silver trafficking and detoxification mechanism of cellular internalized Ag from a precise structural point of view. This work may also stimulate future research towards interactions between silver and Atox1 in vivo.
On the other hand, the size-controlled synthesis of nanosilver clusters has been a challenge. Nanosilver materials, composed of several to a few hundred silver atoms, are not only best known as antibacterial agents with excellent biocompatibility in industrial and healthcare applications, but are also useful for their unique optical, catalytic, electronic and magnetic properties.50–53 The intrinsic properties of nanosilvers including clusters and particles are mainly determined by their size, shape, and structure.54,55 Hence, simple and size-controlled synthesis of nanosilver products has received great attention.54,56,57 In addition to the commonly reported synthesis of silver nanoparticles, some significant studies on silver nanoclusters were reported for their unique optical properties,53,58 such as Ag6, Ag8, and Ag12 silver nanoclusters with predictable sizes and emission energies,59 protein-based silver (Ag) nanoclusters with fluorescence excitation and excitation anisotropy spectra for revealing spectral and structural patterns,60 and highly luminescent Ag9 and Ag16 nanoclusters with tunable emissions.61 Thus, our work might suggest a new approach to synthesize nanosilver clusters by using protein template with applications probably in antibacterial studies, catalysis, or imaging.
More importantly, not only for aromatic compounds but also for all-metal clusters, aromaticity is a significant property to account for their stability. Since the groundbreaking work on the aromaticity observation in a series of bimetallic clusters was first reported by Boldyrev and Wang in 2001, the aromaticity concept was expanded into the arena of all-metal species.62 A large number of aromatic all-metal clusters including coinage metal clusters have been discovered in the gas phase.63–66 However, traditional chemical synthesis of the aromatic all-metal clusters often requires high temperatures, and complex procedures. Since the last two decades, proteins have been used as templates for the synthesis of metal nanomaterials in solution, and these approaches have been used to successfully encapsulate and stabilize a number of different enzymes with applications in biological catalysis.41,67,68 The aromatic tetrasilver clusters formed by Atox1 dimer herein may point out a new approach to the biocompatible protein-templated synthesis of aromatic metallic clusters. The chemical and physical properties of the reported aromatic tetrasilver cluster are under investigation. The metalloaromatic clusters are likely to attract much interest for their unique structures.
Footnote |
† Electronic supplementary information (ESI) available. See https://doi.org/10.1039/d1sc07122j |
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